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Multi-Response Optimization of Abrasive Waterjet Machining of Ti6Al4V Using Integrated Approach of Utilized Heat Transfer Search Algorithm and RSM

Machining of Titanium alloys (Ti6Al4V) becomes more vital due to its essential role in biomedical, aerospace, and many other industries owing to the enhanced engineering properties. In the current study, a Box–Behnken design of the response surface methodology (RSM) was used to investigate the perfo...

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Autores principales: Fuse, Kishan, Chaudhari, Rakesh, Vora, Jay, Patel, Vivek K., de Lacalle, Luis Norberto Lopez
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708002/
https://www.ncbi.nlm.nih.gov/pubmed/34947337
http://dx.doi.org/10.3390/ma14247746
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author Fuse, Kishan
Chaudhari, Rakesh
Vora, Jay
Patel, Vivek K.
de Lacalle, Luis Norberto Lopez
author_facet Fuse, Kishan
Chaudhari, Rakesh
Vora, Jay
Patel, Vivek K.
de Lacalle, Luis Norberto Lopez
author_sort Fuse, Kishan
collection PubMed
description Machining of Titanium alloys (Ti6Al4V) becomes more vital due to its essential role in biomedical, aerospace, and many other industries owing to the enhanced engineering properties. In the current study, a Box–Behnken design of the response surface methodology (RSM) was used to investigate the performance of the abrasive water jet machining (AWJM) of Ti6Al4V. For process parameter optimization, a systematic strategy combining RSM and a heat-transfer search (HTS) algorithm was investigated. The nozzle traverse speed (T(v)), abrasive mass flow rate (A(f)), and stand-off distance (S(d)) were selected as AWJM variables, whereas the material removal rate (MRR), surface roughness (SR), and kerf taper angle (θ) were considered as output responses. Statistical models were developed for the response, and Analysis of variance (ANOVA) was executed for determining the robustness of responses. The single objective optimization result yielded a maximum MRR of 0.2304 g/min (at T(v) of 250 mm/min, A(f) of 500 g/min, and S(d) of 1.5 mm), a minimum SR of 2.99 µm, and a minimum θ of 1.72 (both responses at T(v) of 150 mm/min, A(f) of 500 g/min, and S(d) of 1.5 mm). A multi-objective HTS algorithm was implemented, and Pareto optimal points were produced. 3D and 2D plots were plotted using Pareto optimal points, which highlighted the non-dominant feasible solutions. The effectiveness of the suggested model was proved in predicting and optimizing the AWJM variables. The surface morphology of the machined surfaces was investigated using the scanning electron microscope. The confirmation test was performed using optimized cutting parameters to validate the results.
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spelling pubmed-87080022021-12-25 Multi-Response Optimization of Abrasive Waterjet Machining of Ti6Al4V Using Integrated Approach of Utilized Heat Transfer Search Algorithm and RSM Fuse, Kishan Chaudhari, Rakesh Vora, Jay Patel, Vivek K. de Lacalle, Luis Norberto Lopez Materials (Basel) Article Machining of Titanium alloys (Ti6Al4V) becomes more vital due to its essential role in biomedical, aerospace, and many other industries owing to the enhanced engineering properties. In the current study, a Box–Behnken design of the response surface methodology (RSM) was used to investigate the performance of the abrasive water jet machining (AWJM) of Ti6Al4V. For process parameter optimization, a systematic strategy combining RSM and a heat-transfer search (HTS) algorithm was investigated. The nozzle traverse speed (T(v)), abrasive mass flow rate (A(f)), and stand-off distance (S(d)) were selected as AWJM variables, whereas the material removal rate (MRR), surface roughness (SR), and kerf taper angle (θ) were considered as output responses. Statistical models were developed for the response, and Analysis of variance (ANOVA) was executed for determining the robustness of responses. The single objective optimization result yielded a maximum MRR of 0.2304 g/min (at T(v) of 250 mm/min, A(f) of 500 g/min, and S(d) of 1.5 mm), a minimum SR of 2.99 µm, and a minimum θ of 1.72 (both responses at T(v) of 150 mm/min, A(f) of 500 g/min, and S(d) of 1.5 mm). A multi-objective HTS algorithm was implemented, and Pareto optimal points were produced. 3D and 2D plots were plotted using Pareto optimal points, which highlighted the non-dominant feasible solutions. The effectiveness of the suggested model was proved in predicting and optimizing the AWJM variables. The surface morphology of the machined surfaces was investigated using the scanning electron microscope. The confirmation test was performed using optimized cutting parameters to validate the results. MDPI 2021-12-15 /pmc/articles/PMC8708002/ /pubmed/34947337 http://dx.doi.org/10.3390/ma14247746 Text en © 2021 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
Fuse, Kishan
Chaudhari, Rakesh
Vora, Jay
Patel, Vivek K.
de Lacalle, Luis Norberto Lopez
Multi-Response Optimization of Abrasive Waterjet Machining of Ti6Al4V Using Integrated Approach of Utilized Heat Transfer Search Algorithm and RSM
title Multi-Response Optimization of Abrasive Waterjet Machining of Ti6Al4V Using Integrated Approach of Utilized Heat Transfer Search Algorithm and RSM
title_full Multi-Response Optimization of Abrasive Waterjet Machining of Ti6Al4V Using Integrated Approach of Utilized Heat Transfer Search Algorithm and RSM
title_fullStr Multi-Response Optimization of Abrasive Waterjet Machining of Ti6Al4V Using Integrated Approach of Utilized Heat Transfer Search Algorithm and RSM
title_full_unstemmed Multi-Response Optimization of Abrasive Waterjet Machining of Ti6Al4V Using Integrated Approach of Utilized Heat Transfer Search Algorithm and RSM
title_short Multi-Response Optimization of Abrasive Waterjet Machining of Ti6Al4V Using Integrated Approach of Utilized Heat Transfer Search Algorithm and RSM
title_sort multi-response optimization of abrasive waterjet machining of ti6al4v using integrated approach of utilized heat transfer search algorithm and rsm
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708002/
https://www.ncbi.nlm.nih.gov/pubmed/34947337
http://dx.doi.org/10.3390/ma14247746
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