Research Status and Prospect of Laser Impact Welding

The demands for the connection between thin dissimilar and similar materials in the fields of microelectronics and medical devices has promoted the development of laser impact welding. It is a new solid-state metallurgical bonding technology developed in recent years. This paper reviews the research...

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Main Authors: Kangnian Wang, Huimin Wang, Hongyu Zhou, Wenyue Zheng, Aijun Xu
Format: Article
Language:English
Published: MDPI AG 2020-10-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/10/11/1444
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spelling doaj-d5fc84fd57124f649c22d19f9d1b069c2020-11-25T04:01:39ZengMDPI AGMetals2075-47012020-10-01101444144410.3390/met10111444Research Status and Prospect of Laser Impact WeldingKangnian Wang0Huimin Wang1Hongyu Zhou2Wenyue Zheng3Aijun Xu4National Center for Materials Service Safety, University of Science and Technology Beijing, Beijing 100083, ChinaNational Center for Materials Service Safety, University of Science and Technology Beijing, Beijing 100083, ChinaNational Center for Materials Service Safety, University of Science and Technology Beijing, Beijing 100083, ChinaNational Center for Materials Service Safety, University of Science and Technology Beijing, Beijing 100083, ChinaBeijing Satellite Manufacturing Co. LTD, China Academy of Space Technology, Beijing 100090, ChinaThe demands for the connection between thin dissimilar and similar materials in the fields of microelectronics and medical devices has promoted the development of laser impact welding. It is a new solid-state metallurgical bonding technology developed in recent years. This paper reviews the research progress of the laser impact welding in many aspects, including welding principle, welding process, weld interface microstructure and performance. The theoretical welding principle is the atomic force between materials. However, the metallurgical combination of two materials in the solid state by atomic force but almost no diffusion has not been confirmed by microstructure observation. The main theories used to explain the wave formation in impact welding were compared to conclude that caved mechanism and the Helmholz instability mechanism were accepted by researchers. The rebound of the flyer is still a critical problem for its application. With proper control of the welding parameters, the weld failure occurs on the base materials, indicating that the weld strength is higher than that of the base materials. Laser impact welding has been successfully applied in joining many dissimilar materials. There are issues still remained unresolved, such as surface damage of the flyer. The problems faced by laser impact welding were summaried, and its future applications were proposed. This review will provide a reference for the studies in laser impact welding, aiming process optimization and industrial application.https://www.mdpi.com/2075-4701/10/11/1444laser impact weldinginterfacial bonding mechanisminterface wavediffusion
collection DOAJ
language English
format Article
sources DOAJ
author Kangnian Wang
Huimin Wang
Hongyu Zhou
Wenyue Zheng
Aijun Xu
spellingShingle Kangnian Wang
Huimin Wang
Hongyu Zhou
Wenyue Zheng
Aijun Xu
Research Status and Prospect of Laser Impact Welding
Metals
laser impact welding
interfacial bonding mechanism
interface wave
diffusion
author_facet Kangnian Wang
Huimin Wang
Hongyu Zhou
Wenyue Zheng
Aijun Xu
author_sort Kangnian Wang
title Research Status and Prospect of Laser Impact Welding
title_short Research Status and Prospect of Laser Impact Welding
title_full Research Status and Prospect of Laser Impact Welding
title_fullStr Research Status and Prospect of Laser Impact Welding
title_full_unstemmed Research Status and Prospect of Laser Impact Welding
title_sort research status and prospect of laser impact welding
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2020-10-01
description The demands for the connection between thin dissimilar and similar materials in the fields of microelectronics and medical devices has promoted the development of laser impact welding. It is a new solid-state metallurgical bonding technology developed in recent years. This paper reviews the research progress of the laser impact welding in many aspects, including welding principle, welding process, weld interface microstructure and performance. The theoretical welding principle is the atomic force between materials. However, the metallurgical combination of two materials in the solid state by atomic force but almost no diffusion has not been confirmed by microstructure observation. The main theories used to explain the wave formation in impact welding were compared to conclude that caved mechanism and the Helmholz instability mechanism were accepted by researchers. The rebound of the flyer is still a critical problem for its application. With proper control of the welding parameters, the weld failure occurs on the base materials, indicating that the weld strength is higher than that of the base materials. Laser impact welding has been successfully applied in joining many dissimilar materials. There are issues still remained unresolved, such as surface damage of the flyer. The problems faced by laser impact welding were summaried, and its future applications were proposed. This review will provide a reference for the studies in laser impact welding, aiming process optimization and industrial application.
topic laser impact welding
interfacial bonding mechanism
interface wave
diffusion
url https://www.mdpi.com/2075-4701/10/11/1444
work_keys_str_mv AT kangnianwang researchstatusandprospectoflaserimpactwelding
AT huiminwang researchstatusandprospectoflaserimpactwelding
AT hongyuzhou researchstatusandprospectoflaserimpactwelding
AT wenyuezheng researchstatusandprospectoflaserimpactwelding
AT aijunxu researchstatusandprospectoflaserimpactwelding
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