Learning outcome
1.1

1.1 Comprehensive, theory based understanding of the underpinning natural and physical sciences and the engineering fundamentals applicable to the engineering discipline.

1.2

1.2 Conceptual understanding of the, mathematics, numerical analysis, statistics, and computer and information sciences which underpin the engineering discipline.

1.3

1.3 In-depth understanding of specialist bodies of knowledge within the engineering discipline.

1.4

1.4 Discernment of knowledge development and research directions within the engineering discipline.

1.5

1.5 Knowledge of contextual factors impacting the engineering discipline.

1.6

1.6 Understanding of the scope, principles, norms, accountabilities and bounds of contemporary engineering practice in the specific discipline.

2.1

2.1 Application of established engineering methods to complex engineering problem solving.

2.2

2.2 Fluent application of engineering techniques, tools and resources.

2.3

2.3 Application of systematic engineering synthesis and design processes.

2.4

2.4 Application of systematic approaches to the conduct and management of engineering projects.

3.1

3.1 Ethical conduct and professional accountability.

3.2

3.2 Effective oral and written communication in professional and lay domains.

3.3

3.3 Creative, innovative and pro-active demeanour.

3.4

3.4 Professional use and management of information.

3.5

3.5 Orderly management of self, and professional conduct.

3.6

3.6 Effective team membership and team leadership.

A1

<p>Apply appropriate engineering and mathematical techniques to analyse simple static and dynamic physical systems.</p>

A2

<p>Perform laboratory experiment to observe the behaviour of structural members under given conditions, conduct theoretical and comparative analyses, and write an experiment report.</p>

K1

<p>Develop a comprhensive understanding of objects in equilibrium and Newton's laws of motion</p>

K2

<p>Understand and utilize concepts of centre of gravity and second moment of areas</p>

K3

<p>Explain and justify the effects of deviations from ideal behaviour in systems of interacting bodies/structures in equilibrium</p>

S1

<p>Construct free-body diagrams of objects subjected to forces, moments and distributed loads</p>

S2

<p>Build appropriate mathematical models for the analysis of static and dynamic systems.</p>

S3

<p>Synthesise solutions for engineeringĀ mechanics problems.</p>