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电弧与超声能量对熔化极气体保护电弧超声焊接的综合作用

Comprehensive Effect of Arc and Ultrasonic Energy on MIG Arc Ultrasonic Welding.

作者信息

Chen Qihao, Wang Chengcheng, Wang Yihao, Wang Jiahui, Lin Sanbao, Wang Jiayou

机构信息

Provincial Key Laboratory of Advanced Welding Technology, Jiangsu University of Science and Technology, Zhenjiang 212003, China.

State Key Laboratory of Advanced Welding and Joining, Harbin Institute of Technology, Harbin 150001, China.

出版信息

Materials (Basel). 2021 Aug 27;14(17):4884. doi: 10.3390/ma14174884.

Abstract

Ultrasonic energy is introduced into the Metal Inert Gas (MIG) welding arc and weld pool by superposition of an ultrasonic frequency current. In this study, the arc shape, arc energy, and ultrasonic energy that responded to ultrasonic excitation voltage and frequency is investigated. The comprehensive influence of arc and ultrasonic energy on weld formation, microstructure, and mechanical properties is further studied. The arc and ultrasonic energy are analyzed by using a high-speed camera and microphone, respectively. The results showed that the arc width increased, and the arc energy density decreased after the superposition of ultrasonic current. The arc height could be compressed under certain ultrasonic excitation parameters. The ultrasonic excitation voltage and frequency had a direct influence on the ultrasonic energy. The arc height, arc energy density, and ultrasonic energy together determined the weld width. Ultrasound could effectively refine the microstructure of the weld zone and fusion zone but had little effect on the heat-affected zone. Ultrasound improved the hardness of the joint by refining the grain and the second phase. The joint hardness was the highest when the ultrasonic excitation voltage was 100 V, and the frequency was 30 kHz.

摘要

通过叠加超声频率电流,将超声能量引入熔化极气体保护电弧焊(MIG)的电弧和熔池中。在本研究中,研究了响应超声激励电压和频率的电弧形状、电弧能量和超声能量。进一步研究了电弧和超声能量对焊缝成形、微观结构和力学性能的综合影响。分别使用高速摄像机和麦克风对电弧和超声能量进行分析。结果表明,叠加超声电流后,电弧宽度增加,电弧能量密度降低。在一定的超声激励参数下,电弧高度可以被压缩。超声激励电压和频率对超声能量有直接影响。电弧高度、电弧能量密度和超声能量共同决定了焊缝宽度。超声可以有效地细化焊缝区和熔合区的微观结构,但对热影响区影响较小。超声通过细化晶粒和第二相提高了接头的硬度。当超声激励电压为100V、频率为30kHz时,接头硬度最高。

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