Influence of Coulomb scattering on the proton radiography of electric and magnetic fields in plasmas

Author:

Deng Luan12ORCID,Du Bao3ORCID,Cai Hongbo345ORCID,Zheng Jian16ORCID,Zhu Shaoping23ORCID

Affiliation:

1. School of Nuclear Science and Technology, University of Science and Technology of China 1 , Hefei 230026, China

2. Graduate School, China Academy of Engineering Physics 2 , Beijing 100088, China

3. Institute of Applied Physics and Computational Mathematics 3 , Beijing 100094, China

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

5. School of Physics, Zhejiang University 5 , Hangzhou 310027, China

6. IFSA Collaborative Innovation Center, Shanghai Jiao Tong University 6 , Shanghai 200240, China

Abstract

Proton radiography is a widely used experimental method to diagnose the electric and magnetic (EM) fields in high-energy-density plasmas. In proton radiography, the probe protons are typically assumed to be deflected only by the EM fields, whereas the Coulomb scattering caused by the charged particles in the target plasmas is generally ignored. However, at high plasma densities, the presence of Coulomb scattering could reduce the proton flux perturbations recorded on the detector and influence the inversion of the EM fields from experiments. In this paper, a theoretical model is developed for the first time to describe the proton flux distribution on the detector when the EM field deflections and Coulomb scattering coexist in deflecting the probe proton trajectories. Our theory indicates that the Coulomb scattering could decrease the signal contrast of the probed EM fields, which is determined not only by the strengths of the EM field deflections and Coulomb scattering but also by the spatial gradient of the EM fields. Monte Carlo simulations are also conducted to validate our theoretical model. It would be helpful to interpret the proton radiography experiments quantitatively.

Funder

Foundation of Science and Technology on Plasma Physics laboratory

National Natural Science Foundation of China

Young Scientists Fund of the National Natural Science Foundation of China

Publisher

AIP Publishing

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