Comparison of the Influence of Temperature Change Distribution of Three Surface Regions on the Hardness of Two Dissimilar Aluminum Alloys Welded by Friction Stir Welding

被引:2
作者
Karash, Emad Toma [1 ]
Sultan, Jamal Nayief [2 ]
Najem, Majid Khaleel [3 ]
Hamid, Amenah Faris [2 ]
机构
[1] Northern Tech Univ, Mech Technol Dept, Tech Inst, Mosul 41000, Iraq
[2] Northern Tech Univ, Power Mech Techn Eng Dept, Tech Engn Coll, Mosul 41000, Iraq
[3] Northern Tech Univ, Tech Engn Coll, Mosul 41000, Iraq
关键词
rotational velocity; travel velocity; aluminum alloys; friction stir welding; hardness; PARAMETERS; HISTORY;
D O I
10.18280/ijht.400419
中图分类号
O414.1 [热力学];
学科分类号
摘要
Aluminum is one of the most commonly used alloys in industrial applications due to its significant qualities such as resistance to wear, high hardness resistance, and high conductivity. This study will concentrate on the hardness resistance of two dissimilar aluminum alloys at different rotational and travel velocities, where the behavior of the alloys' hardness resistance will be studied after the welding process, from the welding center to the alloys' edges, and this will be done in three areas. Due to temperature changes at the weld in these three separate regions, the first area was at the start of the welding process, the second in the midst of the model, and the third area was at the conclusion of the welding process, to examine the influence of temperature on the hardness resistance. The results showed that increasing the travel velocity of the feed cart and keeping the rotational velocity constant increased the hardness resistance, whereas increasing the rotary tool velocity and keeping the travel velocity of the feeding cart constant decreased the hardness resistance of the two welded alloys. The maximum hardness resistance recorded in the model's welding center (3-3) and its value were more than (49.47 percent) the lowest hardness resistance recorded for all models, which was for the model (7-1).
引用
收藏
页码:1013 / 1023
页数:11
相关论文
共 34 条
[11]   Thermo-mechanical modelling of the Friction Stir Spot Welding process: Effect of the friction models on the heat generation mechanisms [J].
Hannachi, Nasra ;
Khalfallah, Ali ;
Leitao, Carlos ;
Rodrigues, Dulce .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART L-JOURNAL OF MATERIALS-DESIGN AND APPLICATIONS, 2022, 236 (08) :1464-1475
[12]  
Karash E.T., 2015, AM J MECH APPL, V3, P33, DOI [10.11648/j.ajma.20150305.11, DOI 10.11648/J.AJMA.20150305.11]
[13]  
Karash E.T.B., 2018, ANN DUNAREA JOS U FA, V29, P27, DOI [10.35219/awet.2018.04, DOI 10.35219/AWET.2018.04]
[14]   Control of hardness distribution in friction stir welded AA2024-T3 aluminum alloy [J].
Khodir, Saad Ahmed ;
Shibayanagi, Toshiya ;
Naka, Masaaki .
MATERIALS TRANSACTIONS, 2006, 47 (06) :1560-1567
[15]  
Mall P.P., 2017, MAT SCI ENG, V6, P15, DOI [10.17577/IJERTV6IS060029, DOI 10.17577/IJERTV6IS060029]
[16]   Influence of Tool Geometry and Process Parameters on Torque, Temperature, and Quality of Friction Stir Welds in Dissimilar Al Alloys [J].
Manuel, Neves ;
Beltrao, Daniel ;
Galvao, Ivan ;
Leal, Rui M. ;
Costa, Jose D. ;
Loureiro, Altino .
MATERIALS, 2021, 14 (20)
[17]  
Matweb, MAT PRPER DAT ADV MA
[18]   Thermo-Mechanical Simulation of Underwater Friction Stir Welding of Low Carbon Steel [J].
Memon, Shabbir ;
Tomkow, Jacek ;
Derazkola, Hesamoddin Aghajani .
MATERIALS, 2021, 14 (17)
[19]   Recent advances in friction-stir welding - Process, weldment structure and properties [J].
Nandan, R. ;
DebRoy, T. ;
Bhadeshia, H. K. D. H. .
PROGRESS IN MATERIALS SCIENCE, 2008, 53 (06) :980-1023
[20]  
Naumov A., 2019, KEY ENG MAT, V822, P122