| 1 | <p>Apply equilibrium principles to analyse the internal and external forces of statically determinate structures such as, beams, simple frames, truss and retaining walls.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Apply knowledge of mathematics, natural science, computing and engineering fundamentals, and an engineering specialisation, considering multiple perspectives and knowledge systems to develop solutions to complex engineering problems (WA1)</p><p>Use knowledge of mathematics, natural sciences and engineering principles, and research literature to identify, formulate, analyse and solve complex engineering problems and reach substantiated conclusions (WA2)</p> </p> |
| 2 | <p>Apply free body diagram concepts to determine internal actions – axial force, shear force bending moment and torque.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Apply knowledge of mathematics, natural science, computing and engineering fundamentals, and an engineering specialisation, considering multiple perspectives and knowledge systems to develop solutions to complex engineering problems (WA1)</p><p>Use knowledge of mathematics, natural sciences and engineering principles, and research literature to identify, formulate, analyse and solve complex engineering problems and reach substantiated conclusions (WA2)</p> </p> |
| 3 | <p>Understand basic structural engineering lexicon, and effectively communicate engineering designs through reading drawings, producing sketches, and calculation packages.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Communicate effectively, respectfully and inclusively on complex engineering activities with the engineering community and with society at large, such as being able to comprehend and write effective reports and design documentation, make effective presentations, taking into account cultural, language, and learning differences using a range of technologies and formats (WA10)</p> </p> |
| 4 | <p>Apply load collation and load path concepts to derive idealised design loading for different structural elements and structural systems.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Apply knowledge of mathematics, natural science, computing and engineering fundamentals, and an engineering specialisation, considering multiple perspectives and knowledge systems to develop solutions to complex engineering problems (WA1)</p><p>Use knowledge of mathematics, natural sciences and engineering principles, and research literature to identify, formulate, analyse and solve complex engineering problems and reach substantiated conclusions (WA2)</p> </p> |
| 5 | <p>Evaluate various plane section constants (e.g. A, I, Q...) from first principles or with the help of established theorems such as parallel axis and perpendicular axis theorem. Furthermore, appraise the efficiency of cross-section shape selection as structural element based on engineering beam theory.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Apply knowledge of mathematics, natural science, computing and engineering fundamentals, and an engineering specialisation, considering multiple perspectives and knowledge systems to develop solutions to complex engineering problems (WA1)</p><p>Use knowledge of mathematics, natural sciences and engineering principles, and research literature to identify, formulate, analyse and solve complex engineering problems and reach substantiated conclusions (WA2)</p> </p> |
| 6 | <p>Evaluate and apply Mohr circle techniques to solve stress transformation problems and evaluate principal stress and strain values. Apply appropriate failure theories to evaluate the safety of simple structural elements.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Apply knowledge of mathematics, natural science, computing and engineering fundamentals, and an engineering specialisation, considering multiple perspectives and knowledge systems to develop solutions to complex engineering problems (WA1)</p><p>Use knowledge of mathematics, natural sciences and engineering principles, and research literature to identify, formulate, analyse and solve complex engineering problems and reach substantiated conclusions (WA2)</p> </p> |
| 7 | <p>Evaluate, apply and derive on key engineering beam theory relationships from a first principle standpoint. Evaluate flexural stress distribution, elastic deformation for simple bending and combine bending problems.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Apply knowledge of mathematics, natural science, computing and engineering fundamentals, and an engineering specialisation, considering multiple perspectives and knowledge systems to develop solutions to complex engineering problems (WA1)</p><p>Use knowledge of mathematics, natural sciences and engineering principles, and research literature to identify, formulate, analyse and solve complex engineering problems and reach substantiated conclusions (WA2)</p><p>Design creative solutions for complex engineering problems and design systems, components or processes to meet identified needs with appropriate consideration for public health and safety, whole-life cost, net zero carbon, as well as resource, cultural, societal, and environmental considerations as required (WA3)</p><p>Communicate effectively, respectfully and inclusively on complex engineering activities with the engineering community and with society at large, such as being able to comprehend and write effective reports and design documentation, make effective presentations, taking into account cultural, language, and learning differences using a range of technologies and formats (WA10)</p> </p> |
| 8 | <p>Understand and apply beam shear theory to evaluate shear stress distribution and shear flow for open and closed thin-walled sections.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Apply knowledge of mathematics, natural science, computing and engineering fundamentals, and an engineering specialisation, considering multiple perspectives and knowledge systems to develop solutions to complex engineering problems (WA1)</p><p>Use knowledge of mathematics, natural sciences and engineering principles, and research literature to identify, formulate, analyse and solve complex engineering problems and reach substantiated conclusions (WA2)</p><p>Design creative solutions for complex engineering problems and design systems, components or processes to meet identified needs with appropriate consideration for public health and safety, whole-life cost, net zero carbon, as well as resource, cultural, societal, and environmental considerations as required (WA3)</p><p>Communicate effectively, respectfully and inclusively on complex engineering activities with the engineering community and with society at large, such as being able to comprehend and write effective reports and design documentation, make effective presentations, taking into account cultural, language, and learning differences using a range of technologies and formats (WA10)</p> </p> |
| 9 | <p>Understand and apply moment-curvature relationships to evaluate the bending deflections of simple determinate structures.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Apply knowledge of mathematics, natural science, computing and engineering fundamentals, and an engineering specialisation, considering multiple perspectives and knowledge systems to develop solutions to complex engineering problems (WA1)</p><p>Use knowledge of mathematics, natural sciences and engineering principles, and research literature to identify, formulate, analyse and solve complex engineering problems and reach substantiated conclusions (WA2)</p> </p> |
| 10 | <p>Apply concepts of combined loading to understand their effect on various types of stress in determinate structures. </p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Apply knowledge of mathematics, natural science, computing and engineering fundamentals, and an engineering specialisation, considering multiple perspectives and knowledge systems to develop solutions to complex engineering problems (WA1)</p><p>Use knowledge of mathematics, natural sciences and engineering principles, and research literature to identify, formulate, analyse and solve complex engineering problems and reach substantiated conclusions (WA2)</p> </p> |