Performance Analysis of Cutting Glass Fibre Epoxy Reinforced Composites Using an Abrasive Water Jet Machining Process

Abrasive Waterjet Machining (AWJM) is a versatile cutting process that involves directing a high-velocity stream of water mixed with abrasive particles to remove material and create holes and cavities in solid materials. In this study, the impact of abrasives waterjet machining (AWJM) parameters, in...

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Published in:INTERNATIONAL JOURNAL OF INTEGRATED ENGINEERING
Main Authors: Tharazi, Izdihar; Rahaman, Wan Emri Wan Abdul; Sarizam, Muhamad Iltizam Ezwan
Format: Article
Language:English
Published: UNIV TUN HUSSEIN ONN MALAYSIA 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001397801100007
author Tharazi
Izdihar; Rahaman
Wan Emri Wan Abdul; Sarizam
Muhamad Iltizam Ezwan
spellingShingle Tharazi
Izdihar; Rahaman
Wan Emri Wan Abdul; Sarizam
Muhamad Iltizam Ezwan
Performance Analysis of Cutting Glass Fibre Epoxy Reinforced Composites Using an Abrasive Water Jet Machining Process
Engineering
author_facet Tharazi
Izdihar; Rahaman
Wan Emri Wan Abdul; Sarizam
Muhamad Iltizam Ezwan
author_sort Tharazi
spelling Tharazi, Izdihar; Rahaman, Wan Emri Wan Abdul; Sarizam, Muhamad Iltizam Ezwan
Performance Analysis of Cutting Glass Fibre Epoxy Reinforced Composites Using an Abrasive Water Jet Machining Process
INTERNATIONAL JOURNAL OF INTEGRATED ENGINEERING
English
Article
Abrasive Waterjet Machining (AWJM) is a versatile cutting process that involves directing a high-velocity stream of water mixed with abrasive particles to remove material and create holes and cavities in solid materials. In this study, the impact of abrasives waterjet machining (AWJM) parameters, including traverse speed, stand-off distance, and abrasive flow rate, while maintaining a constant pressure, on glass fibre epoxy composites were investigated. The glass fibre composites were made up of 50% glass fibre, 47% epoxy, and 3% graphite by weight. The aim of this study is to assist industries and individuals in selecting optimal AWJM parameters to achieve desired kerf width and surface roughness while meeting specified standards. Central Composite Design (CCD) integrated with Responsive Surface Methodology (RSM) was employed to determine the experimental parameters. Analysis of Variance (ANOVA) and regression models were established to predict kerf width and surface roughness based on primary and interaction effects of process parameters. Kerf width was measured using a Vernier caliper, while surface roughness was assessed using a surf test machine (SV-600). The study reveals that surface roughness is influenced by machining parameters such as stand-off distance, traverse speed, and abrasive flow rate, along with the interaction between stand-off distance and traverse speed. In contrast, kerf width is predominantly influenced by stand-off distance and traverse speed. Additionally, a morphological analysis of the samples was conducted using Optical Microscopy and Scanning Electron Microscopy (SEM) to examine surface microstructures.
UNIV TUN HUSSEIN ONN MALAYSIA
2229-838X

2024
16
9
10.30880/ijie.2024.16.09.022
Engineering

WOS:001397801100007
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001397801100007
title Performance Analysis of Cutting Glass Fibre Epoxy Reinforced Composites Using an Abrasive Water Jet Machining Process
title_short Performance Analysis of Cutting Glass Fibre Epoxy Reinforced Composites Using an Abrasive Water Jet Machining Process
title_full Performance Analysis of Cutting Glass Fibre Epoxy Reinforced Composites Using an Abrasive Water Jet Machining Process
title_fullStr Performance Analysis of Cutting Glass Fibre Epoxy Reinforced Composites Using an Abrasive Water Jet Machining Process
title_full_unstemmed Performance Analysis of Cutting Glass Fibre Epoxy Reinforced Composites Using an Abrasive Water Jet Machining Process
title_sort Performance Analysis of Cutting Glass Fibre Epoxy Reinforced Composites Using an Abrasive Water Jet Machining Process
container_title INTERNATIONAL JOURNAL OF INTEGRATED ENGINEERING
language English
format Article
description Abrasive Waterjet Machining (AWJM) is a versatile cutting process that involves directing a high-velocity stream of water mixed with abrasive particles to remove material and create holes and cavities in solid materials. In this study, the impact of abrasives waterjet machining (AWJM) parameters, including traverse speed, stand-off distance, and abrasive flow rate, while maintaining a constant pressure, on glass fibre epoxy composites were investigated. The glass fibre composites were made up of 50% glass fibre, 47% epoxy, and 3% graphite by weight. The aim of this study is to assist industries and individuals in selecting optimal AWJM parameters to achieve desired kerf width and surface roughness while meeting specified standards. Central Composite Design (CCD) integrated with Responsive Surface Methodology (RSM) was employed to determine the experimental parameters. Analysis of Variance (ANOVA) and regression models were established to predict kerf width and surface roughness based on primary and interaction effects of process parameters. Kerf width was measured using a Vernier caliper, while surface roughness was assessed using a surf test machine (SV-600). The study reveals that surface roughness is influenced by machining parameters such as stand-off distance, traverse speed, and abrasive flow rate, along with the interaction between stand-off distance and traverse speed. In contrast, kerf width is predominantly influenced by stand-off distance and traverse speed. Additionally, a morphological analysis of the samples was conducted using Optical Microscopy and Scanning Electron Microscopy (SEM) to examine surface microstructures.
publisher UNIV TUN HUSSEIN ONN MALAYSIA
issn 2229-838X

publishDate 2024
container_volume 16
container_issue 9
doi_str_mv 10.30880/ijie.2024.16.09.022
topic Engineering
topic_facet Engineering
accesstype
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url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001397801100007
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