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BEngTech in Automotive Design and Engineering

Apply mechanical engineering principles to the study of vehicles and their supporting production and maintenance systems.

30 subjectsLast updated 13 September 2026

About the course

Apply mechanical engineering principles to the study of vehicles and their supporting production and maintenance systems. The proposed degree emphasises requirements, measured performance and justified design choices. Southern African cases should consider operating conditions, maintainability, affordability and energy use, with vehicle specialisation built on a broad engineering foundation.

What you'll learn

Use mechanics and thermal science to analyse a defined vehicle-system problem.

Interpret engineering drawings, material data and experimental results.

Compare design options against technical, environmental and user requirements.

Prepare an integrated technical project with evidence and explicit limitations.

Requirements

Recommended preparation includes strong mathematics, physical science, technical English and computer literacy. BMIT must publish its approved admissions and recognition-of-prior-learning rules before enrolment decisions. Comparator universities set their own thresholds. Their credits, module codes and duration have not been transferred to this outline.

Course content

The subjects are grouped by learning stage, from foundations to specialist study and supervised application. Complete earlier foundations before the related advanced work. Clinical, laboratory, field and workplace subjects use approved facilities and supervision appropriate to the programme.

4 learning stages 30 subjects

Subjects in this programme

The subjects are grouped by learning stage, from foundations to specialist study and supervised application. Complete earlier foundations before the related advanced work. Clinical, laboratory, field and workplace subjects use approved facilities and supervision appropriate to the programme.

30 subjects are listed below with a short description of each. The Subject descriptions tab contains the learning outcomes, topics, practical tasks and assessments.

Stage 1: Mathematical, scientific and professional foundations

  1. Differential Calculus. Examine functions, limits and their relationship within differential calculus. The subject develops differentiation and rates of change, then examines optimisation and model assumptions. Analyse a measured change and compare graphical and algebraic solutions.
  2. Integral Calculus and Differential Equations. Develop your understanding of integral calculus and differential equations through integration and accumulated quantities. The subject develops first-order equations and second-order equations, then examines initial conditions and numerical checks. Model a simple accumulation process and check the solution against a numerical estimate.
  3. Linear Algebra. Study vectors and matrices as foundations for linear algebra. The subject develops linear systems and eigenvalues, then examines transformations and computational verification. Solve a small system using manual reasoning and a computational check.
  4. Mechanics and General Physics. Examine motion, forces and their relationship within mechanics and general physics. The subject develops energy and momentum, then examines oscillations and measurement uncertainty. Use a supervised teaching experiment to compare observation with a physical model.
  5. Electricity, Magnetism and Waves. Develop your understanding of electricity, magnetism and waves through electric fields and magnetic fields. The subject develops electromagnetic induction and wave behaviour, then examines optical principles and physical models. Interpret measurements from supervised electrical or optical teaching equipment.
  6. General Chemistry. Study atomic structure and bonding as foundations for general chemistry. The subject develops chemical quantities and solutions, then examines equilibrium and acids and bases. Analyse low-risk teaching data and complete approved laboratory exercises.
  7. Engineering Drawing and CAD. Examine orthographic views, sections and their relationship within engineering drawing and cad. The subject develops dimensions and tolerances, then examines assembly drawings and digital modelling. Produce drawings for a non-safety-critical teaching component.
  8. Programming Fundamentals. Develop your understanding of programming fundamentals through variables and control flow. The subject develops functions and data structures, then examines file handling and testing. Develop a small program which processes a defined teaching dataset.
  9. Engineering Materials. Study material classes and structure and properties as foundations for engineering materials. The subject develops mechanical behaviour and thermal behaviour, then examines corrosion and material selection. Compare material samples or published teaching data against a component brief.
  10. Engineering Statics. Examine force systems, equilibrium and their relationship within engineering statics. The subject develops free-body diagrams and structures, then examines friction and distributed loads. Analyse a simple structural model and check equilibrium experimentally.
  11. Academic and Professional Communication. Develop your understanding of academic and professional communication through reading strategies and evidence use. The subject develops report structure and presentations, then examines audience and referencing. Prepare a report and presentation for a defined professional audience.
  12. Engineering Professional Practice. Study professional responsibility and ethics as foundations for engineering professional practice. The subject develops technical communication and public welfare, then examines evidence integrity and continuing development. Analyse a regional engineering decision involving conflicting responsibilities.

Stage 2: Core engineering subjects

  1. Engineering Dynamics. Examine kinematics, kinetics and their relationship within engineering dynamics. The subject develops work and energy and impulse and momentum, then examines rotating systems and vibration. Model a moving teaching system and compare predicted and measured behaviour.
  2. Strength of Materials. Develop your understanding of strength of materials through stress and strain and elastic behaviour. The subject develops bending and torsion, then examines deflection and failure criteria. Interpret supervised material-test results and relate them to a component model.
  3. Fluid Mechanics. Study fluid properties and pressure as foundations for fluid mechanics. The subject develops continuity and energy equations, then examines pipe flow and flow measurement. Compare flow estimates with data from a supervised water-based teaching rig.
  4. Thermodynamics. Examine properties and states, energy balances and their relationship within thermodynamics. The subject develops entropy and cycles, then examines real-system losses and performance measures. Compare ideal and measured performance using an approved thermal-system dataset.
  5. Manufacturing Processes. Develop your understanding of manufacturing processes through casting concepts and forming. The subject develops machining and joining, then examines process capability and production quality. Compare manufacturing routes for a teaching component using supervised observations.
  6. Machine Design. Study design loads and shafts as foundations for machine design. The subject develops bearings and fasteners, then examines power transmission and design verification. Analyse a non-safety-critical mechanical assembly against a defined brief.
  7. Circuit Analysis. Examine circuit quantities, network laws and their relationship within circuit analysis. The subject develops resistive circuits and transients, then examines alternating-current circuits and measurement. Analyse and test low-voltage teaching circuits under supervision.
  8. Applied Statistics. Develop your understanding of applied statistics through descriptive measures and probability. The subject develops sampling and estimation, then examines hypothesis testing and regression. Analyse an approved dataset and distinguish uncertainty from systematic bias.

Stage 3: Specialist and integrative subjects

  1. Vehicle Dynamics. Study longitudinal motion and lateral behaviour as foundations for vehicle dynamics. The subject develops load transfer and tyre concepts, then examines ride behaviour and stability limits. Compare vehicle behaviour in a non-road teaching simulation.
  2. Vehicle Systems. Examine vehicle layout, powertrain functions and their relationship within vehicle systems. The subject develops chassis and steering, then examines braking principles and maintenance interfaces. Map vehicle subsystems using isolated teaching equipment or authorised documentation.
  3. Automotive Energy and Emissions. Develop your understanding of automotive energy and emissions through engine energy conversion and electric drivetrains. The subject develops energy storage and hybrid concepts, then examines emission measurement and lifecycle comparison. Compare energy-use evidence for alternative vehicle concepts.
  4. Automotive Design and Manufacture. Study user requirements and vehicle packaging as foundations for automotive design and manufacture. The subject develops material selection and manufacturing constraints, then examines ergonomics and prototype review. Develop a civilian vehicle-component design study without road deployment.
  5. Quality Management and Improvement. Examine quality criteria, process variation and their relationship within quality management and improvement. The subject develops traceability and nonconformity, then examines corrective action and improvement measures. Investigate a quality problem using permissioned records or teaching data.
  6. Research Methods. Develop your understanding of research methods through research questions and literature review. The subject develops study design and data collection, then examines ethics and interpretation. Prepare a feasible investigation proposal with a defined evidence need.

Stage 4: Design, practice and final project

  1. Engineering Design Methods. Study problem definition and requirements as foundations for engineering design methods. The subject develops concept comparison and constraints, then examines verification planning and design review. Develop and review alternatives for a defined civilian technical need.
  2. Project Development and Feasibility. Examine problem definition, evidence review and their relationship within project development and feasibility. The subject develops requirements and method selection, then examines feasibility and evaluation criteria. Develop an approved discipline-specific project proposal with a supervisor.
  3. Supervised Workplace Learning. Develop your understanding of supervised workplace learning through workplace roles and approved task planning. The subject develops professional conduct and technical records, then examines feedback and reflective learning. Complete an agreed placement task under an approved workplace supervisor.
  4. Integrated Project and Technical Report. Study implementation and evidence collection as foundations for integrated project and technical report. The subject develops analysis and verification, then examines limitations and communication. Complete the approved project and maintain an auditable evidence record.

Assessment and practical learning

  • Proposed assessment: mathematical problem sets and technical reports with calculations, units, assumptions and limitations made explicit.
  • Supervised laboratory or workshop tasks assessed through observation, evidence records and an individual explanation of results.
  • An integrated design or investigation portfolio, presentation and written assessment. BMIT must approve weighting and progression rules.

Practical application

Practical delivery requires supervised workshops and laboratories with suitable machinery, test equipment and safe operating procedures. Vehicle activities should begin with simulation and controlled educational rigs. Road testing needs separate institutional arrangements. The final project should document requirements, calculations, observations and changes made after evaluation.

Subject descriptions

Select a subject to read its learning outcomes, main topics, practical task and assessment.

Stage 1: Mathematical, scientific and professional foundations

Differential Calculus

Examine functions, limits and their relationship within differential calculus. The subject develops differentiation and rates of change, then examines optimisation and model assumptions. Analyse a measured change and compare graphical and algebraic solutions.

Learning outcomes

  • Explain functions and limits using an appropriate example.
  • Analyse a subject-related problem involving differentiation and rates of change.
  • Present reasoned evidence addressing optimisation and model assumptions.

Main topics

  • Functions
  • Limits
  • Differentiation
  • Rates of change
  • Optimisation
  • Model assumptions

Practical task

Analyse a measured change and compare graphical and algebraic solutions.

Assessment

Submit worked problems and a short interpretation of an optimisation case.

Integral Calculus and Differential Equations

Develop your understanding of integral calculus and differential equations through integration and accumulated quantities. The subject develops first-order equations and second-order equations, then examines initial conditions and numerical checks. Model a simple accumulation process and check the solution against a numerical estimate.

Learning outcomes

  • Explain integration and accumulated quantities using an appropriate example.
  • Analyse a subject-related problem involving first-order equations and second-order equations.
  • Present reasoned evidence addressing initial conditions and numerical checks.

Main topics

  • Integration
  • Accumulated quantities
  • First-order equations
  • Second-order equations
  • Initial conditions
  • Numerical checks

Practical task

Model a simple accumulation process and check the solution against a numerical estimate.

Assessment

Complete an analytical assignment explaining initial conditions and solution limits.

Linear Algebra

Study vectors and matrices as foundations for linear algebra. The subject develops linear systems and eigenvalues, then examines transformations and computational verification. Solve a small system using manual reasoning and a computational check.

Learning outcomes

  • Explain vectors and matrices using an appropriate example.
  • Analyse a subject-related problem involving linear systems and eigenvalues.
  • Present reasoned evidence addressing transformations and computational verification.

Main topics

  • Vectors
  • Matrices
  • Linear systems
  • Eigenvalues
  • Transformations
  • Computational verification

Practical task

Solve a small system using manual reasoning and a computational check.

Assessment

Submit calculations and an explanation of the meaning of the solution.

Mechanics and General Physics

Examine motion, forces and their relationship within mechanics and general physics. The subject develops energy and momentum, then examines oscillations and measurement uncertainty. Use a supervised teaching experiment to compare observation with a physical model.

Learning outcomes

  • Explain motion and forces using an appropriate example.
  • Analyse a subject-related problem involving energy and momentum.
  • Present reasoned evidence addressing oscillations and measurement uncertainty.

Main topics

  • Motion
  • Forces
  • Energy
  • Momentum
  • Oscillations
  • Measurement uncertainty

Practical task

Use a supervised teaching experiment to compare observation with a physical model.

Assessment

Submit a laboratory report and quantitative problem set.

Electricity, Magnetism and Waves

Develop your understanding of electricity, magnetism and waves through electric fields and magnetic fields. The subject develops electromagnetic induction and wave behaviour, then examines optical principles and physical models. Interpret measurements from supervised electrical or optical teaching equipment.

Learning outcomes

  • Explain electric fields and magnetic fields using an appropriate example.
  • Analyse a subject-related problem involving electromagnetic induction and wave behaviour.
  • Present reasoned evidence addressing optical principles and physical models.

Main topics

  • Electric fields
  • Magnetic fields
  • Electromagnetic induction
  • Wave behaviour
  • Optical principles
  • Physical models

Practical task

Interpret measurements from supervised electrical or optical teaching equipment.

Assessment

Complete calculations and a report explaining discrepancies from theory.

General Chemistry

Study atomic structure and bonding as foundations for general chemistry. The subject develops chemical quantities and solutions, then examines equilibrium and acids and bases. Analyse low-risk teaching data and complete approved laboratory exercises.

Learning outcomes

  • Explain atomic structure and bonding using an appropriate example.
  • Analyse a subject-related problem involving chemical quantities and solutions.
  • Present reasoned evidence addressing equilibrium and acids and bases.

Main topics

  • Atomic structure
  • Bonding
  • Chemical quantities
  • Solutions
  • Equilibrium
  • Acids and bases

Practical task

Analyse low-risk teaching data and complete approved laboratory exercises.

Assessment

Submit a practical record and calculations with units and assumptions.

Engineering Drawing and CAD

Examine orthographic views, sections and their relationship within engineering drawing and cad. The subject develops dimensions and tolerances, then examines assembly drawings and digital modelling. Produce drawings for a non-safety-critical teaching component.

Learning outcomes

  • Explain orthographic views and sections using an appropriate example.
  • Analyse a subject-related problem involving dimensions and tolerances.
  • Present reasoned evidence addressing assembly drawings and digital modelling.

Main topics

  • Orthographic views
  • Sections
  • Dimensions
  • Tolerances
  • Assembly drawings
  • Digital modelling

Practical task

Produce drawings for a non-safety-critical teaching component.

Assessment

Submit dimensioned drawings and explain design communication choices.

Programming Fundamentals

Develop your understanding of programming fundamentals through variables and control flow. The subject develops functions and data structures, then examines file handling and testing. Develop a small program which processes a defined teaching dataset.

Learning outcomes

  • Explain variables and control flow using an appropriate example.
  • Analyse a subject-related problem involving functions and data structures.
  • Present reasoned evidence addressing file handling and testing.

Main topics

  • Variables
  • Control flow
  • Functions
  • Data structures
  • File handling
  • Testing

Practical task

Develop a small program which processes a defined teaching dataset.

Assessment

Submit working code, tests and a concise user explanation.

Engineering Materials

Study material classes and structure and properties as foundations for engineering materials. The subject develops mechanical behaviour and thermal behaviour, then examines corrosion and material selection. Compare material samples or published teaching data against a component brief.

Learning outcomes

  • Explain material classes and structure and properties using an appropriate example.
  • Analyse a subject-related problem involving mechanical behaviour and thermal behaviour.
  • Present reasoned evidence addressing corrosion and material selection.

Main topics

  • Material classes
  • Structure and properties
  • Mechanical behaviour
  • Thermal behaviour
  • Corrosion
  • Material selection

Practical task

Compare material samples or published teaching data against a component brief.

Assessment

Submit a selection report explaining evidence and trade-offs.

Engineering Statics

Examine force systems, equilibrium and their relationship within engineering statics. The subject develops free-body diagrams and structures, then examines friction and distributed loads. Analyse a simple structural model and check equilibrium experimentally.

Learning outcomes

  • Explain force systems and equilibrium using an appropriate example.
  • Analyse a subject-related problem involving free-body diagrams and structures.
  • Present reasoned evidence addressing friction and distributed loads.

Main topics

  • Force systems
  • Equilibrium
  • Free-body diagrams
  • Structures
  • Friction
  • Distributed loads

Practical task

Analyse a simple structural model and check equilibrium experimentally.

Assessment

Submit calculations, diagrams and a short validation report.

Academic and Professional Communication

Develop your understanding of academic and professional communication through reading strategies and evidence use. The subject develops report structure and presentations, then examines audience and referencing. Prepare a report and presentation for a defined professional audience.

Learning outcomes

  • Explain reading strategies and evidence use using an appropriate example.
  • Analyse a subject-related problem involving report structure and presentations.
  • Present reasoned evidence addressing audience and referencing.

Main topics

  • Reading strategies
  • Evidence use
  • Report structure
  • Presentations
  • Audience
  • Referencing

Practical task

Prepare a report and presentation for a defined professional audience.

Assessment

Submit revised written work and an individual presentation.

Engineering Professional Practice

Study professional responsibility and ethics as foundations for engineering professional practice. The subject develops technical communication and public welfare, then examines evidence integrity and continuing development. Analyse a regional engineering decision involving conflicting responsibilities.

Learning outcomes

  • Explain professional responsibility and ethics using an appropriate example.
  • Analyse a subject-related problem involving technical communication and public welfare.
  • Present reasoned evidence addressing evidence integrity and continuing development.

Main topics

  • Professional responsibility
  • Ethics
  • Technical communication
  • Public welfare
  • Evidence integrity
  • Continuing development

Practical task

Analyse a regional engineering decision involving conflicting responsibilities.

Assessment

Submit an ethical decision brief and a professional communication exercise.

Stage 2: Core engineering subjects

Engineering Dynamics

Examine kinematics, kinetics and their relationship within engineering dynamics. The subject develops work and energy and impulse and momentum, then examines rotating systems and vibration. Model a moving teaching system and compare predicted and measured behaviour.

Learning outcomes

  • Explain kinematics and kinetics using an appropriate example.
  • Analyse a subject-related problem involving work and energy and impulse and momentum.
  • Present reasoned evidence addressing rotating systems and vibration.

Main topics

  • Kinematics
  • Kinetics
  • Work and energy
  • Impulse and momentum
  • Rotating systems
  • Vibration

Practical task

Model a moving teaching system and compare predicted and measured behaviour.

Assessment

Submit a dynamics investigation and calculations.

Strength of Materials

Develop your understanding of strength of materials through stress and strain and elastic behaviour. The subject develops bending and torsion, then examines deflection and failure criteria. Interpret supervised material-test results and relate them to a component model.

Learning outcomes

  • Explain stress and strain and elastic behaviour using an appropriate example.
  • Analyse a subject-related problem involving bending and torsion.
  • Present reasoned evidence addressing deflection and failure criteria.

Main topics

  • Stress and strain
  • Elastic behaviour
  • Bending
  • Torsion
  • Deflection
  • Failure criteria

Practical task

Interpret supervised material-test results and relate them to a component model.

Assessment

Submit a test report and justified calculations.

Fluid Mechanics

Study fluid properties and pressure as foundations for fluid mechanics. The subject develops continuity and energy equations, then examines pipe flow and flow measurement. Compare flow estimates with data from a supervised water-based teaching rig.

Learning outcomes

  • Explain fluid properties and pressure using an appropriate example.
  • Analyse a subject-related problem involving continuity and energy equations.
  • Present reasoned evidence addressing pipe flow and flow measurement.

Main topics

  • Fluid properties
  • Pressure
  • Continuity
  • Energy equations
  • Pipe flow
  • Flow measurement

Practical task

Compare flow estimates with data from a supervised water-based teaching rig.

Assessment

Submit a laboratory report and engineering calculations.

Thermodynamics

Examine properties and states, energy balances and their relationship within thermodynamics. The subject develops entropy and cycles, then examines real-system losses and performance measures. Compare ideal and measured performance using an approved thermal-system dataset.

Learning outcomes

  • Explain properties and states and energy balances using an appropriate example.
  • Analyse a subject-related problem involving entropy and cycles.
  • Present reasoned evidence addressing real-system losses and performance measures.

Main topics

  • Properties and states
  • Energy balances
  • Entropy
  • Cycles
  • Real-system losses
  • Performance measures

Practical task

Compare ideal and measured performance using an approved thermal-system dataset.

Assessment

Submit a cycle analysis with assumptions and loss estimates.

Manufacturing Processes

Develop your understanding of manufacturing processes through casting concepts and forming. The subject develops machining and joining, then examines process capability and production quality. Compare manufacturing routes for a teaching component using supervised observations.

Learning outcomes

  • Explain casting concepts and forming using an appropriate example.
  • Analyse a subject-related problem involving machining and joining.
  • Present reasoned evidence addressing process capability and production quality.

Main topics

  • Casting concepts
  • Forming
  • Machining
  • Joining
  • Process capability
  • Production quality

Practical task

Compare manufacturing routes for a teaching component using supervised observations.

Assessment

Submit a process-selection and quality-control report.

Machine Design

Study design loads and shafts as foundations for machine design. The subject develops bearings and fasteners, then examines power transmission and design verification. Analyse a non-safety-critical mechanical assembly against a defined brief.

Learning outcomes

  • Explain design loads and shafts using an appropriate example.
  • Analyse a subject-related problem involving bearings and fasteners.
  • Present reasoned evidence addressing power transmission and design verification.

Main topics

  • Design loads
  • Shafts
  • Bearings
  • Fasteners
  • Power transmission
  • Design verification

Practical task

Analyse a non-safety-critical mechanical assembly against a defined brief.

Assessment

Submit calculations, drawings and verification evidence.

Circuit Analysis

Examine circuit quantities, network laws and their relationship within circuit analysis. The subject develops resistive circuits and transients, then examines alternating-current circuits and measurement. Analyse and test low-voltage teaching circuits under supervision.

Learning outcomes

  • Explain circuit quantities and network laws using an appropriate example.
  • Analyse a subject-related problem involving resistive circuits and transients.
  • Present reasoned evidence addressing alternating-current circuits and measurement.

Main topics

  • Circuit quantities
  • Network laws
  • Resistive circuits
  • Transients
  • Alternating-current circuits
  • Measurement

Practical task

Analyse and test low-voltage teaching circuits under supervision.

Assessment

Submit circuit calculations and a measured-results record.

Applied Statistics

Develop your understanding of applied statistics through descriptive measures and probability. The subject develops sampling and estimation, then examines hypothesis testing and regression. Analyse an approved dataset and distinguish uncertainty from systematic bias.

Learning outcomes

  • Explain descriptive measures and probability using an appropriate example.
  • Analyse a subject-related problem involving sampling and estimation.
  • Present reasoned evidence addressing hypothesis testing and regression.

Main topics

  • Descriptive measures
  • Probability
  • Sampling
  • Estimation
  • Hypothesis testing
  • Regression

Practical task

Analyse an approved dataset and distinguish uncertainty from systematic bias.

Assessment

Submit a reproducible analysis with justified methods and interpretation.

Stage 3: Specialist and integrative subjects

Vehicle Dynamics

Study longitudinal motion and lateral behaviour as foundations for vehicle dynamics. The subject develops load transfer and tyre concepts, then examines ride behaviour and stability limits. Compare vehicle behaviour in a non-road teaching simulation.

Learning outcomes

  • Explain longitudinal motion and lateral behaviour using an appropriate example.
  • Analyse a subject-related problem involving load transfer and tyre concepts.
  • Present reasoned evidence addressing ride behaviour and stability limits.

Main topics

  • Longitudinal motion
  • Lateral behaviour
  • Load transfer
  • Tyre concepts
  • Ride behaviour
  • Stability limits

Practical task

Compare vehicle behaviour in a non-road teaching simulation.

Assessment

Submit a model-based performance and limitation report.

Vehicle Systems

Examine vehicle layout, powertrain functions and their relationship within vehicle systems. The subject develops chassis and steering, then examines braking principles and maintenance interfaces. Map vehicle subsystems using isolated teaching equipment or authorised documentation.

Learning outcomes

  • Explain vehicle layout and powertrain functions using an appropriate example.
  • Analyse a subject-related problem involving chassis and steering.
  • Present reasoned evidence addressing braking principles and maintenance interfaces.

Main topics

  • Vehicle layout
  • Powertrain functions
  • Chassis
  • Steering
  • Braking principles
  • Maintenance interfaces

Practical task

Map vehicle subsystems using isolated teaching equipment or authorised documentation.

Assessment

Submit a system map and a fault-reasoning case.

Automotive Energy and Emissions

Develop your understanding of automotive energy and emissions through engine energy conversion and electric drivetrains. The subject develops energy storage and hybrid concepts, then examines emission measurement and lifecycle comparison. Compare energy-use evidence for alternative vehicle concepts.

Learning outcomes

  • Explain engine energy conversion and electric drivetrains using an appropriate example.
  • Analyse a subject-related problem involving energy storage and hybrid concepts.
  • Present reasoned evidence addressing emission measurement and lifecycle comparison.

Main topics

  • Engine energy conversion
  • Electric drivetrains
  • Energy storage
  • Hybrid concepts
  • Emission measurement
  • Lifecycle comparison

Practical task

Compare energy-use evidence for alternative vehicle concepts.

Assessment

Submit an energy and environmental appraisal.

Automotive Design and Manufacture

Study user requirements and vehicle packaging as foundations for automotive design and manufacture. The subject develops material selection and manufacturing constraints, then examines ergonomics and prototype review. Develop a civilian vehicle-component design study without road deployment.

Learning outcomes

  • Explain user requirements and vehicle packaging using an appropriate example.
  • Analyse a subject-related problem involving material selection and manufacturing constraints.
  • Present reasoned evidence addressing ergonomics and prototype review.

Main topics

  • User requirements
  • Vehicle packaging
  • Material selection
  • Manufacturing constraints
  • Ergonomics
  • Prototype review

Practical task

Develop a civilian vehicle-component design study without road deployment.

Assessment

Submit a design dossier and manufacturing rationale.

Quality Management and Improvement

Examine quality criteria, process variation and their relationship within quality management and improvement. The subject develops traceability and nonconformity, then examines corrective action and improvement measures. Investigate a quality problem using permissioned records or teaching data.

Learning outcomes

  • Explain quality criteria and process variation using an appropriate example.
  • Analyse a subject-related problem involving traceability and nonconformity.
  • Present reasoned evidence addressing corrective action and improvement measures.

Main topics

  • Quality criteria
  • Process variation
  • Traceability
  • Nonconformity
  • Corrective action
  • Improvement measures

Practical task

Investigate a quality problem using permissioned records or teaching data.

Assessment

Submit a quality review and a measurable improvement proposal.

Research Methods

Develop your understanding of research methods through research questions and literature review. The subject develops study design and data collection, then examines ethics and interpretation. Prepare a feasible investigation proposal with a defined evidence need.

Learning outcomes

  • Explain research questions and literature review using an appropriate example.
  • Analyse a subject-related problem involving study design and data collection.
  • Present reasoned evidence addressing ethics and interpretation.

Main topics

  • Research questions
  • Literature review
  • Study design
  • Data collection
  • Ethics
  • Interpretation

Practical task

Prepare a feasible investigation proposal with a defined evidence need.

Assessment

Submit a proposal, methods rationale and ethics considerations.

Stage 4: Design, practice and final project

Engineering Design Methods

Study problem definition and requirements as foundations for engineering design methods. The subject develops concept comparison and constraints, then examines verification planning and design review. Develop and review alternatives for a defined civilian technical need.

Learning outcomes

  • Explain problem definition and requirements using an appropriate example.
  • Analyse a subject-related problem involving concept comparison and constraints.
  • Present reasoned evidence addressing verification planning and design review.

Main topics

  • Problem definition
  • Requirements
  • Concept comparison
  • Constraints
  • Verification planning
  • Design review

Practical task

Develop and review alternatives for a defined civilian technical need.

Assessment

Submit a requirements-led design dossier with review responses.

Project Development and Feasibility

Examine problem definition, evidence review and their relationship within project development and feasibility. The subject develops requirements and method selection, then examines feasibility and evaluation criteria. Develop an approved discipline-specific project proposal with a supervisor.

Learning outcomes

  • Explain problem definition and evidence review using an appropriate example.
  • Analyse a subject-related problem involving requirements and method selection.
  • Present reasoned evidence addressing feasibility and evaluation criteria.

Main topics

  • Problem definition
  • Evidence review
  • Requirements
  • Method selection
  • Feasibility
  • Evaluation criteria

Practical task

Develop an approved discipline-specific project proposal with a supervisor.

Assessment

Submit a proposal, evidence review and evaluation plan.

Supervised Workplace Learning

Develop your understanding of supervised workplace learning through workplace roles and approved task planning. The subject develops professional conduct and technical records, then examines feedback and reflective learning. Complete an agreed placement task under an approved workplace supervisor.

Learning outcomes

  • Explain workplace roles and approved task planning using an appropriate example.
  • Analyse a subject-related problem involving professional conduct and technical records.
  • Present reasoned evidence addressing feedback and reflective learning.

Main topics

  • Workplace roles
  • Approved task planning
  • Professional conduct
  • Technical records
  • Feedback
  • Reflective learning

Practical task

Complete an agreed placement task under an approved workplace supervisor.

Assessment

Submit an authenticated work portfolio and reflective presentation.

Integrated Project and Technical Report

Study implementation and evidence collection as foundations for integrated project and technical report. The subject develops analysis and verification, then examines limitations and communication. Complete the approved project and maintain an auditable evidence record.

Learning outcomes

  • Explain implementation and evidence collection using an appropriate example.
  • Analyse a subject-related problem involving analysis and verification.
  • Present reasoned evidence addressing limitations and communication.

Main topics

  • Implementation
  • Evidence collection
  • Analysis
  • Verification
  • Limitations
  • Communication

Practical task

Complete the approved project and maintain an auditable evidence record.

Assessment

Submit the final project, report and individual oral defence.

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