Cui Shuwan, Yu Yunhe, Ma Rong, Tian Fuyuan, Pang Shuwen
School of Mechanical and Automotive Engineering, Guangxi University of Science and Technology, Liuzhou 545006, China.
Dongfeng Liuzhou Automobile Co., Ltd., Liuzhou 545005, China.
Materials (Basel). 2023 Jul 7;16(13):4886. doi: 10.3390/ma16134886.
In this paper, a metal inert gas (MIG) shielded welding method was used for high-quality welding of 6063-T6 aluminum alloy sheet with a thickness of 2.5 mm. The welding process of MIG welding was accurately simulated and the welding temperature field and thermal cycle curve were calculated using a combination of Gaussian body heat source and double ellipsoidal heat source. As the welding current increased from 75 A to 90 A, the reinforcing phase precipitated under the microstructure of the joint gradually became larger and re-solidified into the body, resulting in a reduction in mechanical properties. When the welding current is 85 A, the pitting resistance of weld forming and weld area reaches its optimum. At this time, the tensile strength of the joint is up to 110.9 MPa, the elongation is up to 16.3% and the Vickers Microhardness is up to 46.9 HV.
本文采用熔化极气体保护焊(MIG)方法对厚度为2.5mm的6063-T6铝合金板材进行高质量焊接。利用高斯体热源和双椭球体热源相结合的方式,精确模拟了MIG焊的焊接过程,并计算了焊接温度场和热循环曲线。随着焊接电流从75A增加到90A,接头微观组织下析出的强化相逐渐变大并重新凝固到基体中,导致力学性能下降。当焊接电流为85A时,焊缝成型和焊缝区域的耐点蚀性能达到最佳。此时,接头的抗拉强度高达110.9MPa,伸长率高达16.3%,维氏显微硬度高达46.9HV。