Determination of Optimum Welding Parameters for FSW AA2024-T351

Friction stir welding is a relatively new joining process, which involves the joining of metals without fusion or filler materials. In this study, the effect of welding parameters on the mechanical properties of aluminum alloys AA2024-T351 joints produced by FSW was investigated. Different ranges of...

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Main Authors: Samir Ali Amin Al-Rubaie, Qasim Abbas Atiah, Zuhair Altaher
Format: Article
Language:English
Published: Al-Khwarizmi College of Engineering – University of Baghdad 2015-03-01
Series:Al-Khawarizmi Engineering Journal
Online Access:http://www.iasj.net/iasj?func=fulltext&aId=99181
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spelling doaj-e97dda3d5d514eefb31da4909347c1932020-11-24T21:32:47Zeng Al-Khwarizmi College of Engineering – University of BaghdadAl-Khawarizmi Engineering Journal1818-11712015-03-011115164Determination of Optimum Welding Parameters for FSW AA2024-T351 Samir Ali Amin Al-RubaieQasim Abbas Atiah Zuhair AltaherFriction stir welding is a relatively new joining process, which involves the joining of metals without fusion or filler materials. In this study, the effect of welding parameters on the mechanical properties of aluminum alloys AA2024-T351 joints produced by FSW was investigated. Different ranges of welding parameters, as input factors, such as welding speed (6 - 34 mm/min) and rotational speed (725 - 1235 rpm) were used to obtain their influences on the main responses, in terms of elongation, tensile strength, and maximum bending force. Experimental measurements of main responses were taken and analyzed using DESIGN EXPERT 8 experimental design software which was used to develop the response surface methodology (RSM) models. Mathematical model of responses, as functions of used welding conditions, were obtained and analyzed by ANOVA variance to verify the adequacy of these models. The resultant quadratic models showed that as the rotation speed or welding speed increases, the tensile strength and elongation of the joint firstly increase to a maximum value and then decrease more likely due to the occurrence of void defect. Increasing both welding speed and rotational speed leads to increase the maximum bending force firstly to a maximum value and then decreases. However, the welding speed was found more significant than rotational speed. A good agreement was found between the results of these models and optimization with the experimental ones with confidence level of 95%.http://www.iasj.net/iasj?func=fulltext&aId=99181
collection DOAJ
language English
format Article
sources DOAJ
author Samir Ali Amin Al-Rubaie
Qasim Abbas Atiah
Zuhair Altaher
spellingShingle Samir Ali Amin Al-Rubaie
Qasim Abbas Atiah
Zuhair Altaher
Determination of Optimum Welding Parameters for FSW AA2024-T351
Al-Khawarizmi Engineering Journal
author_facet Samir Ali Amin Al-Rubaie
Qasim Abbas Atiah
Zuhair Altaher
author_sort Samir Ali Amin Al-Rubaie
title Determination of Optimum Welding Parameters for FSW AA2024-T351
title_short Determination of Optimum Welding Parameters for FSW AA2024-T351
title_full Determination of Optimum Welding Parameters for FSW AA2024-T351
title_fullStr Determination of Optimum Welding Parameters for FSW AA2024-T351
title_full_unstemmed Determination of Optimum Welding Parameters for FSW AA2024-T351
title_sort determination of optimum welding parameters for fsw aa2024-t351
publisher Al-Khwarizmi College of Engineering – University of Baghdad
series Al-Khawarizmi Engineering Journal
issn 1818-1171
publishDate 2015-03-01
description Friction stir welding is a relatively new joining process, which involves the joining of metals without fusion or filler materials. In this study, the effect of welding parameters on the mechanical properties of aluminum alloys AA2024-T351 joints produced by FSW was investigated. Different ranges of welding parameters, as input factors, such as welding speed (6 - 34 mm/min) and rotational speed (725 - 1235 rpm) were used to obtain their influences on the main responses, in terms of elongation, tensile strength, and maximum bending force. Experimental measurements of main responses were taken and analyzed using DESIGN EXPERT 8 experimental design software which was used to develop the response surface methodology (RSM) models. Mathematical model of responses, as functions of used welding conditions, were obtained and analyzed by ANOVA variance to verify the adequacy of these models. The resultant quadratic models showed that as the rotation speed or welding speed increases, the tensile strength and elongation of the joint firstly increase to a maximum value and then decrease more likely due to the occurrence of void defect. Increasing both welding speed and rotational speed leads to increase the maximum bending force firstly to a maximum value and then decreases. However, the welding speed was found more significant than rotational speed. A good agreement was found between the results of these models and optimization with the experimental ones with confidence level of 95%.
url http://www.iasj.net/iasj?func=fulltext&aId=99181
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