Major structure

Overview

The Civil Systems major provides the foundation of understanding planning, design and construction of essential infrastructure (such as bridges, tunnels, transport systems, water supply, drainage, buildings, airports, and harbours).

And you'll learn how to apply risk-management techniques to prevent loss-of-life caused by natural and complex disasters.

Skill-based learning will include modelling of civil systems using computer-aided design, through to laboratory experiments to solve problems.

Your major structure

This major can be completed through the Bachelor of Design or the Bachelor of Science.

BACHELOR OF DESIGN

The Bachelor of Design is a flexible degree that lets you explore different fields of study. The subjects you complete in your first year provide the basis for your knowledge of design that will carry through the rest of your degree.

By your second year you will deepen your understanding of your chosen discipline, in preparation for deep and specialised study in your third year, when you will complete your major requirements.

You will also be required to undertake a capstone subject, which draws together the various theoretical strands.

Throughout your degree, design elective subjects can complement your major area of study. You can choose to study one or two majors, a major and a minor, or a major and a specialisation.

BACHELOR OF SCIENCE

The Civil Engineering Systems major is made up of eight subjects (100 credit points) taken in your second and third year. Each subject is worth 12.5 credit points. Level 2 subjects are usually taken in second year, and Level 3 subjects in third year.

To complete this major, you’ll need:

The rest of your degree will consist of a Level 1 science core subject, your choice of elective subjects in science, and breadth (non-science) subjects.

Further information

You can find detailed information about your major – including structure, subject availability, and participation requirements – in the Handbook.

You can also explore your study pathway and sample course plans through My Course Planner.

Sample course plan

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

Bachelor of Design - Civil Engineering Systems

Requires a study score of 25 or more in VCE Mathematical Methods 3/4 or equivalent.

Accordion

Year 1

100 pts

Semester 1 · 50 pts
  • Physics 1: Advanced – major – PHYC10001 – 12.5 pts
  • elective – 12.5 pts
  • elective – 12.5 pts
  • Calculus 1 – breadth – MAST10005 – 12.5 pts
Semester 2 · 50 pts
  • Physics 2: Advanced – major – PHYC10002 – 12.5 pts
  • elective – 12.5 pts
  • elective – 12.5 pts
  • Calculus 2 – breadth – MAST10006 – 12.5 pts
Accordion

Year 2

100 pts

Semester 1 · 50 pts
  • Sustainable Infrastructure Engineering – major – CVEN20001 – 12.5 pts
  • Earth Processes for Engineering – major – ENEN20002 – 12.5 pts
  • elective – 12.5 pts
  • Linear Algebra – breadth – MAST10007 – 12.5 pts
Semester 2 · 50 pts
  • Engineering Mathematics – major – MAST20029 – 12.5 pts
  • Engineering Materials and Mechanics – major – ENGR20003 – 12.5 pts
  • elective – 12.5 pts
  • breadth – 12.5 pts
Accordion

Year 3

100 pts

Semester 1 · 50 pts
  • Engineering Risk Management – major – CVEN30008 – 12.5 pts
  • Fluid Mechanics – major – ENGR30002 – 12.5 pts
  • elective – 12.5 pts
  • breadth – 12.5 pts
Semester 2 · 50 pts
  • major – 12.5 pts
  • Structural Theory and Design – major – CVEN30009 – 12.5 pts
  • elective – 12.5 pts
  • breadth – 12.5 pts
Bachelor of Science - Civil Engineering Systems Major

If you did not achieve a study score of at least 29 in VCE Specialist Mathematics 3/4, you may need to enrol in MAST10005 Calculus 1 in your first semester. If you achieved a study score of at least 36 in VCE Specialist Mathematics 3/4 or equivalent, you can enrol in MAST10021 Calculus 2: Advanced and MAST10022 Linear Algebra: Advanced instead of MAST10006 Calculus 2 and MAST10007 Linear Algebra.

Accordion

Year 1

100 pts

Semester 1 · 50 pts
  • Today's Science, Tomorrow's World – core – SCIE10005 – 12.5 pts
  • Natural Environments – elective – ENVS10001 – 12.5 pts
  • Calculus 2 – elective – MAST10006 – 12.5 pts
  • breadth – 12.5 pts
Semester 2 · 50 pts
  • Linear Algebra – elective – MAST10007 – 12.5 pts
  • elective – 12.5 pts
  • elective – 12.5 pts
  • breadth – 12.5 pts
Accordion

Year 2

100 pts

Semester 1 · 50 pts
  • Sustainable Infrastructure Engineering – major – CVEN20001 – 12.5 pts
  • Earth Processes for Engineering – major – ENEN20002 – 12.5 pts
  • elective – 12.5 pts
  • breadth – 12.5 pts
Semester 2 · 50 pts
  • Engineering Mathematics – major – MAST20029 – 12.5 pts
  • Engineering Materials and Mechanics – major – ENGR20003 – 12.5 pts
  • elective – 12.5 pts
  • breadth – 12.5 pts
Accordion

Year 3

100 pts

Semester 1 · 50 pts
  • Engineering Risk Management – major – CVEN30008 – 12.5 pts
  • major – 12.5 pts
  • elective – 12.5 pts
  • breadth – 12.5 pts
Semester 2 · 50 pts
  • Fluid Mechanics – major – ENGR30002 – 12.5 pts
  • Structural Theory and Design – major – CVEN30009 – 12.5 pts
  • elective – 12.5 pts
  • breadth – 12.5 pts

Explore this major

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

Core

Students must complete all required core subjects

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

Engineering Materials and Mechanics · 12.5 pts

The subject aims to provide knowledge about engineered materials, their properties, manufacturing processes and key issues associated with their applications in engineering. The subject also introduces the relationships between the structure of a material and its properties.
This subject provides an introduction to modelling the stresses and deformations that occur when axial, torsional and flexural loads are applied to materials in static equilibrium.
This subject must be taken early in the progression of training to be an engineer as it is a prerequisite of structural design subjects, and contributes valuable insights into the role of materials in other disciplines of engineering such as geotechnical engineering.

Please view this video for further information: Engineering Materials and Mechanics

View detailed information in the Handbook

Engineering Risk Management · 12.5 pts

AIMS

This subject will focus on how risk analysis and management principles and techniques can be applied to engineering projects. The subject introduces a range of risk analysis techniques, which are put in the context of engineering projects and analysed using the framework of the risk standard (AS ISO 31000:2018). Risk is a fundamental concept that is applied to every engineering project, whether it is ascertaining the risk of health impacts of water treatment processes, prevention of loss of life by flood mitigation projects, or catastrophic losses caused by the failure of structure in earthquakes or storms.
The subject is of particular relevance to students wishing to establish a career in Engineering 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.

INDICATIVE CONTENT

Topics covered include: an introduction to the history of engineering failures; the forms of risk and risk identification; project risk analysis; the sociological implications of acceptable risk; approaches to risk management, monitoring for compliance, risk perception and design implications.

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

Structural Theory and Design · 12.5 pts

AIMS

This subject introduces the basic methods of structural analysis and the design of simple structures which are built of reinforced concrete, steel, timber and masonry. A feature of this subject is the integration of the design and analytical skills in dealing with contemporary structures that have an effective blending of materials for achieving satisfactory performance and economy in construction.

This subject consolidates basic structural theory and design abilities that underpin further specialised studies in structural design in engineering masters programs. It also gives students some basic capabilities to seek work experience in the engineering profession.

INDICATIVE CONTENT

Topics covered include: stress analysis in beams, deflection calculations using direct integration and virtual work methods, structural analyses of beams and frames by the force method, structural design of reinforced concrete beams and columns, design of pad footing, structural design of steel beams, columns and ties, design of timber joists and masonry squat walls.

View detailed information in the Handbook