杜飞;王新云;邓磊;夏巨谌;金俊松
出版日期:2021-03-10
发布日期:2021-03-17
基金资助:DU Fei;WANG Xinyun;DENG Lei;XIA Juchen;JIN Junsong
Online:2021-03-10
Published:2021-03-17
摘要: 与传统的熔焊工艺不同,高速冲击连接可以有效地减小热影响区和连续金属间化合物的形成,从而保证结合区域的机械性能,并且几乎能够实现任意金属材料间的连接,具有广阔的发展和应用前景。高速冲击连接可以分为驱动飞板高速移动和冲击连接两个过程,主要包括爆炸连接、电磁脉冲连接、激光冲击连接和汽爆连接四种工艺。简要介绍了四种冲击连接过程的基本原理、特点及应用范围,综述了冲击连接过程中的冶金行为、界面现象、力学性能、焊接工艺窗口和数值模拟等方面的最新进展,分析了目前研究中存在的一些问题,为进一步的研究提供了依据和参考。
中图分类号:
杜飞;王新云;邓磊;夏巨谌;金俊松. 高速冲击连接技术的研究进展[J]. 中国机械工程, DOI: 10.3969/j.issn.1004-132X.2021.05.013.
DU Fei;WANG Xinyun;DENG Lei;XIA Juchen;JIN Junsong. Research Progresses of HVIW Technology[J]. China Mechanical Engineering, DOI: 10.3969/j.issn.1004-132X.2021.05.013.
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