Influence of the electron thermal conduction and ion kinetic effects on the structure of collisional plasma shocks

Author:

Zhang E. H.1ORCID,Cai H. B.23ORCID,Zhang W. S.2ORCID,Liu Q. K.1ORCID,Luo H.1ORCID,Zhu G. H.1ORCID,Luo M. X.4,Zhu S. P.12ORCID

Affiliation:

1. Graduate School, China Academy of Engineering Physics, Beijing 100088, China

2. Institute of Applied Physics and Computational Mathematics, Beijing 100094, China

3. HEDPS, Center for Applied Physics and Technology, Peking University, Beijing 100871, China

4. Beijing Computational Science Research Center, Beijing 100193, China

Abstract

The evolution of collisional planar plasma shocks is investigated by using a hybrid fluid-particle-in-cell code, which enables the analysis of the impact of ion kinetic effects. The structure and propagation of shocks in multi-component plasmas with moderate density ([Formula: see text]) are found to be strongly dependent on the electron thermal conduction and ion kinetic effects. In high electron heat flux cases, the electron thermal conduction creates a preheat layer ahead of the shock front, allowing the energetic ions to stream through the upstream plasma. It is found that the shock velocity drops by about 4.67% and the heatwave velocity increases about 47% when the electron flux limiter increases from [Formula: see text] to 0.15. Furthermore, the inhibiting effect of high electron heat flux on the species separation induced by the shock in multi-component plasmas is observed. These results provide a new dataset valuable for benchmarking and improving radiation hydrodynamic models.

Funder

National Natural Science Foundation of China

National Safety Academic Fund

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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