Cargando…

A Study on Processing Defects and Parameter Optimization in Abrasive Suspension Jet Cutting of Carbon-Fiber-Reinforced Plastics

Abrasive suspension jet (ASJ), an accurate cold-cutting technology, can address traditional processing issues relating to carbon-fiber-reinforced plastics (CFRPs) like tool wear, interlayer delamination, large heat-affected zone, and low surface roughness. This study employed the use of an ASJ to cu...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Liucan, Xiao, Nanzhe, Guo, Chuwen, Wang, Fengchao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10672456/
https://www.ncbi.nlm.nih.gov/pubmed/38004994
http://dx.doi.org/10.3390/ma16227064
_version_ 1785140395516100608
author Li, Liucan
Xiao, Nanzhe
Guo, Chuwen
Wang, Fengchao
author_facet Li, Liucan
Xiao, Nanzhe
Guo, Chuwen
Wang, Fengchao
author_sort Li, Liucan
collection PubMed
description Abrasive suspension jet (ASJ), an accurate cold-cutting technology, can address traditional processing issues relating to carbon-fiber-reinforced plastics (CFRPs) like tool wear, interlayer delamination, large heat-affected zone, and low surface roughness. This study employed the use of an ASJ to cut CFRPs and an ultra-depth optical microscope to scan the cut surface to analyze interlayer delamination, surface roughness, kerf taper, and shoulder damage. Regression analysis was conducted to establish a prediction model for cutting quality based on surface roughness, kerf taper, and shoulder damage. Various types of CFRP cutting quality were analyzed using jet parameters. It was found that the use of ASJ to process CFRP results in the following defects: The range of surface roughness variation is from 0.112 μm to 0.144 μm. Surface roughness is most influenced by stand-off distance, followed by traverse speed and jet pressure. The range of kerf taper variation is from 4.737° to 10.1°. Kerf taper is most influenced by stand-off distance, followed by jet pressure and traverse speed. The range of shoulder damage variation is from 3.384 μm(2) to 10 μm(2). Shoulder damage is most influenced by jet pressure, followed by traverse speed and stand-off distance. A prediction model for cutting quality was developed based on surface roughness, kerf taper, and shoulder damage, providing data support for ASJ cutting of CFRPs. The optimal parameter combination is a stand-off distance of 1 mm, a jet pressure of 30 MPa, and a traverse speed of 30 mm/min.
format Online
Article
Text
id pubmed-10672456
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-106724562023-11-07 A Study on Processing Defects and Parameter Optimization in Abrasive Suspension Jet Cutting of Carbon-Fiber-Reinforced Plastics Li, Liucan Xiao, Nanzhe Guo, Chuwen Wang, Fengchao Materials (Basel) Article Abrasive suspension jet (ASJ), an accurate cold-cutting technology, can address traditional processing issues relating to carbon-fiber-reinforced plastics (CFRPs) like tool wear, interlayer delamination, large heat-affected zone, and low surface roughness. This study employed the use of an ASJ to cut CFRPs and an ultra-depth optical microscope to scan the cut surface to analyze interlayer delamination, surface roughness, kerf taper, and shoulder damage. Regression analysis was conducted to establish a prediction model for cutting quality based on surface roughness, kerf taper, and shoulder damage. Various types of CFRP cutting quality were analyzed using jet parameters. It was found that the use of ASJ to process CFRP results in the following defects: The range of surface roughness variation is from 0.112 μm to 0.144 μm. Surface roughness is most influenced by stand-off distance, followed by traverse speed and jet pressure. The range of kerf taper variation is from 4.737° to 10.1°. Kerf taper is most influenced by stand-off distance, followed by jet pressure and traverse speed. The range of shoulder damage variation is from 3.384 μm(2) to 10 μm(2). Shoulder damage is most influenced by jet pressure, followed by traverse speed and stand-off distance. A prediction model for cutting quality was developed based on surface roughness, kerf taper, and shoulder damage, providing data support for ASJ cutting of CFRPs. The optimal parameter combination is a stand-off distance of 1 mm, a jet pressure of 30 MPa, and a traverse speed of 30 mm/min. MDPI 2023-11-07 /pmc/articles/PMC10672456/ /pubmed/38004994 http://dx.doi.org/10.3390/ma16227064 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Liucan
Xiao, Nanzhe
Guo, Chuwen
Wang, Fengchao
A Study on Processing Defects and Parameter Optimization in Abrasive Suspension Jet Cutting of Carbon-Fiber-Reinforced Plastics
title A Study on Processing Defects and Parameter Optimization in Abrasive Suspension Jet Cutting of Carbon-Fiber-Reinforced Plastics
title_full A Study on Processing Defects and Parameter Optimization in Abrasive Suspension Jet Cutting of Carbon-Fiber-Reinforced Plastics
title_fullStr A Study on Processing Defects and Parameter Optimization in Abrasive Suspension Jet Cutting of Carbon-Fiber-Reinforced Plastics
title_full_unstemmed A Study on Processing Defects and Parameter Optimization in Abrasive Suspension Jet Cutting of Carbon-Fiber-Reinforced Plastics
title_short A Study on Processing Defects and Parameter Optimization in Abrasive Suspension Jet Cutting of Carbon-Fiber-Reinforced Plastics
title_sort study on processing defects and parameter optimization in abrasive suspension jet cutting of carbon-fiber-reinforced plastics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10672456/
https://www.ncbi.nlm.nih.gov/pubmed/38004994
http://dx.doi.org/10.3390/ma16227064
work_keys_str_mv AT liliucan astudyonprocessingdefectsandparameteroptimizationinabrasivesuspensionjetcuttingofcarbonfiberreinforcedplastics
AT xiaonanzhe astudyonprocessingdefectsandparameteroptimizationinabrasivesuspensionjetcuttingofcarbonfiberreinforcedplastics
AT guochuwen astudyonprocessingdefectsandparameteroptimizationinabrasivesuspensionjetcuttingofcarbonfiberreinforcedplastics
AT wangfengchao astudyonprocessingdefectsandparameteroptimizationinabrasivesuspensionjetcuttingofcarbonfiberreinforcedplastics
AT liliucan studyonprocessingdefectsandparameteroptimizationinabrasivesuspensionjetcuttingofcarbonfiberreinforcedplastics
AT xiaonanzhe studyonprocessingdefectsandparameteroptimizationinabrasivesuspensionjetcuttingofcarbonfiberreinforcedplastics
AT guochuwen studyonprocessingdefectsandparameteroptimizationinabrasivesuspensionjetcuttingofcarbonfiberreinforcedplastics
AT wangfengchao studyonprocessingdefectsandparameteroptimizationinabrasivesuspensionjetcuttingofcarbonfiberreinforcedplastics