Fracture behavior of directed energy deposition fabricated ph15-5 stainless steel

Direct energy deposition (DED) is one of the additive manufacturing (AM) technologies that have gained popularity mainly due to its potential for diversified processing activities such as repair of components, manufacturing for low volume of production and components with complex geometries. It woul...

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Main Author: Lim, Jerron Yi Quan
Other Authors: Upadrasta Ramamurty
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2022
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Online Access:https://hdl.handle.net/10356/158831
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1588312022-06-07T07:35:39Z Fracture behavior of directed energy deposition fabricated ph15-5 stainless steel Lim, Jerron Yi Quan Upadrasta Ramamurty School of Mechanical and Aerospace Engineering uram@ntu.edu.sg Engineering::Mechanical engineering Direct energy deposition (DED) is one of the additive manufacturing (AM) technologies that have gained popularity mainly due to its potential for diversified processing activities such as repair of components, manufacturing for low volume of production and components with complex geometries. It would be useful in aerospace industries where parts are huge and direct repair on the components are feasible. Steels are the most used in many engineering sectors, and have tremendous interests in AM. Precipitation hardened (PH) stainless steels (SS) is infamous for their corrosion resistant, high strength and toughness used in engineering applications such as gears, valves, and turbine blades. However, there is limited research on the fatigue and fracture response of PH SS which plays an important role in applications with cyclic loading. This project discovers the effects of microcracks and flaws on the fatigue and fracture response of the PH15-5 SS. It was noted that the direction of microcracks with respect to the build orientation affects the mechanical characteristics of the material. The formation of microcracks could be due to solidification cracking that forms along the grain boundaries of the prior austenite phase. Upon conducting the fatigue crack growth and fracture toughness experiment, it was observed that the direction of microcrack parallel to the loading direction can act as a toughening mechanism due to crack arrest and crack blunting. This improves the toughness of the material despite noticing a drop in tensile strength when compared to conventionally manufactured PH SS. Whereas, the direction of microcracks perpendicular to the loading direction promotes an easier path for fatigue crack propagation. However, there are still crack deflection and crack blunting due to the orientation of microcracks, which is why it overall improves the toughness of the material. Other experiments such as tensile and hardness tests were performed to determine the mechanical properties. This project shows that microcracks can cause detrimental effect to the strength and hardness of the material, however, can be beneficial in toughening the material due to crack arrest and branching effect. Bachelor of Engineering (Mechanical Engineering) 2022-06-07T07:35:39Z 2022-06-07T07:35:39Z 2022 Final Year Project (FYP) Lim, J. Y. Q. (2022). Fracture behavior of directed energy deposition fabricated ph15-5 stainless steel. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/158831 https://hdl.handle.net/10356/158831 en B218 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::Mechanical engineering
spellingShingle Engineering::Mechanical engineering
Lim, Jerron Yi Quan
Fracture behavior of directed energy deposition fabricated ph15-5 stainless steel
description Direct energy deposition (DED) is one of the additive manufacturing (AM) technologies that have gained popularity mainly due to its potential for diversified processing activities such as repair of components, manufacturing for low volume of production and components with complex geometries. It would be useful in aerospace industries where parts are huge and direct repair on the components are feasible. Steels are the most used in many engineering sectors, and have tremendous interests in AM. Precipitation hardened (PH) stainless steels (SS) is infamous for their corrosion resistant, high strength and toughness used in engineering applications such as gears, valves, and turbine blades. However, there is limited research on the fatigue and fracture response of PH SS which plays an important role in applications with cyclic loading. This project discovers the effects of microcracks and flaws on the fatigue and fracture response of the PH15-5 SS. It was noted that the direction of microcracks with respect to the build orientation affects the mechanical characteristics of the material. The formation of microcracks could be due to solidification cracking that forms along the grain boundaries of the prior austenite phase. Upon conducting the fatigue crack growth and fracture toughness experiment, it was observed that the direction of microcrack parallel to the loading direction can act as a toughening mechanism due to crack arrest and crack blunting. This improves the toughness of the material despite noticing a drop in tensile strength when compared to conventionally manufactured PH SS. Whereas, the direction of microcracks perpendicular to the loading direction promotes an easier path for fatigue crack propagation. However, there are still crack deflection and crack blunting due to the orientation of microcracks, which is why it overall improves the toughness of the material. Other experiments such as tensile and hardness tests were performed to determine the mechanical properties. This project shows that microcracks can cause detrimental effect to the strength and hardness of the material, however, can be beneficial in toughening the material due to crack arrest and branching effect.
author2 Upadrasta Ramamurty
author_facet Upadrasta Ramamurty
Lim, Jerron Yi Quan
format Final Year Project
author Lim, Jerron Yi Quan
author_sort Lim, Jerron Yi Quan
title Fracture behavior of directed energy deposition fabricated ph15-5 stainless steel
title_short Fracture behavior of directed energy deposition fabricated ph15-5 stainless steel
title_full Fracture behavior of directed energy deposition fabricated ph15-5 stainless steel
title_fullStr Fracture behavior of directed energy deposition fabricated ph15-5 stainless steel
title_full_unstemmed Fracture behavior of directed energy deposition fabricated ph15-5 stainless steel
title_sort fracture behavior of directed energy deposition fabricated ph15-5 stainless steel
publisher Nanyang Technological University
publishDate 2022
url https://hdl.handle.net/10356/158831
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