Ejecta from double-shock loaded tin target by hohlraum radiation and plasma jet

Author:

Song Yaoxiang12ORCID,Chu Genbai1ORCID,Yu Minghai1,Wu Yuchi1ORCID,Fan Wei1,Xi Tao1ORCID,Shui Min1ORCID,Tian Chao1,Shan Lianqiang1ORCID,Zhang Feng1ORCID,Zhou Weimin1ORCID,Gu Yuqiu134ORCID

Affiliation:

1. Science and Technology on Plasma Physics Laboratory, Laser Fusion Research Center, China Academy of Engineering Physics 1 , Mianyang 621900, China

2. Graduate School of China Academy of Engineering Physics 2 , Beijing 100193, China

3. Center for Advanced Material Diagnostic Technology, Shenzhen Technology University 3 , Shenzhen 518118, China

4. HEDPs, Center for Applied Physics and Technology, Peking University 4 , Beijing 100871, China

Abstract

The phenomenon of mass ejection from shocked surface is a crucial issue in high-energy density physics and shock compression science. Ejecta from double-shock loaded metallic targets is important in some practical applications, but there are only a few research types on this aspect due to experimental difficulty. We proposed a new method of double-shock loading based on intense laser, that is, the laser is injected into a vacuum hohlraum to generate strong radiation and plasma jet simultaneously, and the target are respectively subjected to two shocks by these two different mechanisms. In the experiment, double-shock process was clearly observed by photonic Doppler velocimetry system, and the recompression of target due to the second shock was presented by x-ray photography. After the free surface was broken, the ejecta showed a unique multi-layer density structure for the first time. This work achieves effective double-shock loading with only one single laser pulse, which is valuable for understanding the metal damage under multiple shocks and the evolution of ejected materials. It also provides an experimental design for studying the material response in complex environments.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Science Challenge Project

Publisher

AIP Publishing

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