Graduate Coursework

Master of Environmental Engineering

Course code: MC-ENVENG

Showing information for
Domestic students
domestic
International students
international
Duration

3 years full time / 6 years part time

2 years full time (or part time equivalent) with relevant prior qualifications

Check entry points

Mode (Location)
On campus (Parkville)
Intake

March, July

Key dates

Fees

Commonwealth Supported Places (CSPs) available

Learn more

Entry schemes

Access Melbourne is available

Learn more

How to apply
Enquire
Register for updates
Duration

3 years full time

2 years full time with relevant prior qualifications

Check entry points

Mode (Location)
On campus (Parkville)
Intake

March, July

Key dates

Fees

AUD $62,976 (2026 indicative first year fee)

Learn more

English language requirements

IELTS 6.5: with no band less than 6.0

View full entry requirements

CRICOS code
106107H
How to apply
Enquire
Register for updates

Course structure

Overview

The Master of Environmental Engineering is a 2–3 year degree (full-time) depending on your prior study.

Course structure

First year

In your first year (or equivalent) you’ll complete foundation engineering subjects – tailored to students from a non-engineering background. If you’ve completed the Environmental Engineering Systems major in your bachelor’s degree, plus the required maths and science subjects, you’ll receive credit for these foundation engineering subjects and start in second year.

Second and third year

In the second and third year of the program (or equivalent), you’ll focus on your chosen engineering discipline. As an environmental engineering student you will be guided in designing and building sustainable solutions to environmental problems, and focus on climate change, water scarcity and bushfire management.

You’ll undertake an industry, design or research project and gain the skills and knowledge to practice as a professional engineer.

Choose your specialisation

As a Master of Environmental Engineering student, you can pursue your career goals and interests through one of three specialisations, or you can choose not to specialise if you’d prefer.

Earth Observation

Develop expertise in earth observation systems, showing how remotely-sensed data can create a step-change in the efficiency and effectiveness of environmental engineering solutions.

Energy Systems

Study energy-related environmental engineering systems, exploring energy efficiency and renewable energy to ensure low or zero carbon emissions.

Water Systems

Learn about water-related environmental engineering systems, which underpin the sustainable development of water systems in Australia and internationally.

Learn more about FEIT specialisations

Industry, design and research subjects

Internship subject

Build your skills and work experience through our academically credited Internship subject. Running over 10–15 weeks, you could intern for a catchment management, conservation and natural resources, resource planning and management or a waste and water organisation.

Creating Innovative Engineering subject

Work on a real-world innovation challenge with an industry mentor through our Creating Innovative Engineering subject.

Infrastructure Engineering Research project

Work alongside our world-leading environmental engineering researchers in our Infrastructure Engineering Research Project subject. Work on an industry partnered project, or pursue your own exploratory research. You’ll have the opportunity to present the findings to the public at our annual engineering showcase, the Endeavour Engineering and IT Exhibition.

Handbook entries

Master of Environmental Engineering

Sample course plan

View some sample course plans to help you select subjects that will meet the requirements for this coursework.

Semester 1 entry: no specialisation

* Choose one of: ENGR90021 Critical Communication for Engineers; ENGR90034 Creating Innovative Engineering; or ENGR90039 Creating Innovative Professionals. ** Choose one of: CVEN90045 Engineering Project Implementation or ENEN90005 Environmental Management ISO 14000.

Accordion

Year 1

100 pts

Semester 1 · 50 pts
  • Intro to Sustainable Water Management – core – ENEN30002 – 12.5 pts
  • Fluid Mechanics – core – ENGR30002 – 12.5 pts
  • Engineering Mathematics – core – MAST20029 – 12.5 pts
  • Sustainable Infrastructure Engineering – core – CVEN20001 – 12.5 pts
Semester 2 · 50 pts
  • Earth Processes for Engineering – core – ENEN20002 – 12.5 pts
  • Environmental Eng Systems Capstone – core – ENEN30001 – 12.5 pts
  • Interdisciplinary Design for Engineers – core – ENGR90051 – 12.5 pts
  • Analysis of Biological Data – core – MAST20031 – 12.5 pts
Accordion

Year 2

100 pts

Semester 1 · 50 pts
  • Engineering Hydrology – core – ENEN90038 – 12.5 pts
  • Quantitative Environmental Modelling – core – ENEN90031 – 12.5 pts
  • Water Planning & an Uncertain Future – core – ENEN90040 – 12.5 pts
  • Spatial Data Analytics – core – GEOM90006 – 12.5 pts
Semester 2 · 50 pts
  • Environmental Systems Modelling & Design – core – ENEN30003 – 12.5 pts
  • Monitoring Environmental Impacts – core – ENEN90028 – 12.5 pts
  • Environmental Analysis Tools – core – ENEN90032 – 12.5 pts
  • Civil Hydraulics – core – CVEN90051 – 12.5 pts
Accordion

Year 3

100 pts

Semester 1 · 50 pts
  • Engineering Capstone Project Part 1 – capstone – ENGR90037 – 12.5 pts
  • elective – 12.5 pts
  • elective – 12.5 pts
  • elective – 12.5 pts
Semester 2 · 50 pts
  • Engineering Capstone Project Part 2 – capstone – ENGR90038 – 12.5 pts
  • elective – 12.5 pts
  • elective – 12.5 pts
  • elective – 12.5 pts
Semester 1 entry: Earth Observation

* Choose one of: ENGR90021 Critical Communication for Engineers; ENGR90034 Creating Innovative Engineering; or ENGR90039 Creating Innovative Professionals. ** Choose one of: CVEN90045 Engineering Project Implementation or ENEN90005 Environmental Management ISO 14000. *** Choose at least four of the following five subjects: AGRI30045 Application to Precision Agriculture; GEOM90005 Remote Sensing; GEOM90007 Information Visualisation; GEOM90008 Foundations of Spatial Information; or GEOM90038 Advanced Imaging

Accordion

Year 1

100 pts

Semester 1 · 50 pts
  • Intro to Sustainable Water Management – core – ENEN30002 – 12.5 pts
  • Fluid Mechanics – core – ENGR30002 – 12.5 pts
  • Analysis of Biological Data – core – MAST20031 – 12.5 pts
  • Engineering Mathematics – core – MAST20029 – 12.5 pts
Semester 2 · 50 pts
  • Earth Processes for Engineering – core – ENEN20002 – 12.5 pts
  • Environmental Eng Systems Capstone – core – ENEN30001 – 12.5 pts
  • Engineering Mechanics – core – ENGR20004 – 12.5 pts
  • elective – 12.5 pts
Accordion

Year 2

100 pts

Semester 1 · 50 pts
  • Civil Hydraulics – core – CVEN90051 – 12.5 pts
  • Quantitative Environmental Modelling – core – ENEN90031 – 12.5 pts
  • International River Basin Management – core – ENEN90037 – 12.5 pts
  • Spatial Information Programming – core – GEOM90042 – 12.5 pts
Semester 2 · 50 pts
  • Environmental Systems Modelling & Design – core – ENEN30003 – 12.5 pts
  • Monitoring Environmental Impacts – core – ENEN90028 – 12.5 pts
  • Environmental Analysis Tools – core – ENEN90032 – 12.5 pts
  • Engineering Hydrology – core – ENEN90038 – 12.5 pts
Accordion

Year 3

100 pts

Semester 1 · 50 pts
  • Engineering Capstone Project Part 1 – capstone – ENGR90037 – 12.5 pts
  • elective – 12.5 pts
  • core – 12.5 pts
  • core – 12.5 pts
Semester 2 · 50 pts
  • Engineering Capstone Project Part 2 – capstone – ENGR90038 – 12.5 pts
  • core – 12.5 pts
  • core – 12.5 pts
  • elective – 12.5 pts
Semester 1 entry: Energy Systems

* Choose one of: ENGR90021 Critical Communication for Engineers; ENGR90034 Creating Innovative Engineering; or ENGR90039 Creating Innovative Professionals. ** Choose one of: CVEN90045 Engineering Project Implementation or ENEN90005 Environmental Management ISO 14000. *** Choose at least four of the following five subjects: ENEN90006 Solid Wastes to Sustainable Resources; ENEN90011 Energy Efficiency Technology; ENEN90014 Sustainable Buildings; ENEN90027 Energy for Sustainable Development; or ENEN90033 Solar Energy

Accordion

Year 1

100 pts

Semester 1 · 50 pts
  • Intro to Sustainable Water Management – core – ENEN30002 – 12.5 pts
  • Fluid Mechanics – core – ENGR30002 – 12.5 pts
  • Analysis of Biological Data – core – MAST20031 – 12.5 pts
  • Engineering Mathematics – core – MAST20029 – 12.5 pts
Semester 2 · 50 pts
  • Earth Processes for Engineering – core – ENEN20002 – 12.5 pts
  • Environmental Eng Systems Capstone – core – ENEN30001 – 12.5 pts
  • Engineering Mechanics – core – ENGR20004 – 12.5 pts
  • elective – 12.5 pts
Accordion

Year 2

100 pts

Semester 1 · 50 pts
  • Civil Hydraulics – core – CVEN90051 – 12.5 pts
  • Quantitative Environmental Modelling – core – ENEN90031 – 12.5 pts
  • International River Basin Management – core – ENEN90037 – 12.5 pts
  • Spatial Information Programming – core – GEOM90042 – 12.5 pts
Semester 2 · 50 pts
  • Environmental Systems Modelling & Design – core – ENEN30003 – 12.5 pts
  • Monitoring Environmental Impacts – core – ENEN90028 – 12.5 pts
  • Environmental Analysis Tools – core – ENEN90032 – 12.5 pts
  • Engineering Hydrology – core – ENEN90038 – 12.5 pts
Accordion

Year 3

100 pts

Semester 1 · 50 pts
  • Engineering Capstone Project Part 1 – capstone – ENGR90037 – 12.5 pts
  • elective – 12.5 pts
  • core – 12.5 pts
  • core – 12.5 pts
Semester 2 · 50 pts
  • Engineering Capstone Project Part 2 – capstone – ENGR90038 – 12.5 pts
  • core – 12.5 pts
  • core – 12.5 pts
  • elective – 12.5 pts
Semester 1 entry: Water Systems

* Choose one of: ENGR90021 Critical Communication for Engineers; ENGR90034 Creating Innovative Engineering; or ENGR90039 Creating Innovative Professionals. ** Choose one of: CVEN90045 Engineering Project Implementation or ENEN90005 Environmental Management ISO 14000. *** Choose at least four of the following six subjects: ENEN90039 Advanced Hydrological Solutions; ENEN90040 Water Planning & an Uncertain Future; EVSC90025 Water Sensitive Urban Design; ENEN90029 Water and Wastewater Management; ENGR90024 Computational Fluid Dynamics; GEOL90005 Hydrogeology/Environmental Geochemistry

Accordion

Year 1

100 pts

Semester 1 · 50 pts
  • Intro to Sustainable Water Management – core – ENEN30002 – 12.5 pts
  • Fluid Mechanics – core – ENGR30002 – 12.5 pts
  • Analysis of Biological Data – core – MAST20031 – 12.5 pts
  • Engineering Mathematics – core – MAST20029 – 12.5 pts
Semester 2 · 50 pts
  • Earth Processes for Engineering – core – ENEN20002 – 12.5 pts
  • Environmental Eng Systems Capstone – core – ENEN30001 – 12.5 pts
  • Engineering Mechanics – core – ENGR20004 – 12.5 pts
  • elective – 12.5 pts
Accordion

Year 2

100 pts

Semester 1 · 50 pts
  • Civil Hydraulics – core – CVEN90051 – 12.5 pts
  • Quantitative Environmental Modelling – core – ENEN90031 – 12.5 pts
  • International River Basin Management – core – ENEN90037 – 12.5 pts
  • Spatial Information Programming – core – GEOM90042 – 12.5 pts
Semester 2 · 50 pts
  • Environmental Systems Modelling & Design – core – ENEN30003 – 12.5 pts
  • Monitoring Environmental Impacts – core – ENEN90028 – 12.5 pts
  • Environmental Analysis Tools – core – ENEN90032 – 12.5 pts
  • Engineering Hydrology – core – ENEN90038 – 12.5 pts
Accordion

Year 3

100 pts

Semester 1 · 50 pts
  • Engineering Capstone Project Part 1 – capstone – ENGR90037 – 12.5 pts
  • elective – 12.5 pts
  • core – 12.5 pts
  • core – 12.5 pts
Semester 2 · 50 pts
  • Engineering Capstone Project Part 2 – capstone – ENGR90038 – 12.5 pts
  • core – 12.5 pts
  • core – 12.5 pts
  • elective – 12.5 pts

Explore this course

Explore the subjects you could choose as part of this degree.

Suggested first 100 points

Students with non-Environmental Engineering backgrounds need to complete the first 100 points (or part thereof where credit applies).

Core

Students must complete the following subjects (87.5 points):

Accordion
Sustainable Infrastructure Engineering · 12.5 pts

Sustainable Infrastructure Engineering focuses on sustainable design, and the creation of engineering solutions minimising impact on the environment while maximising societal benefit. A series of guest lectures from well-known domain experts, will highlight contemporary and future demands on infrastructure, exploring holistic engineering solutions.

In concert with these guest lectures, the foundations and methods of sustainability assessment will be established such as the engineering metrics functionality or longevity. Environmental, economic and social assessment methods will be introduced, widening the awareness of the overall impact and side effects of engineering projects. Selecting indicators and measuring them on carefully established scales, students will gain a holistic understanding of the complexities of – and potential trade-offs in – decision-making, including considerations of social equity, quality of life and wellbeing. Techniques like life-cycle analysis, material (flow) balance, and footprint analysis will be introduced together with transferable skills like technical report writing. In parallel, students will learn about the influential role that infrastructure plays in shaping communities, both short-term and long-term, in a staged design project.

This subject is essential for students in an infrastructure engineering discipline – civil engineering, digital infrastructure engineering, or environmental engineering. It is also relevant to students with an interest in an environmental, economic or social domain who seek to better understand the role of the engineered built environment in their discipline.

Please view this video for further information: Sustainable Infrastructure Engineering

View detailed information in the Handbook

Engineering Mathematics · 12.5 pts

This subject introduces important mathematical methods required in engineering such as manipulating vector differential operators, computing multiple integrals and using integral theorems. A range of ordinary and partial differential equations are solved by a variety of methods and their solution behaviour is interpreted. The subject also introduces series including the concepts of convergence and divergence.

Topics include: Vector calculus, including Gauss’ and Stokes’ Theorems; systems of homogeneous ordinary differential equations, including phase plane and linearisation for nonlinear systems; Laplace transforms; series, including Taylor series and power series; Fourier series and Fourier integrals; second order partial differential equations and separation of variables.

View detailed information in the Handbook

Earth Processes for Engineering · 12.5 pts

In this subject students will be introduced to physical earth processes and their engineering applications and implications. In particular, the subject concentrates on engineering aspects of climate, water, rocks and soils and their interactions. Simplified modelling and relevant analytical techniques are introduced throughout the subject. The students will learn about fundamental material required for later year subjects in civil, environmental and geotechnical engineering.

The subject covers topics such as climate and seasonality; carbon cycle, global water cycle and catchment water cycle; rainfall, infiltration, runoff and evapotranspiration; catchment processes and stochastic rainfall modelling; Earth structure and composition; mineral and rock properties; geological processes; soil identification and classification; soil compaction.

View detailed information in the Handbook

Environmental Eng Systems Capstone · 12.5 pts

This capstone subject involves an investigation and problem-solving project which will require students to apply a broad knowledge to realistic problems typical of what would be expected with employment in the environmental engineering industry. The subject revolves around the engineering education framework - CIDO: conceive, design, implement, operate, with the addition of 'monitor and evaluate'. Students will apply skills developed in other subjects to a single overarching project that will run through the entire semester, and demonstrate an ability to design sustainable engineering projects. Focusing on urban stormwater management, the project will require the students to develop a conceptual and quantitative model of a small-scale environmental engineering system (i.e. a biofiltration system). The students will then build and operate these systems and undertake monitoring and analysis of their behaviour to provide a critical appraisal of the original model. Having characterised the system, interpretation and evaluation of the impacts of a scaled up system on associated human and non-human stakeholders will form part of an evidence based report. Students will also be expected to critically evaluate the quality of their model, assumptions, data and analysis. The subject will be supported by specialised lectures and workshops.

View detailed information in the Handbook

Analysis of Biological Data · 12.5 pts

A capacity to interpret data is fundamental to making informed decisions in everyday life. The design of experiments, analysis, and interpretation of biological data also lie at the very heart of the scientific enterprise. You cannot be a scientist without an understanding of data and design. This subject introduces you to fundamental concepts in data science for biology, with emphasis on modern statistical methods. Drawing on real biological problems and datasets, as well as drawing on data collected by the class, the lectures cover foundational concepts in experimental design and statistical modelling. The subject emphasises hands-on problem solving. As well as a solid grounding in statistical methodology, you will also develop practical skills, developing your capacity to design experiments, collect data, and analyse those data using the R statistical environment.

View detailed information in the Handbook

Intro to Sustainable Water Management · 12.5 pts

This subject aims to analyse the key concepts underpinning the sustainable use of water within the context of integrated river basin management. Lectures draw on extensive experience in water and river basin management, particularly in Australia and China including guest lecturers from industry practitioners. The subject focuses on the analysis of complex water resource systems that involve multiple sources of water supply and multiple water uses including agriculture, urban, industrial, recreation and the environment. The subject builds on students’ knowledge of sustainability, economics and resource management.

While the principles of resource management are learnt in the context of water and river basins, they can be applied in a range of natural resource management scenarios. Students contemplating a career in any aspect of natural resource management will find this subject of value.

Please view this video for further information: Intro to Sustainable Water Management

View detailed information in the Handbook

Fluid Mechanics · 12.5 pts

AIMS

This subject covers topics required to understand systems involving fluids, both in motion and at rest, and their application in engineered systems. These include dams, pipes, open channels, pumps and both liquid and gaseous flow, with relevance to civil, mechanical, infrastructure and environmental engineering contexts. Students will gain an understanding of the fundamentals of how fluids behave and how this can be applied to solve engineering challenges. Topics covered include - Fluid statics, manometry, derivation of the continuity equation, mechanical energy balance, friction losses in a straight pipe, Newton’s law of viscosity, treatment of pipe roughness, valves and fittings; simple pipe network problems; principles of open channel flow; compressible flow, propagation of pressure wave, isothermal and adiabatic flow equations in a pipe, choked flow. Pumps – pump characteristics, centrifugal pumps, derivation of theoretical head, head losses leading to the actual pump head curve, calculating system head, determining the operating point of a pumping system, throttling for flow control, cavitation and NPSH, affinity laws and pump scale-up, introduction to positive displacement pumps; Newtonian and non-Newtonian fluids, Multi-dimensional fluid flow-momentum flux, development of multi-dimensional equations of continuity and for momentum transfer, Navier-Stokes equations, application to tube flow, Couette flow, Stokes flow.

Please view this video for further information: Fluid Mechanics

View detailed information in the Handbook

Interdisciplinary Design for Engineers · 12.5 pts

In this subject, students will actively engage in an interdisciplinary, collaborative and project-based learning environment, offering insights into the professional nature of engineering work. Through a real-world project, students will gain hands-on design experience addressing a complex challenge. The project will require students to integrate discipline knowledge and apply professional skills like teamwork and communication.

Students will experience the entire engineering design process, covering problem definition, ideation, concept development, analysis, prototyping, testing and iteration. The project provides practical experience, equipping students with tools and methods to address complex challenges. Students are expected to integrate diverse perspectives, considering factors like stakeholders, sustainability (including environmental and social issues), safety, feasibility, and technical and ethical considerations.

View detailed information in the Handbook

Selective

Choose one of the following 12.5 point subjects. Students who commenced prior to 2025 can complete their degree following the course structure as per their year of entry/admission. Students in this group can also complete ENGR90051 as part of their Year 1 selective subject options.

Accordion
Critical Communication for Engineers · 12.5 pts

Critical Communication for Engineers (CCE) addresses the skills vital for professional success. Problem analysis skills and being able to present solutions effectively to your engineering peers, leaders and the broader community are a powerful combination. These are the focus of CCE.

They are challenging skills to learn—and you will likely work to improve them throughout your career. Effective communication is not merely about how to write a report or to give a formal presentation. Developing a strong argument—having something insightful to communicate—is essential for capturing the attention of an audience. This requires developing good interpersonal skills for gathering information and testing ideas.

The subject is divided into four ‘topics’ presented in sequence through the semester. Each topic is self-contained and dedicated to a different engineering issue. There is an assessment for each topic, meaning that you will be able to apply what you have learned from one topic to the following topics. This way, you will have a lot of opportunities to practise and develop your analytical and communication skills.

View detailed information in the Handbook

Design Innovation and Leadership · 12.5 pts

A central innovation task is to identify the real problem that lies beneath the surface-level symptoms. Another is to find the best solution to that underlying problem. Professional work is often the same. Clearly defined tasks can frequently be delegated to a machine or a technician. Furthermore, because innovation problems are big and messy, we often need diverse teams to solve them. This subject aims to give you theoretical frameworks, practical insights, and preliminary skills to solve ambiguous problems and to work successfully in teams.

You will develop these understandings, insights and skills by working on two projects.  In the first, your multi-disciplinary team, supported by a mentor, will propose an innovation that helps a partner (industry, hospital, not-for-profit, start-up, the University) address a strategic challenge.  Through that project, you will learn the “what and how” of delivering innovation-like projects – understanding the relationship between your challenge and the organisation’s strategy; designing, securing, and conducting interviews; analysing qualitative data to generate insights; ideation and creativity techniques to create value; stakeholder management; working in an intense team on an ambiguous problem; visual and oral communication.  In the second, you will develop the ability to apply to the same concepts to yourself – How will you know what you want and need?   How will you know if you need to change?  How will you innovate yourself as your interests, needs, and work world shift?

We aim for you and your team to own your project and your learning.

Design Innovation and Leadership (DIAL) is delivered by the University's multi-award-winning Innovation Practice Program. To learn more about the Program, including a video about the subject, the range of organizations that have participated as sponsors, examples of past projects, and to hear students talk about their experiences in the predecessor subject, CIE/CIP, please go to the Innovation Practice Program’s website.

All project sponsors will require that students maintain the confidentiality of their proprietary information.  The University will require all students (except those working on projects sponsored by the University itself) to assign any Intellectual Property they create (other than Copyright in their Assessment Materials) to the sponsor of their project. The projects may vary in the hours needed for a successful outcome.

Master of Engineering students please note: This subject has been integrated with the Skills Towards Employment Program (STEP) to create a straightforward pathway for completion of the Engineering Practice Hurdle (EPH). See the STEP page for more information.

Please note: If you commenced a Master of Engineering degree prior to 2025, DIAL qualifies for the selective slot previously held by Creating Innovative Engineering. Engineering students who commenced in 2025 or later may only take DIAL as an elective.

View detailed information in the Handbook

Creating Innovative Professionals · 12.5 pts

This subject aims to give you theoretical frameworks, practical insights, and preliminary skills to work in your chosen profession in contexts where determining what problem to work on is an important complement to knowing how to solve that problem.

You will develop these understandings, insights and skills by working on two projects. In the first, they will work in multi-disciplinary teams on a strategically-important innovation challenge sponsored by an industry organisation. Through that project, you will learn the “what and how” of delivering innovation-like projects – understanding the relationship between your challenge and the organisation’s strategy; designing, securing, and conducting interviews; analysing qualitative data to generate insights; ideation and creativity techniques to create value; stakeholder management; working in an intense team on an ambiguous problem; visual and oral communication. In the second, you will develop the ability to apply to the same concepts to yourself – How will you know what you want and need? How will you know if you need to change? How will you innovate yourself as your interests, needs, and work world shift?

We aim for you and your team to own your project and your learning.

Creating Innovative Professionals (CIP) and its companion subject, Creating Innovative Engineering ENGR90034 (CIE), are delivered by the University's Innovation Practice Program. To learn more about the Program, including the range of organizations that have participated as sponsors, examples of past projects and to hear students talk about their experiences in taking CIE/CIP, please go to the Innovation Practice Program’s website.

All project sponsors will require students to maintain the confidentiality of their proprietary information. The University will require all students (except those working on projects sponsored by the University itself) to assign any Intellectual Property they create (other than Copyright in their Assessment Materials) to the sponsor of their project.

View detailed information in the Handbook

Suggested second 100 points

Graduates of corresponding University of Melbourne undergraduate pathways start here.

Core

Students must complete the following subjects (100 points):

Accordion
Civil Hydraulics · 12.5 pts

AIMS

Students that successfully completely this subject will have the skills to practice under a chartered engineer to analyse problems and propose designs in the field of civil and environmental hydraulic engineering. Analysis of water flow in natural and constructed channels is studied in the river hydraulics module. This gives students the fundamental tools to learn techniques such as flood prediction, the design of channels for water movement in irrigation, and the prediction of water levels in channels in environmental flow studies. The movement of water and sediment along coasts due to wave action and currents is the focus of the coastal hydraulics module. An understanding of wave processes in coastal and surf zones is an essential starting point for the design of coastal structures such as piers, groins and jetties. With impending sea level rise, this will be a significant area of civil engineering practice for the foreseeable future. In the third module, the focus will be on processes of sediment transport and geomorphological change in rivers and coastal waters. The ability to analyse these processes can lead to graduates working in the area of river engineering, where for example the erosion of sediment from bridge abutments must be controlled. It is also important in ecological modelling where the movement of sediments and entrainment in water can impact on the habitat of stream biota.

The subject will draw on students’ existing knowledge of fluid mechanics, systems modelling, statistics, engineering mathematics and geomorphology gained from undergraduate or other preparatory study.

INDICATIVE CONTENT

  1. River Hydraulics: revision of basic concepts of steady-state open channel flow and extend this with applications in natural river channels, time dependent behaviour and flood hydraulics
  2. Coastal Hydraulics: basic wave theory and processes including in the surf zone
  3. Sediment Transport and Water Quality: mechanisms and models of particulate and solute transport in rivers and coastal environments.

View detailed information in the Handbook

Quantitative Environmental Modelling · 12.5 pts

AIMS

Environmental problems are highly complex and challenging to analyse and are often addressed through modelling. Being skilled at environmental modelling is a core professional requirement for an Environmental Engineer. This subject focuses on environmental modelling methodology including the steps of model conceptualisation, model construction, model evaluation and model application using a range of energy, water and waste models. The subject complements ENEN90032 Environmental Analysis Tools and ENEN90028 Monitoring Environmental Impacts which provide other core environmental engineering skills. It provides modelling skills for a wide range of discipline based subjects such as ENEN90006 Solid Wastes, ENEN90034 Environmental Applied Hydrology and ENEN90027 Energy for Sustainable Development. The subject is of particular relevance to all Environmental Engineers but is also of relevance to a range of engineering and environmental analysis disciplines that require advanced modelling skills.

INDICATIVE CONTENT

The relationship between theoretical and empirical understanding and their use in model conceptualisation and construction will be explored. This subject introduces a range of environmental modelling techniques applicable to different environmental problems. In this subject students will conceptualise and construct, evaluate and utilise their own model to undertake a technical evaluation of a specified range of potential solutions to an environmental problem. Students will also develop professional judgement skills to critically evaluate models and model results.

Specific topic areas:

  • System conceptualisation
  • Model construction and validation (computational accuracy)
  • Model evaluation
  • Calibration and optimisation
  • Model uncertainty assessment techniques
  • Issues of appropriate model complexity
  • Students will have an opportunity to review a modelling topic of their choice.

Students will use a numerical programming language to undertake modelling tasks and will be required to learn some programming skills in the subject.

Please view this video for further information: Quantitative Environmental Modelling

View detailed information in the Handbook

Spatial Data Analytics · 12.5 pts

Much of the world’s data relates to processes and objects situated in space. Spatial data is a rich source of insights about patterns, processes, trends and behaviours in space and time. To tap into these insights, specialised statistical, analytical and computational techniques are required.

This subject exposes students to fundamental aspects of spatial analytics. Students are introduced to key techniques and principles for the analysis of point, area, and field data, covering concepts such as point pattern analysis, spatial autocorrelation and geostatistics. As part of putting these techniques and principles into practice, students learn computational thinking approaches and acquire technical software skills in a high-level scripting language (such as Python and R) that enable them to effectively address spatial data science problems across a variety of domains.

The subject partners with other subjects on spatial data management and visualisation and is of particular relevance to people wishing to establish a career in digital infrastructure, spatial information technology, or the quantitative environmental modelling or planning sectors.

The subject delivers underlying and cross-disciplinary concepts of geographic information science (GIS) and spatial analytics in managing environmental and infrastructure data, and the visual representation of spatial and temporal information. Relating these relevant concepts to applications through case study examples from various sectors such as digital infrastructure, spatial information technology, quantitative environmental modelling, urban sustainability, and planning. Defining and realizing a student-driven project employing a modern scripting language and spatial-temporal relationships of the observed data from real world.

Students will be provided with pointers and material to familiarise themselves with the tools used in this subject before the semester starts; this element of preparation is expected for successful participation in the subject. Advice will be provided on LMS.

Please view this video for further information: Spatial Data Analytics

View detailed information in the Handbook

Monitoring Environmental Impacts · 12.5 pts

AIMS

The subject has a strong practical component with a five-day field camp during the week before the mid-semester break involving student-led environmental monitoring. There is also a semester long project to design and implement an environmental monitoring program supported by weekly practice classes.

Component skills taught in this subject:

  • Conceptualising environmental responses
  • Selecting and using environmental measurement techniques (considering scale issues)
  • Analysis of environmental monitoring data.

This subject is a critical foundation for a career for environmental engineering but is also relevant to civil and other engineering disciplines where environmental impacts of engineering projects must be addressed to ensure sustainable engineering solutions.

INDICATIVE CONTENT

Selection of measurement techniques and consideration of measurement scale, conceptualising environmental responses to human activities, environmental sampling and monitoring design, systematic review of causal evidence, statistical analysis of environmental effects, risk assessments for occupational health and safety during environmental field programs.

View detailed information in the Handbook

Environmental Analysis Tools · 12.5 pts

AIMS

The aim of this subject is to develop students’ capability to analyse, interpret, and communicate environmental data commonly encountered in environmental engineering research, assessment, and design. The subject equips students with core skills in exploratory data analysis, statistical inference, time series analysis, and multivariate data analysis, enabling them to summarise environmental variables effectively, identify appropriate statistical models for different problems & data structures, and draw sound inferences about underlying environmental processes. Students will apply a range of analytical methods, from classical statistical approaches to contemporary resampling methods where appropriate, to generate both deterministic and probabilistic insights from data.

The subject is organised into three integrated parts: Exploratory Data Analysis, Time Series Analysis, and Multivariate Data Analysis. It begins with methods for summarising and visualising data, probability models, hypothesis testing, and linear regression, providing a foundation for statistical reasoning and uncertainty analysis. It then examines the temporal structure of environmental data through time series decomposition, stochastic processes, forecasting, and forecast verification. The final part introduces multivariate methods for analysing complex environmental data sets, including matrix-based concepts, principal component analysis, and multivariate data-driven modelling. Throughout the subject, students work with environmental data sets drawn from real applications and develop practical analytical skills through Python-based tutorials and exercises.

The mathematical content builds on concepts introduced in undergraduate engineering mathematics and statistics, and this subject extends them in an applied environmental context. A key component of the subject is the translation of conceptual understanding into real-world problem solving through numerical methods and Python-based data analysis. The subject provides an essential analytical foundation for capstone design projects, research training, and professional practice, where the ability to interpret variability, uncertainty, temporal dynamics, and multivariable relationships in environmental data is increasingly important. It therefore supports the development of fundamental skills for careers in environmental engineering and related fields, where evidence-based analysis and clear communication of data-driven findings are critical.

INDICATIVE CONTENT

Specific topics include:

1. Exploratory Data Analysis – Understanding Data, Variation, Uncertainty, and Relationships

  • Summarising Data: Quantitative and Graphical Methods
  • Probability Models and Goodness-of-Fit Tests
  • Statistical Inference and Central Limit Theorem
  • Statistical Significance and Hypothesis Test
  • Linear Regression
  • Prediction and Uncertainty Analysis Using Linear Regression

2. Time Series Analysis – Understanding Temporal Dynamics and Predictability

  • Introduction to Time Series Analysis
  • Decomposition of Time Series Data
  • Analysis of Stochastic Components
  • Autoregressive and Moving Average Processes
  • Estimation in the Time Domain and Stochastic Ensemble Forecasting
  • Forecast Verification

3. Multivariate Data Analysis – Understanding Structure and Predictability in High-dimensional Environmental Data

  • Introduction to Multivariate analysis
  • Principle Component Analysis (PCA).
  • Multivariate Linear Regression
  • Prediction Using Large Datasets with PCA

View detailed information in the Handbook

Engineering Hydrology · 12.5 pts

In this subject, students will learn surface and groundwater hydrology with an emphasis on engineering applications. Techniques for statistical analyses of hydrological variables and mathematical modelling of hydrological processes will be introduced for engineering designs and investigations. The subject will introduce groundwater principles and modelling. Students will also acquire knowledge of surface water and groundwater quality.

View detailed information in the Handbook

Environmental Systems Modelling & Design · 12.5 pts

This subject is a core subject for the Environmental Engineering Systems major in the Bachelor of Science. It addresses the major steps in environmental engineering design using the systems approach and builds on knowledge gained in subjects including Engineering Mathematics, Fluid Mechanics and Earth Processes for Engineering and assumes a familiarity with concepts of sustainability and engineering systems.

Engineering systems are often highly complex, especially environmental systems which are often not well understood. Engineering design of models of such systems pose significant challenges since the models typically involve a large number of decision variables (and therefore a large number of potential solutions), multiple competing objectives and are often subject to various constraints.

Factors that influence the design process include logical problem formulation which facilitates a systematic approach to problem solution, analysis of the model to identify optimal design solutions and investigation of model performance. The final decision-making process can be further complicated by the fact that different stakeholders may have different or conflicting preferences.

View detailed information in the Handbook

Water Planning & an Uncertain Future · 12.5 pts

It is widely recognised that we are now managing our water resources in a non-stationary world. Climate change is affecting the timing and volume of water supply and demands, but the scale of these impacts remains uncertain. How do we best manage our water resources given this uncertain future? This subject will provide an introduction to decision making theory under uncertainty. The subject will cover topics such as

  • Decision making theory under uncertainty
  • Understanding climate change
  • Water supply management under climate change
  • Climate change and water demands (discussing impact on agriculture, Environment, Urban, First Nations)
  • Understanding climate change in the context of natural variability

View detailed information in the Handbook

Suggested third 100 points

Capstone

Students must complete the following subjects (25 points):

Accordion
Engineering Capstone Project Part 1 · 12.5 pts

The subject involves undertaking a substantial group project (typically in groups of three students) requiring an independent investigation on an approved topic in advanced engineering design and / or research. Each project is carried out under the supervision of a member of academic staff and where appropriate an industry partner.

The emphasis of the project can be associated with either:

  • A well-defined project description, often based on a task required by an external, industrial client. Students will be tutored in the synthesis of practical solutions to complex technical problems within a structured working environment, as if they were professional engineering practitioners; or
  • A project description that will require an explorative approach, where students will pursue outcomes associated with new knowledge or understanding, within the engineering science disciplines, often as an adjunct to existing academic research initiatives.

It is expected that the Capstone Project will incorporate findings associated with both well-defined professional practice and research principles and will provide students with the opportunity to integrate technical knowledge and generic skills gained in earlier years.

The project component of this subject is supplemented by a lecture course dealing with project management tools and practices.

Please note:

Students enrolled in the suite of Master of Engineering programs must be within the final 112.5 points of their degree to enrol.

Students enrolled in the Master of Industrial Engineering must be within the final 100 points of their degree to enrol.

Students are to take Engineering Capstone Project Part 1 and then subsequently continue with Engineering Capstone Project Part 2 in the following semester. Upon successful completion of this project, students will receive 25 points credit.

View detailed information in the Handbook

Engineering Capstone Project Part 2 · 12.5 pts

Please refer to ENGR90037 Engineering Capstone Project Part 1 for this information.

View detailed information in the Handbook

Selective

Choose one of the following 12.5 point subjects.

Accordion
Engineering Project Implementation · 12.5 pts

Project management provides an organisation with powerful tools that improve its ability to plan, organise and manage resources to bring about the successful completion of specific project goals and objectives. In undertaking this subject students will explore the principles and distinct technical skills of engineering management that are needed to implement a project. The subject is of particular relevance to students wishing to establish a career in engineering project management, but is also of relevance to a range of engineering design disciplines where design for the total life cycle of the product or infrastructure should be considered.

Topics covered include key aspects of the management principles, project planning & scheduling, management systems & control and management practices to enable execution of the project in a timely and financially prudent manner.

Note: This subject has been integrated with the Skills Towards Employment Program (STEP) and contains activities that can assist in the completion of the Engineering Practice Hurdle (EPH).

View detailed information in the Handbook

Environmental Management ISO 14000 · 12.5 pts

AIMS

Environmental Management ISO 14000 aims to provide students with the skills and knowledge to apply and help develop environmental management systems. The subject builds on the student’s knowledge of risk management, such as that gained in CVEN30008 Risk Analysis, and develops their ability to identify, assess and manage environmental risk that arises from the construction and operation of manufacturing or infrastructure facilities. It also builds on knowledge about sustainability such as is learnt in the subject CVEN90043 Sustainable Infrastructure Engineering, and other management systems such as those learnt in CVEN90045 Engineering Project Implementation.

At the conclusion of the subject, it is expected that students should be able to work under supervision in a capacity where they are responsible for the maintenance of an existing environmental management system, or assist in developing a new system. They should also be in a position to conduct simple internal audits and assist in more complex internal audits. The subject does not provide students with sufficient practice and skills to immediately become an accredited auditor in Australia.

INDICATIVE CONTENT

Environmental Management ISO 14000 will cover the following related areas of study: the history of EMS from Demming Wheel to ISO 14000 series; the elements of an EMS; systems audit and review and gap analysis; legal requirements, due diligence document control, liability and ISO 9000 review; regulation and accreditation; community consultation; emerging issues in environmental management.

View detailed information in the Handbook

Core (Earth Observation)

Choose at least four of the following five subjects, plus any environmental engineering elective:

Accordion
Remote Sensing · 12.5 pts

AIMS

To introduce students to the techniques and technology of remote sensing: the extraction of information from satellite and airborne image data. This subject assumes prior knowledge of image processing techniques such as that acquired in subjects such as GEOM30009 Imaging the Environment. Students passing this subject will have the skills to work under supervision in a spatial information or remote sensing agency of consultancy providing services, for example, to natural resource managers.

INDICATIVE CONTENT

Use of image processing systems. High level digital image processing, correction and classification; applications of remote sensing in the geosciences, engineering, and resource assessment and inventory; image data in geographic information systems. Detailed application studies in emergency/disaster management, environmental assessment and geological mapping.

View detailed information in the Handbook

Spatial Data Management · 12.5 pts

This subject combines practical spatial data management with the underpinning theories of spatial and spatiotemporal data representation and handling from Geographic Information Science. Spatial information is answering ‘where’ and ‘when’ questions – which are fundamental in decision making in complex systems, be it in urban planning, traffic and infrastructure management, environmental management, public health and sustainability, or any other social, economic, and environmental context.

The subject introduces foundations of effective, efficient, and large-scale spatial data management. This subject will cover the concepts, methods, and approaches that allow for efficient representation, querying, and retrieval of spatial data, in a modern ecosystem of spatial databases interfacing a geographic information system.

The knowledge acquired is fundamental for subsequent studies in spatial data analytics and visualisation, and is of particular relevance to people wishing to establish a career in the spatial information, the environmental, or the planning industry. It is also suited for every postgraduate student who is looking for solid skills with Geographic Information Systems.

In this subject, we will discuss the intricacies of computational representation and management of spatial information. The subject takes a spatial database perspective to management of extensive spatial datasets. The subject will cover the modelling, loading, transformation, analysis, and retrieval of spatial data in spatial databases. The subject covers data representations (vector, raster, and network data); spatial operations, including geometric, topological, set-oriented, and network operations; spatial indexes and access methods, including quadtrees and R-trees. The subject exposes the students to the whole lifecycle of spatial data management in a team-based project.

Please view this video for further information: Spatial Data Management

View detailed information in the Handbook

Information Visualisation · 12.5 pts

Information visualisation is about using and designing effective mechanisms for presenting and exploring the patterns embedded in large and complex data sets, and to support decision making. Information Visualisation is important in a range of domains dealing with voluminous data rich in structure, among them, prominently, data in the spatial domain or data referenced to the spatial domain. Through its focus on presentation and interaction with spatial information, this subject complements related subjects that deal with the storage and querying of data (such as GEOM90008 Spatial Data Management), and the processing of data (such as GEOM90006 Spatial Data Analytics). This subject is vital for anyone wishing to work with large datasets. It will also be of relevance to those with an interest in design, especially graphical and interaction design.

The subject will cover: Fundamentals of information visualisation and data graphics; visual thinking, human sensing and perception; foundations of data graphics and cartography; graphical user interface design; human computer interaction and human centred design. The lectures are also supported with several labs to develop student experience in this domain.

In the labs, some tools such as Tableau and R libraries will be used to create a wide range of spatial and non-spatial visualisations in order to present data and discover patterns. These tools will also be used to create interactivity on visualisations. In addition, different visualisation types will be discussed and critiqued for different purposes. These will empower you to visualise various data sets in an appropriate form based on identified communication needs.

View detailed information in the Handbook

Advanced Imaging · 12.5 pts

This subject will introduce students to advanced imaging technologies and the methods for extracting quantitative information from multi-source imagery. This subject builds on the knowledge of subjects such as imaging the environment, by considering multi-source images of the target to provide additional information such as the distance from the target to object from which a three-dimensional representation can be constructed. It also considers imaging of targets where illumination is provided by the instrument rather than natural light reflection or radiation from the target. Students who successfully complete this subject may find work in a variety of remote sensing or specialist consultancies or agencies. The techniques learnt may also be applied to other industries such as quality control in manufacturing or recording of archaeological sites.

The subject is of particular relevance to students wishing to establish a career in infrastructure engineering, civil engineering, property management, surveying, spatial information and urban planning but is also relevant to a range of disciplines where 3D building information should be considered.

View detailed information in the Handbook

Applications in Precision Agriculture · 12.5 pts

Precision Agriculture can be broadly defined as site-specific soil-crop or animal-specific management of agricultural production systems by leveraging on technology and data. This subject will build students’ knowledge and skills in the key principles and practices of Precision Agriculture in a range of agricultural production contexts including broadacre cropping, horticulture and livestock farming. Frameworks and case studies of technological innovation, adoption and diffusion in the agricultural sector will be an integral component of the curriculum. Through a series of seminars, practicals, fieldwork excursion activities coupled with industry involvement, students will be equipped to work effectively in the increasingly networked, digital, automated and data-rich environment of primary production, and gain experience with Precision Agriculture equipment. Adopting a ‘Big Data’ perspective, students will acquire skills in agricultural/environmental data management and analysis, and their application to crops and animals

View detailed information in the Handbook

Core (Energy Systems)

Choose at least four of the following five subjects, plus any environmental engineering elective:

Accordion
Solar Energy · 12.5 pts

AIMS

This subject provides the application of principles of solar energy engineering. A number of solar technologies and applications methods are investigated.

This subject uses a project based learning where students work in teams to design a solar system for a particular application considering environmental, social and financial constraints. Students learn to apply the principles of solar energy and design.

Knowledge gained in this subject will allow graduates to practice in the area of renewable energy industry. The subject complements other subjects offered in the energy theme of the Department such as Energy for Sustainable Development and Sustainable Infrastructure Engineering.

INDICATIVE CONTENT

  • Introduction to Solar Energy in the energy economy; Fundamental heat & mass transfer; Radiation properties of materials; and selective surfaces
  • Solar Geometry and solar angles; atmospheric effects and radiation prediction; and Solar radiation measurement
  • Flat plate collectors design and performance characteristic
  • Concentrating collectors design and performance characteristic; Evacuated tube collectors
  • Solar System design methods
  • Fundamentals of photovoltaic systems
  • Solar process heating
  • Solar drying, Solar cookers, Green houses and Solar stills
  • Solar water pumping; Solar refrigeration
  • Built environment applications passive and active systems
  • Solar hot water and solar heat pump systems.

View detailed information in the Handbook

Energy for Sustainable Development · 12.5 pts

AIMS

This subject provides understanding of the principles of development and sustainability in the context of renewable and non-renewable energy sources. Social, environmental and financial implications of technologies to de-carbonise emissions and technologies that can offer a future non-carbon energy supply are discussed.

This subject uses project based learning where students work in teams to investigate the appropriateness of a selected energy source or a selected technology for a particular country, region or a location. Students learn to apply the principles of sustainability and development.

Knowledge gained in this subject will allow graduates to practice in the area of energy policy and planning. The subject complements other subjects offered in the energy theme of the Department such as Solar Energy, Energy Efficiency Technology and Sustainable Infrastructure Engineering.

INDICATIVE CONTENT

  • Introduction: What does 'sustainable' mean? What is development? A model for sustainable development
  • Consumption (needs versus wants), Global perspectives (inequality and resource distribution)
  • Role of energy in development
  • Requirements for an sustainable energy supply
  • Carbon versus non-carbon energy supply - overview (resources, usage)
  • Problems with past patterns of energy use
  • Energy efficiency (potential and limits)
  • Energy Policy
  • Transport futures and peak oil (resources)
  • Carbon capture and storage
  • Nuclear fission and fusion
  • Renewable energy technologies - large and small
  • Discussion Forum: Reality of Sustainability.

View detailed information in the Handbook

Energy Efficiency Technology · 12.5 pts

AIMS

This subject explores the scope and methods for improving energy efficiency across a range of sectors. Improving energy efficiency is one of the key responses to increasingly scarce natural resources and problems caused by pollutants arising from energy production and use. A range of energy supply and usage scenarios will be considered including transport, manufacturing, commercial and domestic sectors. Collection of information by auditing and then using this information for planning, demand management and impact assessment will be investigated.

Knowledge gained in this subject will allow graduates to practice in the area of energy efficiency. This subject draws on students’ fundamental understanding of engineering efficiency, as well as their ability to use mathematics and statistics to analyse data to inform innovative solutions. The subject complements other subjects offered in the energy theme of the Department such as Energy for Sustainable Development and Sustainable Infrastructure Engineering.

INDICATIVE CONTENT

Areas of study include: potential for improvements in energy efficiency in petrol and diesel vehicles; energy efficiency technologies for the manufacturing, commercial and domestic sectors; demand side management; integrated resource planning; energy auditing; and economic and environmental impacts.

These are applied to the following thematic areas;

  • Introduction: fundamentals, energy conversion, supply, distribution and utilisation of energy, Indices, indicators and measurements
  • Advanced energy systems
  • Energy audits
  • Manufacturing sector
  • Commercial sector (office & retail)
  • Residential sector
  • Transport sector
  • Life cycle energy analysis
  • Developing countries & remote areas
  • Energy policy and planning

View detailed information in the Handbook

Sustainable Buildings · 12.5 pts

AIMS

This subject provides a multi-disciplinary overview of the design of sustainable buildings and considers the design from an architectural, services engineering, facade engineering, environmental engineering and structural engineering, tenants and owners perspective. A number of industry based case study examples will be introduced to complement the lectures.

This subject uses a project based learning project where students work in teams to design a new or refurbished commercial building to improve the environmental and social performance of the building. Students learn to apply sustainability-rating tools used in industry to their solutions.

Students in the subject come from different disciplinary backgrounds, principally engineering and architecture, and are expected to share their knowledge and learn from each other to successfully complete the project work. This stands them in good stead for entering professional practice in the area of sustainability.

INDICATIVE CONTENT

Topics include: ecological sustainable design, life cycle analysis, planning for sustainable buildings and cities, regulatory environment, barriers to green buildings, green building rating tools, material selection, embodied energy, operating energy, indoor environmental quality (noise, light and air), facade systems, ventilation systems, transportation, water treatment systems, water efficiency, building economics, and staff productivity. These will be covered in the following thematic areas:

  • Sustainable Cities
  • Sustainable Precincts
  • Building Envelope
  • Building services - Heating, Ventilation and Air Conditioning
  • Building services - Energy
  • Building Services - water
  • Existing Buildings
  • Green Building Rating Tools
  • ESD Drivers and Barriers
  • ESD Economics
  • the process of a green building - 60L CH2
  • Business Perspective
  • Case Studies.

View detailed information in the Handbook

Solid Wastes to Sustainable Resources · 12.5 pts

AIMS

In this subject students will learn about the fundamentals of the solid waste stream in modern society. Emphasis will be placed on the life cycle aspects of waste and the prospect of minimizing waste and maximizing the economic value of waste streams. Interaction between solid wastes and liquid and gaseous waste streams will also be considered. The subject builds on knowledge from subjects such as CVEN90043 Sustainable Infrastructure Engineering where general principles of sustainability are discussed. Student knowledge of systems and material cycles, learnt in subjects such as ENEN90031 Quantitative Environmental Modelling and CVEN30010 Systems Modelling and Design or their equivalent in other subjects forms the basic grounding for the subject. The subject is of particular relevance to students wishing to establish a career in waste management, but is also relevant to a range of engineering design disciplines where design for the total life cycle of the product or infrastructure should be considered.

INDICATIVE CONTENT

Regulatory aspects of waste management, sustainability programs in government and private sector, life cycle assessment, organic waste treatment and management, inorganic waste treatment and management, landfill hydrology and design, cleaner production strategies, hazardous waste management, collection and transport logistics.

View detailed information in the Handbook

Core (Water Systems)

Choose at least four of the following six subjects, plus any environmental engineering elective:

Accordion
Advanced Hydrological Solutions · 12.5 pts

In this subject, students will learn to solve practical hydrological problems by using the latest research results and the latest research and industry tools. Learning will be student-led and project-based, supported by teaching staff members. Students will learn to scope projects, develop methods, collate data, conduct analyses, write up and present project reports. Each student will work on three projects.
Project modules will vary from year to year. Example modules are design flood modelling, groundwater modelling, hydrodynamic modelling, rainfall-runoff modelling, river system modelling.

View detailed information in the Handbook

Water Sensitive Urban Design · 12.5 pts

There is increasing recognition around the world of the threats facing urban environments and their water resources. In many cities water demand is approaching or exceeding limits of sustainability, leading to increasing interest in alternative water sources, such as stormwater harvesting, wastewater recycling and desalination. At the same time, receiving environments such as urban streams and bays are threatened by pollution and erosion from stormwater runoff, or eutrophication due to discharge of poorly-treated wastewater. There is also increasing recognition of the importance of water in the urban landscape, and of its role in the welfare and health of humans.

The concept of “water sensitive urban design” (WSUD), also known as Integrated Urban Water Management (IUWM) has developed in response to these changes. It aims to better integrate water into the urban landscape, improving the sustainability and liveability of cities (for example through the sustaining of health urban vegetation), while securing adequate resources for growing cities.

This subject reflects the integration inherent in WSUD. The course will teach you about the individual urban water cycle components (water supply, wastewater, stormwater, groundwater), but will primary focus on their interactions and integration, and particularly their interaction with the built and natural environment.

The subject includes a mix of lectures and project-based learning, including a major project (broken up into stages throughout the semester), a full-day excursion and workshops involving leading WSUD experts from public and private industry. The subject will cover:

  1. An introduction to WSUD (its principles, objectives, context within other urban planning and sustainability policy & practice) in developed and developing countries
  2. Water in the urban landscape, the urban water cycle and its component characteristics
  3. Social, environmental and economic impacts of urban water management
  4. Structural tools and techniques (conceptual design, operation, maintenance)
  5. Non-structural tools and techniques
  6. Choice of scales
  7. Analysis methods (water balance calculations, water end-use analysis)
  8. Lifecycle cost analysis and multi-criteria evaluation frameworks
  9. Design tools and software (e.g. MUSIC, Urban Developer, House Water Expert)
  10. Institutional and implementation issues
  11. Integration between water and other urban design elements

View detailed information in the Handbook

Water and Waste Water Management · 12.5 pts

AIMS

In this subject students will learn about the fundamentals of water quality and the associated standards for use as potable water, recycled water or discharge into the environment in a sustainable manner. The subject will include the identification of risks and measures to control those risks and various treatment processes including physical, chemical and microbiological treatment of water and wastewater. The concept of integrated water management will be introduced and reinforced in the group based project work throughout the semester. Students will learn about the systems for water reclamation and reuse. This subject builds on a range of student’s general knowledge of water systems engineering that is developed in subjects like Systems Modelling and Design and builds on general knowledge of chemistry and biology. It is also assumed that students have developed skills on identifying and sourcing information, and can effectively work as a team to solve larger problems.

Graduates from this subject may apply the skills developed in the water supply, waste water treatment, or water sensitive urban design areas.

INDICATIVE CONTENT

This subject covers theoretical and practical management aspects of sustainable water supply and treatment, wastewater treatment and reuse. Specific topics include:

  • Integrated water management
  • Risk identification and management for water services
  • Water quality guidelines, regulations and performance criteria for treatment plant design
  • Water treatment processes and waste disposal
  • Wastewater treatment - physical, chemical and biological treatment technologies
  • Systems for water reclamation and reuse.

The students will produce a conceptual design of a water and wastewater treatment system for a small town.

View detailed information in the Handbook

Computational Fluid Dynamics · 12.5 pts

AIM

Within this subject you will learn how to use Computational Fluid Dynamics (CFD) to solve practical industrial and research related fluid flow and heat/mass transfer problems. The major assessment within this subject is a capstone project, requiring a CFD treatment of a major piece of equipment related to your degree discipline area. This project may be industry or research based. Learning is supported by a number of structured group-based workshops completed throughout the semester, requiring completion of associated on-line quizzes. Guest lectures from academia and industry will share insights into how they use CFD in their research/workplace.

SUBJECT CONTENT

The content of this subject is split between two related modules:

1) Fundamentals of CFD: Within this module we will cover the mathematical basis of modern CFD methods, using MATLAB as a programming tool to demonstrate specific fundamental concepts. Specific topics include overview, conservation laws, advection-diffusion equations, differencing schemes, finite volume method, stability analysis, error analysis, boundary conditions and solution algorithms for solving Navier-Stokes equations.

2) Applications of CFD: This module will be based around the industry-relevant CFD package ANSYS Fluent. Specific topics include: How to run a basic simulation, meshing, laminar 2D and 3D flows, boundary conditions, discretisation methods, visualisation, turbulence, disperse multiphase flows, free-surface multiphase flows, coupled heat and mass transfer, chemical reactions, use of CFD in industry and research.

Please view this video for further information: Computational Fluid Dynamics

View detailed information in the Handbook

Hydrogeology/Environmental Geochemistry · 12.5 pts

This subject will investigate, both qualitatively and quantitatively, the fundamental physical and chemical processes governing groundwater flow and composition, including aquifer properties, regional geology, hydrology and water-rock interactions. Field and laboratory methods such as well tests, water analysis in the field and in the laboratory and data analysis are demonstrated and used to characterise hydraulic conductivity and mixing, water types and potential contamination. A one-week field excursion to the Newer Volcanic Province and the Limestone Coast will draw together many of these concepts and will emphasise surface and groundwater connectivity and groundwater supported ecosystems.

This subject will have a 1-week intensive field trip that will be delivered in the week prior to the start of Semester 1 (pre-teaching period) and 6 weeks of teaching during weeks 1-6 of Semester 1.

View detailed information in the Handbook

International River Basin Management · 12.5 pts

AIMS

AIMS

River basins are challenged by increasing population pressures, rapid urbanization and climate change impacts. A river basin is a semi-closed ecological and economic system, representing logical management units of the water cycle, throughout which all decisions and actions have interdependent ecological, social and economic implications. Thus, river basin management needs interdisciplinary knowledge. This subject aims to equip tomorrow’s water managers with the adaptive approach by linking cutting edge knowledge to stress-tested practices in river basin management.

In addition to 10 weeks of classroom teaching, this subject includes a 5-7 day field trip held in either China or Australia, to be held in the first week after the exam period. Students are expected to make a contribution towards the cost of the field trip.

View detailed information in the Handbook

Electives

Students without a specialisation must complete 62.5 points from the following electives. Students with a specialisation may complete one 12.5 point elective if they only choose four of the five Specialisation core subjects.

Accordion
Water Sensitive Urban Design · 12.5 pts

There is increasing recognition around the world of the threats facing urban environments and their water resources. In many cities water demand is approaching or exceeding limits of sustainability, leading to increasing interest in alternative water sources, such as stormwater harvesting, wastewater recycling and desalination. At the same time, receiving environments such as urban streams and bays are threatened by pollution and erosion from stormwater runoff, or eutrophication due to discharge of poorly-treated wastewater. There is also increasing recognition of the importance of water in the urban landscape, and of its role in the welfare and health of humans.

The concept of “water sensitive urban design” (WSUD), also known as Integrated Urban Water Management (IUWM) has developed in response to these changes. It aims to better integrate water into the urban landscape, improving the sustainability and liveability of cities (for example through the sustaining of health urban vegetation), while securing adequate resources for growing cities.

This subject reflects the integration inherent in WSUD. The course will teach you about the individual urban water cycle components (water supply, wastewater, stormwater, groundwater), but will primary focus on their interactions and integration, and particularly their interaction with the built and natural environment.

The subject includes a mix of lectures and project-based learning, including a major project (broken up into stages throughout the semester), a full-day excursion and workshops involving leading WSUD experts from public and private industry. The subject will cover:

  1. An introduction to WSUD (its principles, objectives, context within other urban planning and sustainability policy & practice) in developed and developing countries
  2. Water in the urban landscape, the urban water cycle and its component characteristics
  3. Social, environmental and economic impacts of urban water management
  4. Structural tools and techniques (conceptual design, operation, maintenance)
  5. Non-structural tools and techniques
  6. Choice of scales
  7. Analysis methods (water balance calculations, water end-use analysis)
  8. Lifecycle cost analysis and multi-criteria evaluation frameworks
  9. Design tools and software (e.g. MUSIC, Urban Developer, House Water Expert)
  10. Institutional and implementation issues
  11. Integration between water and other urban design elements

View detailed information in the Handbook

Solid Wastes to Sustainable Resources · 12.5 pts

AIMS

In this subject students will learn about the fundamentals of the solid waste stream in modern society. Emphasis will be placed on the life cycle aspects of waste and the prospect of minimizing waste and maximizing the economic value of waste streams. Interaction between solid wastes and liquid and gaseous waste streams will also be considered. The subject builds on knowledge from subjects such as CVEN90043 Sustainable Infrastructure Engineering where general principles of sustainability are discussed. Student knowledge of systems and material cycles, learnt in subjects such as ENEN90031 Quantitative Environmental Modelling and CVEN30010 Systems Modelling and Design or their equivalent in other subjects forms the basic grounding for the subject. The subject is of particular relevance to students wishing to establish a career in waste management, but is also relevant to a range of engineering design disciplines where design for the total life cycle of the product or infrastructure should be considered.

INDICATIVE CONTENT

Regulatory aspects of waste management, sustainability programs in government and private sector, life cycle assessment, organic waste treatment and management, inorganic waste treatment and management, landfill hydrology and design, cleaner production strategies, hazardous waste management, collection and transport logistics.

View detailed information in the Handbook

Energy Efficiency Technology · 12.5 pts

AIMS

This subject explores the scope and methods for improving energy efficiency across a range of sectors. Improving energy efficiency is one of the key responses to increasingly scarce natural resources and problems caused by pollutants arising from energy production and use. A range of energy supply and usage scenarios will be considered including transport, manufacturing, commercial and domestic sectors. Collection of information by auditing and then using this information for planning, demand management and impact assessment will be investigated.

Knowledge gained in this subject will allow graduates to practice in the area of energy efficiency. This subject draws on students’ fundamental understanding of engineering efficiency, as well as their ability to use mathematics and statistics to analyse data to inform innovative solutions. The subject complements other subjects offered in the energy theme of the Department such as Energy for Sustainable Development and Sustainable Infrastructure Engineering.

INDICATIVE CONTENT

Areas of study include: potential for improvements in energy efficiency in petrol and diesel vehicles; energy efficiency technologies for the manufacturing, commercial and domestic sectors; demand side management; integrated resource planning; energy auditing; and economic and environmental impacts.

These are applied to the following thematic areas;

  • Introduction: fundamentals, energy conversion, supply, distribution and utilisation of energy, Indices, indicators and measurements
  • Advanced energy systems
  • Energy audits
  • Manufacturing sector
  • Commercial sector (office & retail)
  • Residential sector
  • Transport sector
  • Life cycle energy analysis
  • Developing countries & remote areas
  • Energy policy and planning

View detailed information in the Handbook

Sustainable Buildings · 12.5 pts

AIMS

This subject provides a multi-disciplinary overview of the design of sustainable buildings and considers the design from an architectural, services engineering, facade engineering, environmental engineering and structural engineering, tenants and owners perspective. A number of industry based case study examples will be introduced to complement the lectures.

This subject uses a project based learning project where students work in teams to design a new or refurbished commercial building to improve the environmental and social performance of the building. Students learn to apply sustainability-rating tools used in industry to their solutions.

Students in the subject come from different disciplinary backgrounds, principally engineering and architecture, and are expected to share their knowledge and learn from each other to successfully complete the project work. This stands them in good stead for entering professional practice in the area of sustainability.

INDICATIVE CONTENT

Topics include: ecological sustainable design, life cycle analysis, planning for sustainable buildings and cities, regulatory environment, barriers to green buildings, green building rating tools, material selection, embodied energy, operating energy, indoor environmental quality (noise, light and air), facade systems, ventilation systems, transportation, water treatment systems, water efficiency, building economics, and staff productivity. These will be covered in the following thematic areas:

  • Sustainable Cities
  • Sustainable Precincts
  • Building Envelope
  • Building services - Heating, Ventilation and Air Conditioning
  • Building services - Energy
  • Building Services - water
  • Existing Buildings
  • Green Building Rating Tools
  • ESD Drivers and Barriers
  • ESD Economics
  • the process of a green building - 60L CH2
  • Business Perspective
  • Case Studies.

View detailed information in the Handbook

Energy for Sustainable Development · 12.5 pts

AIMS

This subject provides understanding of the principles of development and sustainability in the context of renewable and non-renewable energy sources. Social, environmental and financial implications of technologies to de-carbonise emissions and technologies that can offer a future non-carbon energy supply are discussed.

This subject uses project based learning where students work in teams to investigate the appropriateness of a selected energy source or a selected technology for a particular country, region or a location. Students learn to apply the principles of sustainability and development.

Knowledge gained in this subject will allow graduates to practice in the area of energy policy and planning. The subject complements other subjects offered in the energy theme of the Department such as Solar Energy, Energy Efficiency Technology and Sustainable Infrastructure Engineering.

INDICATIVE CONTENT

  • Introduction: What does 'sustainable' mean? What is development? A model for sustainable development
  • Consumption (needs versus wants), Global perspectives (inequality and resource distribution)
  • Role of energy in development
  • Requirements for an sustainable energy supply
  • Carbon versus non-carbon energy supply - overview (resources, usage)
  • Problems with past patterns of energy use
  • Energy efficiency (potential and limits)
  • Energy Policy
  • Transport futures and peak oil (resources)
  • Carbon capture and storage
  • Nuclear fission and fusion
  • Renewable energy technologies - large and small
  • Discussion Forum: Reality of Sustainability.

View detailed information in the Handbook

Water and Waste Water Management · 12.5 pts

AIMS

In this subject students will learn about the fundamentals of water quality and the associated standards for use as potable water, recycled water or discharge into the environment in a sustainable manner. The subject will include the identification of risks and measures to control those risks and various treatment processes including physical, chemical and microbiological treatment of water and wastewater. The concept of integrated water management will be introduced and reinforced in the group based project work throughout the semester. Students will learn about the systems for water reclamation and reuse. This subject builds on a range of student’s general knowledge of water systems engineering that is developed in subjects like Systems Modelling and Design and builds on general knowledge of chemistry and biology. It is also assumed that students have developed skills on identifying and sourcing information, and can effectively work as a team to solve larger problems.

Graduates from this subject may apply the skills developed in the water supply, waste water treatment, or water sensitive urban design areas.

INDICATIVE CONTENT

This subject covers theoretical and practical management aspects of sustainable water supply and treatment, wastewater treatment and reuse. Specific topics include:

  • Integrated water management
  • Risk identification and management for water services
  • Water quality guidelines, regulations and performance criteria for treatment plant design
  • Water treatment processes and waste disposal
  • Wastewater treatment - physical, chemical and biological treatment technologies
  • Systems for water reclamation and reuse.

The students will produce a conceptual design of a water and wastewater treatment system for a small town.

View detailed information in the Handbook

Solar Energy · 12.5 pts

AIMS

This subject provides the application of principles of solar energy engineering. A number of solar technologies and applications methods are investigated.

This subject uses a project based learning where students work in teams to design a solar system for a particular application considering environmental, social and financial constraints. Students learn to apply the principles of solar energy and design.

Knowledge gained in this subject will allow graduates to practice in the area of renewable energy industry. The subject complements other subjects offered in the energy theme of the Department such as Energy for Sustainable Development and Sustainable Infrastructure Engineering.

INDICATIVE CONTENT

  • Introduction to Solar Energy in the energy economy; Fundamental heat & mass transfer; Radiation properties of materials; and selective surfaces
  • Solar Geometry and solar angles; atmospheric effects and radiation prediction; and Solar radiation measurement
  • Flat plate collectors design and performance characteristic
  • Concentrating collectors design and performance characteristic; Evacuated tube collectors
  • Solar System design methods
  • Fundamentals of photovoltaic systems
  • Solar process heating
  • Solar drying, Solar cookers, Green houses and Solar stills
  • Solar water pumping; Solar refrigeration
  • Built environment applications passive and active systems
  • Solar hot water and solar heat pump systems.

View detailed information in the Handbook

Remote Sensing · 12.5 pts

AIMS

To introduce students to the techniques and technology of remote sensing: the extraction of information from satellite and airborne image data. This subject assumes prior knowledge of image processing techniques such as that acquired in subjects such as GEOM30009 Imaging the Environment. Students passing this subject will have the skills to work under supervision in a spatial information or remote sensing agency of consultancy providing services, for example, to natural resource managers.

INDICATIVE CONTENT

Use of image processing systems. High level digital image processing, correction and classification; applications of remote sensing in the geosciences, engineering, and resource assessment and inventory; image data in geographic information systems. Detailed application studies in emergency/disaster management, environmental assessment and geological mapping.

View detailed information in the Handbook

Information Visualisation · 12.5 pts

Information visualisation is about using and designing effective mechanisms for presenting and exploring the patterns embedded in large and complex data sets, and to support decision making. Information Visualisation is important in a range of domains dealing with voluminous data rich in structure, among them, prominently, data in the spatial domain or data referenced to the spatial domain. Through its focus on presentation and interaction with spatial information, this subject complements related subjects that deal with the storage and querying of data (such as GEOM90008 Spatial Data Management), and the processing of data (such as GEOM90006 Spatial Data Analytics). This subject is vital for anyone wishing to work with large datasets. It will also be of relevance to those with an interest in design, especially graphical and interaction design.

The subject will cover: Fundamentals of information visualisation and data graphics; visual thinking, human sensing and perception; foundations of data graphics and cartography; graphical user interface design; human computer interaction and human centred design. The lectures are also supported with several labs to develop student experience in this domain.

In the labs, some tools such as Tableau and R libraries will be used to create a wide range of spatial and non-spatial visualisations in order to present data and discover patterns. These tools will also be used to create interactivity on visualisations. In addition, different visualisation types will be discussed and critiqued for different purposes. These will empower you to visualise various data sets in an appropriate form based on identified communication needs.

View detailed information in the Handbook

Spatial Data Management · 12.5 pts

This subject combines practical spatial data management with the underpinning theories of spatial and spatiotemporal data representation and handling from Geographic Information Science. Spatial information is answering ‘where’ and ‘when’ questions – which are fundamental in decision making in complex systems, be it in urban planning, traffic and infrastructure management, environmental management, public health and sustainability, or any other social, economic, and environmental context.

The subject introduces foundations of effective, efficient, and large-scale spatial data management. This subject will cover the concepts, methods, and approaches that allow for efficient representation, querying, and retrieval of spatial data, in a modern ecosystem of spatial databases interfacing a geographic information system.

The knowledge acquired is fundamental for subsequent studies in spatial data analytics and visualisation, and is of particular relevance to people wishing to establish a career in the spatial information, the environmental, or the planning industry. It is also suited for every postgraduate student who is looking for solid skills with Geographic Information Systems.

In this subject, we will discuss the intricacies of computational representation and management of spatial information. The subject takes a spatial database perspective to management of extensive spatial datasets. The subject will cover the modelling, loading, transformation, analysis, and retrieval of spatial data in spatial databases. The subject covers data representations (vector, raster, and network data); spatial operations, including geometric, topological, set-oriented, and network operations; spatial indexes and access methods, including quadtrees and R-trees. The subject exposes the students to the whole lifecycle of spatial data management in a team-based project.

Please view this video for further information: Spatial Data Management

View detailed information in the Handbook

Advanced Imaging · 12.5 pts

This subject will introduce students to advanced imaging technologies and the methods for extracting quantitative information from multi-source imagery. This subject builds on the knowledge of subjects such as imaging the environment, by considering multi-source images of the target to provide additional information such as the distance from the target to object from which a three-dimensional representation can be constructed. It also considers imaging of targets where illumination is provided by the instrument rather than natural light reflection or radiation from the target. Students who successfully complete this subject may find work in a variety of remote sensing or specialist consultancies or agencies. The techniques learnt may also be applied to other industries such as quality control in manufacturing or recording of archaeological sites.

The subject is of particular relevance to students wishing to establish a career in infrastructure engineering, civil engineering, property management, surveying, spatial information and urban planning but is also relevant to a range of disciplines where 3D building information should be considered.

View detailed information in the Handbook

Applications in Precision Agriculture · 12.5 pts

Precision Agriculture can be broadly defined as site-specific soil-crop or animal-specific management of agricultural production systems by leveraging on technology and data. This subject will build students’ knowledge and skills in the key principles and practices of Precision Agriculture in a range of agricultural production contexts including broadacre cropping, horticulture and livestock farming. Frameworks and case studies of technological innovation, adoption and diffusion in the agricultural sector will be an integral component of the curriculum. Through a series of seminars, practicals, fieldwork excursion activities coupled with industry involvement, students will be equipped to work effectively in the increasingly networked, digital, automated and data-rich environment of primary production, and gain experience with Precision Agriculture equipment. Adopting a ‘Big Data’ perspective, students will acquire skills in agricultural/environmental data management and analysis, and their application to crops and animals

View detailed information in the Handbook

Leadership for Innovation · 12.5 pts

This subject, which is offered to students who have completed ENGR90034 Creating Innovative Engineering (CIE), will give participants core leadership skills for managing professionals engaged in innovation and other ambiguous project-based work.

The subject teaches leadership at three levels (12 hours each). The first level, taught intensively before the start of the semester, will enable you to learn basic management theory that allows you to bridge from the skills and theory taught in CIE to the level needed to start mentoring a team in CIE or another subject. The second level, taught as four three-hour workshops during the semester, will focus on key thematic issues in the leadership of innovative teams. The third level, taught in twelve one-hour sessions, will focus on specific leadership skills. These include facilitation, coaching, mentoring, conflict resolution, etc. Students will apply the theory and skills to the mentoring of a student project team in CIE or another subject within the University.

You will apply what you are learning, and develop skills, by mentoring an industry-sponsored project within CIE or a project within another subject. CIE mentors will also need to manage their relationship with the external sponsor of the project.

View detailed information in the Handbook

Engineering Contracts and Procurement · 12.5 pts

AIMS

Students will learn how to structure and work with engineering contracts to deliver and procure engineering outcomes in this subject. Students will develop a working knowledge of contract administration and gain an understanding of commercial aspects of engineering. All engineers interface commercially with engineering contracts throughout their careers, and thus the application of the subject content is broad. Those seeking to work as a contractor and as a contract administrator will find a direct application of this subject’s content. Students will learn how to use procurement and contracts to develop successful engineering projects. This includes administration of the contracts and understanding the business environment where these contracts are agreed. These skills will be useful to students in their future work and apply to a wide range of engineering disciplines.

INDICATIVE CONTENT

Management of engineering projects. This includes the role and responsibilities of corporate managers, market analysis, structuring of procurement options, development of contractual terms and conditions and the pricing of work.

Estimating and tendering engineering works via work breakdown structures, work method statements, risk identification and tendering principles. The study material also covers contract administration and project control functions and techniques including time and money negotiations and cash flow management.

View detailed information in the Handbook

Project Management Practices · 12.5 pts

AIMS

In this subject students will learn about how to evaluate the feasibility of a project and then to define, structure and organise the initial planning phase for both construction projects and complex projects (e.g. IT, high technology projects). The interaction between commercial expectations and project management approaches will be considered broadly based on process and systems thinking. The subject builds on and integrates knowledge from CVEN90043 Sustainable Infrastructure Engineering and/or MCEN90010 Finance and Human Resources for Engineers where the fundamentals of economic appraisal is described, the planning approaches detailed in subject CVEN90045 Engineering Project Implementation and the fundamentals of risk management for which detailed approaches are provided in MULT90014 Business Risk Management. The subject is particularly important for students wishing to understand how to structure and scope projects such that they are well planned on the basis of triple bottom line thinking and the project management processes are efficiently structured.

INDICATIVE CONTENT

Techniques considered include the use of logic maps, business cases and system based project management concepts. Details include the development of acquisition strategies, system life-cycle, boundaries, scope management and mechanisms to control of client expectations and assist them to make sound project decisions leading to the sanctioning of a project. Expected value and Monte Carlo techniques are used as tools to refine project decisions based on risk evaluation.

Project governance arrangements are considered along with cultural context, resourcing requirements of a project and how this is organised and managed. Specific areas considered include the selection of consultants or contractors, communication processes, industrial relations, occupational health and safety, meetings, delegation and leadership.

View detailed information in the Handbook

Metocean Engineering · 12.5 pts

The subject examines in-depth the observation, analysis and prediction of wind-generated waves in the open ocean, in shelf seas, and in coastal regions. It also provides an introduction to wave and hydrodynamics modelling as a support for engineering applications. It provides a multi-disciplinary overview of problems by combining cutting-edge research in Maritime and Coastal Engineering and industry applications. The subject will provide students with a solid grounding in wave physics that is essential to evaluate the environmental impact on design and operation of marine structures.

Topics include:

  • Linear wave theory;
  • Second-order wave theory
  • Wave Spectrum;
  • Tides;
  • Wave Measurements;
  • Near-shore processes;
  • Wave statistics;
  • Hydrodynamics and wave modelling;

View detailed information in the Handbook

Port Access and Navigation · 12.5 pts

The subject examines the topics of ship traffic, of channel and port design. It provides an in-depth overview of problems and issues relevant for port and harbour engineering. The subject relies on a synergetic approach combining cutting-edge research in Maritime Engineering and strong engagement of eminent industry-based lecturers from world leading firms. A number of industry-based applications and case-study examples will be introduced to complement the lectures.

Topics include:

  • Wave theory and marine forecasting;
  • Vessel types and handling;
  • Navigational aids;
  • Underkeel clearance;
  • Channel design;
  • Port safety;
  • Port Organization;
  • Marine Geotechnics;
  • Moorings and Anchors.

View detailed information in the Handbook

Dredging Engineering · 12.5 pts

Dredging is an excavation activity carried out underwater for keeping waterways navigable, beach nourishment and land reclamation. The subject examines Dredging Engineering Fundamentals such as dredging techniques, disposal of dredge material, basic dredge laws, sediment re-suspension and environment aspects. It provides a multi-disciplinary overview of problems by combining cutting-edge research in Maritime and Coastal Engineering and strong engagement of eminent industry-based lecturers from major Australian Port Authorities. A number of industry-based applications and case-study examples will be introduced to complement the lectures. The subject will provide students with a solid grounding in the technologies, concepts, methods & hydrodynamic theories used in the planning, design & execution of dredging projects.

Topics include:

  • Types and selection of dredgers;
  • Fluid mechanics of dredging;
  • Geotechnical issues;
  • Survey control;
  • Maintenance dredging;
  • Coastal and river morphology and sediment transport;
  • Environmental studies;
  • Hydrodynamic modelling;
  • Dredging contracts.

View detailed information in the Handbook

Internship · 25 pts

AIMS

This subject involves students undertaking professional work experience with a Host Organisation, generally at the Host Organisation’s premises. Students will work under the supervision of both an academic mentor and an external supervisor at the Host Organisation.

By completing their internship as part of this subject, students will receive support in navigating their placement, guidance on maximising their learning from the experiences they gain and training in how to use these experiences when seeking employment.

This subject uses structured reflection to help students develop the professional skills and competencies required by engineers and IT professionals. Each student is allocated an academic mentor to assist them in their development and support their well-being.

Please view this video for further information: Internship

View detailed information in the Handbook

Advanced Hydrological Solutions · 12.5 pts

In this subject, students will learn to solve practical hydrological problems by using the latest research results and the latest research and industry tools. Learning will be student-led and project-based, supported by teaching staff members. Students will learn to scope projects, develop methods, collate data, conduct analyses, write up and present project reports. Each student will work on three projects.
Project modules will vary from year to year. Example modules are design flood modelling, groundwater modelling, hydrodynamic modelling, rainfall-runoff modelling, river system modelling.

View detailed information in the Handbook

System Optimisation & Machine Learning · 12.5 pts

This subject introduces the basic principles, analysis methods, and applications of optimisation and machine learning to engineering systems; encompassing fundamental concepts and practical algorithms. It covers the fundamentals of continuous optimisation followed by machine learning basics for engineering applications.

The concepts and methods discussed are illustrated in multiple application areas including Internet of Things (IoT), smart grid and power systems, cyber-security, and communication networks.The concepts taught in this subject will allow a better understanding of continuous optimisation and machine learning for systems engineering.

INDICATIVE CONTENT

Topics covered may include:

  • Fundamentals of continuous optimisation: convex sets and functions; local vs global solutions, constrained optimisation and Lagrange multipliers; linear, quadratic, and nonlinear programming
  • Basics of machine learning encompassing supervised and unsupervised learning: binary classification, linear and nonlinear regression, kernel methods, and clustering.
  • Specific machine learning methods such as Support Vector Machines (SVMs), Neural Networks (NNs), k-means clustering, and reinforcement learning.
  • Applications to Internet of Things (IoT), smart grid and power systems, cyber-security, and communication networks.

View detailed information in the Handbook

International River Basin Management · 12.5 pts

AIMS

AIMS

River basins are challenged by increasing population pressures, rapid urbanization and climate change impacts. A river basin is a semi-closed ecological and economic system, representing logical management units of the water cycle, throughout which all decisions and actions have interdependent ecological, social and economic implications. Thus, river basin management needs interdisciplinary knowledge. This subject aims to equip tomorrow’s water managers with the adaptive approach by linking cutting edge knowledge to stress-tested practices in river basin management.

In addition to 10 weeks of classroom teaching, this subject includes a 5-7 day field trip held in either China or Australia, to be held in the first week after the exam period. Students are expected to make a contribution towards the cost of the field trip.

View detailed information in the Handbook

Port and Harbour Engineering · 12.5 pts

The subject examines Port/Harbour Planning & Design Fundamentals. It provides a multi-disciplinary overview of problems and issues relevant for port and harbour engineering. The subject relies on a synergetic approach combining cutting-edge research in Maritime Engineering and strong engagement of eminent industry-based lecturers from world leading firms. A number of industry-based applications and case-study examples will be introduced to complement the lectures. The subject will provide students with a solid grounding in the technologies, concepts, methods & hydrodynamic theories used in the planning, design & construction of harbour facilities.

Topics include:

  • The business of ports
  • Structural design of marine infrastructure
  • Port design
  • Ships, pilotage and navigation, berthing and mooring
  • Harbour hydrodynamics
  • Hydrographic surveying
  • Corrosion protection
  • Civil works at ports.

View detailed information in the Handbook

Environmental Fluid Flow and Application · 12.5 pts

AIMS

Fluid flow and its applications are widespread in nature and everyday life. The scientific investigation of these naturally occurring air and water flows, especially those affecting the environmental quality is known as Environmental Fluid Mechanics. Given the fast-paced changes in our environment and their societal impacts, it has become imperative for engineering students to have a comprehensive understanding of environmental fluid mechanics. This subject is aimed at shedding light on a variety of environmental systems, such as the atmosphere, oceans, lakes, streams, and building ventilation. As such, it has been crafted with the intention of being both engaging and relevant for students specializing in Physics, Engineering, or the physical aspects of marine or climate science.

INDICATIVE CONTENT

This subject focuses on the fluid dynamics of various processes, which can span from the minute turbulent eddies at the millimetre scale to the large-scale dispersion of pollutants, contaminating a region extending over several kilometres. The prime components of the flows addressed in this course are buoyancy effects and fluid motions resulting from density differences. These differences in density may arise from variations in temperature, solute concentration, composition, or due to the occurrence of phase change.

The subject kicks off with a comprehensive overview of the fluid mechanics field and an explanation of the physics dictating fluid flow. These physical principles are then applied to numerous examples, encompassing free-surface flows, gravity currents, stratified flows, gravity waves, convection and heat transfer, and rotational effects.

The course is structured into five modules. Module 1 provides a grounding in the Basic Laws of Fluid Mechanics. Module 2 delves into Surface Waves in fluid. Module 3 investigates Free Surface and two-layer flows, while Module 4 explores Stratification and Convection. Finally, Module 5 examines the Rotational effects on fluid dynamics. In parallel, the students will utilise an environmental flow software to carry out a project that forms the major assessment

View detailed information in the Handbook

Design Innovation and Leadership · 12.5 pts

A central innovation task is to identify the real problem that lies beneath the surface-level symptoms. Another is to find the best solution to that underlying problem. Professional work is often the same. Clearly defined tasks can frequently be delegated to a machine or a technician. Furthermore, because innovation problems are big and messy, we often need diverse teams to solve them. This subject aims to give you theoretical frameworks, practical insights, and preliminary skills to solve ambiguous problems and to work successfully in teams.

You will develop these understandings, insights and skills by working on two projects.  In the first, your multi-disciplinary team, supported by a mentor, will propose an innovation that helps a partner (industry, hospital, not-for-profit, start-up, the University) address a strategic challenge.  Through that project, you will learn the “what and how” of delivering innovation-like projects – understanding the relationship between your challenge and the organisation’s strategy; designing, securing, and conducting interviews; analysing qualitative data to generate insights; ideation and creativity techniques to create value; stakeholder management; working in an intense team on an ambiguous problem; visual and oral communication.  In the second, you will develop the ability to apply to the same concepts to yourself – How will you know what you want and need?   How will you know if you need to change?  How will you innovate yourself as your interests, needs, and work world shift?

We aim for you and your team to own your project and your learning.

Design Innovation and Leadership (DIAL) is delivered by the University's multi-award-winning Innovation Practice Program. To learn more about the Program, including a video about the subject, the range of organizations that have participated as sponsors, examples of past projects, and to hear students talk about their experiences in the predecessor subject, CIE/CIP, please go to the Innovation Practice Program’s website.

All project sponsors will require that students maintain the confidentiality of their proprietary information.  The University will require all students (except those working on projects sponsored by the University itself) to assign any Intellectual Property they create (other than Copyright in their Assessment Materials) to the sponsor of their project. The projects may vary in the hours needed for a successful outcome.

Master of Engineering students please note: This subject has been integrated with the Skills Towards Employment Program (STEP) to create a straightforward pathway for completion of the Engineering Practice Hurdle (EPH). See the STEP page for more information.

Please note: If you commenced a Master of Engineering degree prior to 2025, DIAL qualifies for the selective slot previously held by Creating Innovative Engineering. Engineering students who commenced in 2025 or later may only take DIAL as an elective.

View detailed information in the Handbook