Multi-material forging of lightweight materials

Going lightweight and yet retaining the strength of products have been the trend in the manufacturing industry in recent years. The current industry does not yet have a single process for forming and joining, and not to mention that there are very few methods in terms of optimizing strength-to-weigh...

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Main Author: Ong, Jeremy Wei Song
Other Authors: Castagne Sylvie Jeanne Constance
Format: Final Year Project
Language:English
Published: 2017
Subjects:
Online Access:http://hdl.handle.net/10356/71170
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-711702023-03-04T19:15:10Z Multi-material forging of lightweight materials Ong, Jeremy Wei Song Castagne Sylvie Jeanne Constance School of Mechanical and Aerospace Engineering A*STAR Singapore Institute of Manufacturing Technology DRNTU::Engineering::Mechanical engineering Going lightweight and yet retaining the strength of products have been the trend in the manufacturing industry in recent years. The current industry does not yet have a single process for forming and joining, and not to mention that there are very few methods in terms of optimizing strength-to-weight ratio. Processes such as welding or riveting are examples of a joining procedure to join similar or dissimilar materials together. However, such processes often take up extra time and costs due to the extra joining step required. As a result, a new “joining by forming” manufacturing process, multi-material forging of lightweight materials, was introduced. This project examines the soundness of multi-material forging of steel and aluminium, as well as to investigate the parameters governing the effectiveness of a multi-material forged specimen. Simulations and mechanical testing, such as hardness test and push-out test, are done to determine the quality of material bonding, combinations of material selection and process parameters. Experiments concluded that a multi-material forged specimen weighed 14% lighter and was able to withstand loading of up to 83.6% higher than a single-material forged specimen. Hardness testing concluded with the possibility of presence of residual stress at the joint area, before simulations ran with DEFORMTM confirmed the presence of residual stress within the bond. Future works will include designs of marketable multi-material products that can be mass produced and exploring different types of material combinations. Bachelor of Engineering (Mechanical Engineering) 2017-05-15T06:36:04Z 2017-05-15T06:36:04Z 2017 Final Year Project (FYP) http://hdl.handle.net/10356/71170 en Nanyang Technological University 80 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Mechanical engineering
spellingShingle DRNTU::Engineering::Mechanical engineering
Ong, Jeremy Wei Song
Multi-material forging of lightweight materials
description Going lightweight and yet retaining the strength of products have been the trend in the manufacturing industry in recent years. The current industry does not yet have a single process for forming and joining, and not to mention that there are very few methods in terms of optimizing strength-to-weight ratio. Processes such as welding or riveting are examples of a joining procedure to join similar or dissimilar materials together. However, such processes often take up extra time and costs due to the extra joining step required. As a result, a new “joining by forming” manufacturing process, multi-material forging of lightweight materials, was introduced. This project examines the soundness of multi-material forging of steel and aluminium, as well as to investigate the parameters governing the effectiveness of a multi-material forged specimen. Simulations and mechanical testing, such as hardness test and push-out test, are done to determine the quality of material bonding, combinations of material selection and process parameters. Experiments concluded that a multi-material forged specimen weighed 14% lighter and was able to withstand loading of up to 83.6% higher than a single-material forged specimen. Hardness testing concluded with the possibility of presence of residual stress at the joint area, before simulations ran with DEFORMTM confirmed the presence of residual stress within the bond. Future works will include designs of marketable multi-material products that can be mass produced and exploring different types of material combinations.
author2 Castagne Sylvie Jeanne Constance
author_facet Castagne Sylvie Jeanne Constance
Ong, Jeremy Wei Song
format Final Year Project
author Ong, Jeremy Wei Song
author_sort Ong, Jeremy Wei Song
title Multi-material forging of lightweight materials
title_short Multi-material forging of lightweight materials
title_full Multi-material forging of lightweight materials
title_fullStr Multi-material forging of lightweight materials
title_full_unstemmed Multi-material forging of lightweight materials
title_sort multi-material forging of lightweight materials
publishDate 2017
url http://hdl.handle.net/10356/71170
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