DED process parameters optimization via experiments

Additive Manufacturing (AM) is a manufacturing technology that is being leveraged increasingly in an expanding number of industries. The resulting microstructure of a metallic material due to the Additive Manufacturing process could potentially cause it to possess different mechanical properties,...

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Main Author: Shaik Siraaj Muneer bin Mohammed Shaik Yamani
Other Authors: Li Hua
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2024
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Online Access:https://hdl.handle.net/10356/177264
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1772642024-06-01T16:50:36Z DED process parameters optimization via experiments Shaik Siraaj Muneer bin Mohammed Shaik Yamani Li Hua School of Mechanical and Aerospace Engineering LiHua@ntu.edu.sg Engineering Material science Additive manufacturing Additive Manufacturing (AM) is a manufacturing technology that is being leveraged increasingly in an expanding number of industries. The resulting microstructure of a metallic material due to the Additive Manufacturing process could potentially cause it to possess different mechanical properties, good and bad, from its classically produced alternative. In this report, the compressive behaviour of heterogenous AM 316L Stainless Steel stubs to determine their compression performance and highlight their deformation mechanisms during the compression testing to compare it to that of conventionally produced 316L Stainless Steel documented in the literature to discuss whether AM technology is robust enough to be used as an alternative to extruding said materials in a practical setting. For this project, 20 samples of AM 316L Stainless Steel underwent compression testing at room temperature and the data from the compression tests were obtained and refined to provide a more clearly defined Force/Displacement and Stress/Strain curves for further analysis. The results obtained from the experiments showed that the AM samples exhibited deviances from conventional 316L Stainless Steel in specific mechanical properties, such as ductility and Young’s Modulus. Differences in ultimate compressive strength, yield point and plastic deformation were also noted. The study implies that crystalline metallic structures produced by AM exhibit unique properties to traditionally produced metals, which allow for novel use cases and further property optimisation through the AM process. Bachelor's degree 2024-05-27T01:56:10Z 2024-05-27T01:56:10Z 2024 Final Year Project (FYP) Shaik Siraaj Muneer bin Mohammed Shaik Yamani (2024). DED process parameters optimization via experiments. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/177264 https://hdl.handle.net/10356/177264 en B125 application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering
Material science
Additive manufacturing
spellingShingle Engineering
Material science
Additive manufacturing
Shaik Siraaj Muneer bin Mohammed Shaik Yamani
DED process parameters optimization via experiments
description Additive Manufacturing (AM) is a manufacturing technology that is being leveraged increasingly in an expanding number of industries. The resulting microstructure of a metallic material due to the Additive Manufacturing process could potentially cause it to possess different mechanical properties, good and bad, from its classically produced alternative. In this report, the compressive behaviour of heterogenous AM 316L Stainless Steel stubs to determine their compression performance and highlight their deformation mechanisms during the compression testing to compare it to that of conventionally produced 316L Stainless Steel documented in the literature to discuss whether AM technology is robust enough to be used as an alternative to extruding said materials in a practical setting. For this project, 20 samples of AM 316L Stainless Steel underwent compression testing at room temperature and the data from the compression tests were obtained and refined to provide a more clearly defined Force/Displacement and Stress/Strain curves for further analysis. The results obtained from the experiments showed that the AM samples exhibited deviances from conventional 316L Stainless Steel in specific mechanical properties, such as ductility and Young’s Modulus. Differences in ultimate compressive strength, yield point and plastic deformation were also noted. The study implies that crystalline metallic structures produced by AM exhibit unique properties to traditionally produced metals, which allow for novel use cases and further property optimisation through the AM process.
author2 Li Hua
author_facet Li Hua
Shaik Siraaj Muneer bin Mohammed Shaik Yamani
format Final Year Project
author Shaik Siraaj Muneer bin Mohammed Shaik Yamani
author_sort Shaik Siraaj Muneer bin Mohammed Shaik Yamani
title DED process parameters optimization via experiments
title_short DED process parameters optimization via experiments
title_full DED process parameters optimization via experiments
title_fullStr DED process parameters optimization via experiments
title_full_unstemmed DED process parameters optimization via experiments
title_sort ded process parameters optimization via experiments
publisher Nanyang Technological University
publishDate 2024
url https://hdl.handle.net/10356/177264
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