Investigation on the microstructure and mechancial properties of stellite 6 alloy printed by directed energy deposition

Additive manufacturing has revolutionised modern manufacturing process. Providing advantages in producing complex and customized objects layer by layer, offering design freedom and efficiency. Under the different methodologies of additive manufacturing, directed energy deposition has gained populari...

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Main Author: Ng, Jovian Wei Yan
Other Authors: Zhou Kun
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2024
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Online Access:https://hdl.handle.net/10356/176586
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1765862024-05-18T16:53:25Z Investigation on the microstructure and mechancial properties of stellite 6 alloy printed by directed energy deposition Ng, Jovian Wei Yan Zhou Kun School of Mechanical and Aerospace Engineering kzhou@ntu.edu.sg Engineering Stellite 6 alloy Stellite Additive manufacturing has revolutionised modern manufacturing process. Providing advantages in producing complex and customized objects layer by layer, offering design freedom and efficiency. Under the different methodologies of additive manufacturing, directed energy deposition has gained popularity particularly in industries requiring repair, modification, or the fabrication of large-scale metal components. Stellite 6 alloy is extensively used in the marine industry due to its exceptional resistance to corrosion due, wear, and high temperature. However, its inherent hardness and toughness pose challenges in fabrication, necessitating specialised equipment. Presently, powder metallurgy serves as the primary manufacturing method, involving sintering and additional heat treatments. This traditional method nonetheless has limitation in producing complex geometry and further machining is required and this will generate waste. To mitigate these challenges, directed energy deposition is explored for Stellite 6 alloy fabrication. This investigation aims to identify optimal process parameters to minimised defects and enhance mechanical properties. Following the DED process, the specimens with different processing parameters will undergo sample preparation for examination under OM and SEM. Through this experiment, it has been observed that increasing the laser power during DED, finer dendrites structure was observed. Laser power is closely related to the strength and hardness of the material. This study signifies a promising approach to address the drawbacks associated with traditional Stellite 6 Alloy manufacturing. Bachelor's degree 2024-05-16T08:27:11Z 2024-05-16T08:27:11Z 2024 Final Year Project (FYP) Ng, J. W. Y. (2024). Investigation on the microstructure and mechancial properties of stellite 6 alloy printed by directed energy deposition. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/176586 https://hdl.handle.net/10356/176586 en A171 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
Stellite 6 alloy
Stellite
spellingShingle Engineering
Stellite 6 alloy
Stellite
Ng, Jovian Wei Yan
Investigation on the microstructure and mechancial properties of stellite 6 alloy printed by directed energy deposition
description Additive manufacturing has revolutionised modern manufacturing process. Providing advantages in producing complex and customized objects layer by layer, offering design freedom and efficiency. Under the different methodologies of additive manufacturing, directed energy deposition has gained popularity particularly in industries requiring repair, modification, or the fabrication of large-scale metal components. Stellite 6 alloy is extensively used in the marine industry due to its exceptional resistance to corrosion due, wear, and high temperature. However, its inherent hardness and toughness pose challenges in fabrication, necessitating specialised equipment. Presently, powder metallurgy serves as the primary manufacturing method, involving sintering and additional heat treatments. This traditional method nonetheless has limitation in producing complex geometry and further machining is required and this will generate waste. To mitigate these challenges, directed energy deposition is explored for Stellite 6 alloy fabrication. This investigation aims to identify optimal process parameters to minimised defects and enhance mechanical properties. Following the DED process, the specimens with different processing parameters will undergo sample preparation for examination under OM and SEM. Through this experiment, it has been observed that increasing the laser power during DED, finer dendrites structure was observed. Laser power is closely related to the strength and hardness of the material. This study signifies a promising approach to address the drawbacks associated with traditional Stellite 6 Alloy manufacturing.
author2 Zhou Kun
author_facet Zhou Kun
Ng, Jovian Wei Yan
format Final Year Project
author Ng, Jovian Wei Yan
author_sort Ng, Jovian Wei Yan
title Investigation on the microstructure and mechancial properties of stellite 6 alloy printed by directed energy deposition
title_short Investigation on the microstructure and mechancial properties of stellite 6 alloy printed by directed energy deposition
title_full Investigation on the microstructure and mechancial properties of stellite 6 alloy printed by directed energy deposition
title_fullStr Investigation on the microstructure and mechancial properties of stellite 6 alloy printed by directed energy deposition
title_full_unstemmed Investigation on the microstructure and mechancial properties of stellite 6 alloy printed by directed energy deposition
title_sort investigation on the microstructure and mechancial properties of stellite 6 alloy printed by directed energy deposition
publisher Nanyang Technological University
publishDate 2024
url https://hdl.handle.net/10356/176586
_version_ 1800916284706127872