| 1 | <p>Analyse a measurement problem in bioengineering, suggest appropriate sensors for measuring the quantities of interest, and apply appropriate signal processing and description techniques to quantify their results. Demonstrate an understanding of the cultural, environmental and sustainability considerations that impact on the selection of sensors and sensing technologies for use such measurements.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Create, select, apply, and recognize limitations of appropriate techniques, resources, and modern engineering and IT tools, including measurements, modelling and prediction, to solve complex engineering problems (WA5)</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> |
| 2 | <p>Identify the types of displacement, motion, temperature, force, pressure, and flow sensors appropriate for use in bioinstrumentation systems, describe the physical principles behind their operation, define the electronic circuits that are used in transducing their output, and list the pros and cons of each type of sensor and when one would be preferred over another.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Create, select, apply, and recognize limitations of appropriate techniques, resources, and modern engineering and IT tools, including measurements, modelling and prediction, to solve complex engineering problems (WA5)</p> </p> |
| 3 | <p>Demonstrate a knowledge of the characteristics and principles of optical sensors. Demonstrate the ability to choose an appropriate sensor for an optical measurement. </p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Create, select, apply, and recognize limitations of appropriate techniques, resources, and modern engineering and IT tools, including measurements, modelling and prediction, to solve complex engineering problems (WA5)</p> </p> |
| 4 | <p> Demonstrate an ability to use the exponential form of the Fourier transform Laplace transform to calculate the convolution, differential, and integral of functions, and solve initial value differential problems. </p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Create, select, apply, and recognize limitations of appropriate techniques, resources, and modern engineering and IT tools, including measurements, modelling and prediction, to solve complex engineering problems (WA5)</p> </p> |
| 5 | <p>Demonstrate an ability to use the Laplace transform and inverse Laplace transform to calculate the convolution, differential, and integral of functions, and solve initial value differential problems.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Create, select, apply, and recognize limitations of appropriate techniques, resources, and modern engineering and IT tools, including measurements, modelling and prediction, to solve complex engineering problems (WA5)</p> </p> |
| 6 | <p> Demonstrate an ability to represent simple mechanical and electrical systems as idealised linear differential/integral/algebraic systems. Demonstrate an understanding of the time and frequency characteristics of first and second order differential/integral/algebraic linear systems. </p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Create, select, apply, and recognize limitations of appropriate techniques, resources, and modern engineering and IT tools, including measurements, modelling and prediction, to solve complex engineering problems (WA5)</p> </p> |
| 7 | <p> Demonstrate an understanding of system control techniques, including the effects of proportional, integral and differential feedback elements on the control of linear systems. Implement a control system to ensure stable system behaviour across a range of measurement contexts. </p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Create, select, apply, and recognize limitations of appropriate techniques, resources, and modern engineering and IT tools, including measurements, modelling and prediction, to solve complex engineering problems (WA5)</p> </p> |
| 8 | <p>Explain the physics of electrodes, when one type of electrode is preferred over another, and explain the design and function of a typical biopotential amplifier.</p> | <p>BE(Hons) - Bachelor of Engineering (Honours) - Programme Capabilities <p>Create, select, apply, and recognize limitations of appropriate techniques, resources, and modern engineering and IT tools, including measurements, modelling and prediction, to solve complex engineering problems (WA5)</p> </p> |
| 9 | <p> Demonstrate knowledge of the engineering design process in the development of bioinstrumentation design project involving measurement and actuation. Demonstrate the ability to evaluate different actuation types and include cultural, social and sustainability considerations in the selection and implementation of actuation mechanisms.</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>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>Collaborate effectively as an individual, and as a member or leader in diverse and inclusive multi-disciplinary teams in face-to-face, remote and distributed settings, influencing work and in the service of others (WA9)</p> <p>Apply ethical principles and commit to professional ethics and norms of engineering practice, adhering to relevant national and international laws. Demonstrate an understanding of the need for diversity and inclusion (WA8)</p> </p> |
| 10 | <p>Demonstrate an understanding of of the importance of measurement standards and standardised expression to the pursuit of fairness/equity, and ethical behaviour, both locally and internationally</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>Apply ethical principles and commit to professional ethics and norms of engineering practice, adhering to relevant national and international laws. Demonstrate an understanding of the need for diversity and inclusion (WA8)</p> </p> |