Dynamics of stress waves in graded density impactors during the internal ballistic process

Author:

Zhou Yiheng1,Tan Ye2ORCID,Zhang Ruizhi12ORCID,Li Zhiguo2,Chen Han2,Bai Jingsong2,Li Lei2,Shen Qiang1,Luo Guoqiang13ORCID

Affiliation:

1. State Key Lab of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology 1 , Wuhan 430070, China

2. National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics, China Academy of Engineering Physics 2 , Mianyang 621900, China

3. Chaozhou Branch of Chemistry and Chemical Engineering Guangdong Laboratory 3 , Chaozhou 521000, China

Abstract

Quasi-isentropic loading and unloading, employing graded density impactors (GDIs) as flyers in gas gun-driven plate impact experiments, can provide novel and valuable insights into the equation of state and strength properties of the loaded material. However, the internal ballistic process may lead to spalling or debonding of the GDI due to the intricate interactions between stress waves and interfaces. In this study, the wave propagation in the GDI was analyzed using the multimaterial Lagrangian elastic-plastic model and elastic wave propagation theory. The impact of gradient direction, power-law constant p, and thickness of the first and last layers on the tensile stress was investigated. The outcomes reveal that the mechanism of generating tensile stress varies for two gradient directions. Moreover, adjusting the constant p and the layer thickness may decrease the maximum tensile stress by 74.1% (forward graded) and 95.8% (reverse graded), respectively. The outcomes of this research provide a theoretical and simulation basis for designing and fabricating GDIs to be utilized in quasi-isentropic experiments.

Funder

Ministry of Science and Technology of the People's Republic of China

Guangdong Science and Technology Department

National Key Laboratory of Shockwave and Detonation Physics

Sichuan Provincial Postdoctoral Science Foundation

Sichuan Province Science and Technology Support Program

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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