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MEDI6078 2025-26
Allergy Dissertation
The dissertation module offers the opportunity for you to apply your Masters level knowledge to solve an allergy problem. You can choose either a professional project or a research project, both of which can be based around your work and should be aimed at improving clinical care for people with allergies. Professional projects include a service evaluation, clinical audit or needs assessment based around allergy clinical services. Research projects generate new knowledge where there is no or limited research evidence available or can systematically review the literature to answer a research question. You will use your knowledge gained from the Clinical Research Skills module to design and conduct your dissertation project. The dissertation is the final step in your MSc Allergy journey. It is exciting, challenging, and ultimately can be very rewarding.
Our online module includes live sessions which you should attend. These allow you to engage with our expert teachers and your fellow students and benefit from rich discussions. Tutorials and workshops take place during our live sessions which allow you to explore various aspects of project design in a supported environment. Engaging with live sessions allows you to gain support from your peers and the module leads, synthesise your learning and reflect on your progress as you go. -
SESM6055 2030-31
Alloys for additive manufacturing: production, processing, design, and sustainability
The module aims to provide students with an introduction to alloys additive manufacturing (AM) incorporating four aspects: production, processing, design, and sustainability. With a focus on metallic powder technologies, the module will introduce the key production technologies for the production of advanced powders for AM, reviewing the different families of alloys commercially available for AM. The majority of these alloys were specifically designed wrought technologies, so their microstructure is a direct response to hot and cold working schemes. The AM microstructures are then reviewed with a focus on the challenges to design new alloys to satisfy the growing demand for metal products AM, which is one of the fastest growing manufacturing industries in the UK and the world. Such alloy design space offers the opportunity to transform the emerging AM technology into sustainable, the parameters of such transformation are outlined in the module.
Students will be taught the course material in lectures, where production and processing principles will be introduced, as well as the sustainability challenges. Video presentations of UK-based production facilities will be used to illustrate those facilities. Computational thermodynamics will be adopted to describe the microstructures resulting from AM, and to explore the compositional additions and process parameters to attain sustainable AM alloys. The modelling tools presented will provide the student with the ability to predict the microstructure and some mechanical properties for new 3D printed products. A design and modelling project will be provided to students, and the assessment will be made in groups.
This module is linked to SESG3024 and SESM6044 Manufacturing and Materials, and to SESG6042 Materials Engineering for Transport Applications. Those courses provide a complementary overview of related microstructures, alloy families, alloy production and manufacturing processes. See comments above. -
SESM6055 2026-27
Alloys for additive manufacturing: production, processing, design, and sustainability
The module aims to provide students with an introduction to alloys additive manufacturing (AM) incorporating four aspects: production, processing, design, and sustainability. With a focus on metallic powder technologies, the module will introduce the key production technologies for the production of advanced powders for AM, reviewing the different families of alloys commercially available for AM. The majority of these alloys were specifically designed wrought technologies, so their microstructure is a direct response to hot and cold working schemes. The AM microstructures are then reviewed with a focus on the challenges to design new alloys to satisfy the growing demand for metal products AM, which is one of the fastest growing manufacturing industries in the UK and the world. Such alloy design space offers the opportunity to transform the emerging AM technology into sustainable, the parameters of such transformation are outlined in the module.
Students will be taught the course material in lectures, where production and processing principles will be introduced, as well as the sustainability challenges. Video presentations of UK-based production facilities will be used to illustrate those facilities. Computational thermodynamics will be adopted to describe the microstructures resulting from AM, and to explore the compositional additions and process parameters to attain sustainable AM alloys. The modelling tools presented will provide the student with the ability to predict the microstructure and some mechanical properties for new 3D printed products. A design and modelling project will be provided to students, and the assessment will be made in groups.
This module is linked to SESG3024 and SESM6044 Manufacturing and Materials, and to SESG6042 Materials Engineering for Transport Applications. Those courses provide a complementary overview of related microstructures, alloy families, alloy production and manufacturing processes. See comments above. -
SESM6055 2028-29
Alloys for additive manufacturing: production, processing, design, and sustainability
The module aims to provide students with an introduction to alloys additive manufacturing (AM) incorporating four aspects: production, processing, design, and sustainability. With a focus on metallic powder technologies, the module will introduce the key production technologies for the production of advanced powders for AM, reviewing the different families of alloys commercially available for AM. The majority of these alloys were specifically designed wrought technologies, so their microstructure is a direct response to hot and cold working schemes. The AM microstructures are then reviewed with a focus on the challenges to design new alloys to satisfy the growing demand for metal products AM, which is one of the fastest growing manufacturing industries in the UK and the world. Such alloy design space offers the opportunity to transform the emerging AM technology into sustainable, the parameters of such transformation are outlined in the module.
Students will be taught the course material in lectures, where production and processing principles will be introduced, as well as the sustainability challenges. Video presentations of UK-based production facilities will be used to illustrate those facilities. Computational thermodynamics will be adopted to describe the microstructures resulting from AM, and to explore the compositional additions and process parameters to attain sustainable AM alloys. The modelling tools presented will provide the student with the ability to predict the microstructure and some mechanical properties for new 3D printed products. A design and modelling project will be provided to students, and the assessment will be made in groups.
This module is linked to SESG3024 and SESM6044 Manufacturing and Materials, and to SESG6042 Materials Engineering for Transport Applications. Those courses provide a complementary overview of related microstructures, alloy families, alloy production and manufacturing processes. See comments above. -
SESM6055 2025-26
Alloys for additive manufacturing: production, processing, design, and sustainability
The module aims to provide students with an introduction to alloys additive manufacturing (AM) incorporating four aspects: production, processing, design, and sustainability. With a focus on metallic powder technologies, the module will introduce the key production technologies for the production of advanced powders for AM, reviewing the different families of alloys commercially available for AM. The majority of these alloys were specifically designed wrought technologies, so their microstructure is a direct response to hot and cold working schemes. The AM microstructures are then reviewed with a focus on the challenges to design new alloys to satisfy the growing demand for metal products AM, which is one of the fastest growing manufacturing industries in the UK and the world. Such alloy design space offers the opportunity to transform the emerging AM technology into sustainable, the parameters of such transformation are outlined in the module.
Students will be taught the course material in lectures, where production and processing principles will be introduced, as well as the sustainability challenges. Video presentations of UK-based production facilities will be used to illustrate those facilities. Computational thermodynamics will be adopted to describe the microstructures resulting from AM, and to explore the compositional additions and process parameters to attain sustainable AM alloys. The modelling tools presented will provide the student with the ability to predict the microstructure and some mechanical properties for new 3D printed products. A design and modelling project will be provided to students, and the assessment will be made in groups.
This module is linked to SESG3024 and SESM6044 Manufacturing and Materials, and to SESG6042 Materials Engineering for Transport Applications. Those courses provide a complementary overview of related microstructures, alloy families, alloy production and manufacturing processes. See comments above. -
SESM6055 2029-30
Alloys for additive manufacturing: production, processing, design, and sustainability
The module aims to provide students with an introduction to alloys additive manufacturing (AM) incorporating four aspects: production, processing, design, and sustainability. With a focus on metallic powder technologies, the module will introduce the key production technologies for the production of advanced powders for AM, reviewing the different families of alloys commercially available for AM. The majority of these alloys were specifically designed wrought technologies, so their microstructure is a direct response to hot and cold working schemes. The AM microstructures are then reviewed with a focus on the challenges to design new alloys to satisfy the growing demand for metal products AM, which is one of the fastest growing manufacturing industries in the UK and the world. Such alloy design space offers the opportunity to transform the emerging AM technology into sustainable, the parameters of such transformation are outlined in the module.
Students will be taught the course material in lectures, where production and processing principles will be introduced, as well as the sustainability challenges. Video presentations of UK-based production facilities will be used to illustrate those facilities. Computational thermodynamics will be adopted to describe the microstructures resulting from AM, and to explore the compositional additions and process parameters to attain sustainable AM alloys. The modelling tools presented will provide the student with the ability to predict the microstructure and some mechanical properties for new 3D printed products. A design and modelling project will be provided to students, and the assessment will be made in groups.
This module is linked to SESG3024 and SESM6044 Manufacturing and Materials, and to SESG6042 Materials Engineering for Transport Applications. Those courses provide a complementary overview of related microstructures, alloy families, alloy production and manufacturing processes. See comments above. -
SESM6055 2031-32
Alloys for additive manufacturing: production, processing, design, and sustainability
The module aims to provide students with an introduction to alloys additive manufacturing (AM) incorporating four aspects: production, processing, design, and sustainability. With a focus on metallic powder technologies, the module will introduce the key production technologies for the production of advanced powders for AM, reviewing the different families of alloys commercially available for AM. The majority of these alloys were specifically designed wrought technologies, so their microstructure is a direct response to hot and cold working schemes. The AM microstructures are then reviewed with a focus on the challenges to design new alloys to satisfy the growing demand for metal products AM, which is one of the fastest growing manufacturing industries in the UK and the world. Such alloy design space offers the opportunity to transform the emerging AM technology into sustainable, the parameters of such transformation are outlined in the module.
Students will be taught the course material in lectures, where production and processing principles will be introduced, as well as the sustainability challenges. Video presentations of UK-based production facilities will be used to illustrate those facilities. Computational thermodynamics will be adopted to describe the microstructures resulting from AM, and to explore the compositional additions and process parameters to attain sustainable AM alloys. The modelling tools presented will provide the student with the ability to predict the microstructure and some mechanical properties for new 3D printed products. A design and modelling project will be provided to students, and the assessment will be made in groups.
This module is linked to SESG3024 and SESM6044 Manufacturing and Materials, and to SESG6042 Materials Engineering for Transport Applications. Those courses provide a complementary overview of related microstructures, alloy families, alloy production and manufacturing processes. See comments above. -
MANG3081 2028-29
Alternative Investments
Alternative investment strategies became increasingly popular among investors to achieve better returns. This module looks beyond the traditional investments such as shares and bonds. It covers a range of topics that introduce the world of alternative investment strategies; in particular hedge funds, private equity and real estate investment trusts. Lectures are followed by in-depth practical examples using statistical packages, discussions and tools that show the real world implications. -
MANG3081 2029-30
Alternative Investments
Alternative investment strategies became increasingly popular among investors to achieve better returns. This module looks beyond the traditional investments such as shares and bonds. It covers a range of topics that introduce the world of alternative investment strategies; in particular hedge funds, private equity and real estate investment trusts. Lectures are followed by in-depth practical examples using statistical packages, discussions and tools that show the real world implications. -
MANG3081 2027-28
Alternative Investments
Alternative investment strategies became increasingly popular among investors to achieve better returns. This module looks beyond the traditional investments such as shares and bonds. It covers a range of topics that introduce the world of alternative investment strategies; in particular hedge funds, private equity and real estate investment trusts. Lectures are followed by in-depth practical examples using statistical packages, discussions and tools that show the real world implications.