Determination of laser entrance hole size for ignition-scale octahedral spherical hohlraums

Author:

Chen Yao-Hua1,Li Zhichao2,Cao Hui1ORCID,Pan Kaiqiang2,Li Sanwei2,Xie Xufei2ORCID,Deng Bo2,Wang Qiangqiang2ORCID,Cao Zhurong2,Hou Lifei2,Che Xingsen2,Yang Pin2,Li Yingjie2,He Xiaoan2,Xu Tao2,Liu Yonggang2,Li Yulong2,Liu Xiangming2,Zhang Haijun2,Zhang Wei2,Jiang Baibin2,Xie Jun2,Zhou Wei2,Huang Xiaoxia2,Huo Wen Yi1ORCID,Ren Guoli1ORCID,Li Kai1,Hang Xudeng1,Li Shu1,Zhai Chuanlei1,Liu Jie34ORCID,Zou Shiyang1,Ding Yongkun14,Lan Ke14ORCID

Affiliation:

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

2. Research Center of Laser Fusion, China Academy of Engineering Physics, Mianyang 621900, China

3. Graduate School, China Academy of Engineering Physics, Beijing, China

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

Abstract

A recently proposed octahedral spherical hohlraum with six laser entrance holes (LEHs) is an attractive concept for an upgraded laser facility aiming at a predictable and reproducible fusion gain with a simple target design. However, with the laser energies available at present, LEH size can be a critical issue. Owing to the uncertainties in simulation results, the LEH size should be determined on the basis of experimental evidence. However, determination of LEH size of an ignition target at a small-scale laser facility poses difficulties. In this paper, we propose to use the prepulse of an ignition pulse to determine the LEH size for ignition-scale hohlraums via LEH closure behavior, and we present convincing evidence from multiple diagnostics at the SGIII facility with ignition-scale hohlraum, laser prepulse, and laser beam size. The LEH closure observed in our experiment is in agreement with data from the National Ignition Facility. The total LEH area of the octahedral hohlraum is found to be very close to that of a cylindrical hohlraum, thus successfully demonstrating the feasibility of the octahedral hohlraum in terms of laser energy, which is crucially important for sizing an ignition-scale octahedrally configured laser system. This work provides a novel way to determine the LEH size of an ignition target at a small-scale laser facility, and it can be applied to other hohlraum configurations for the indirect drive approach.

Funder

National Natural Science Foundation of China

Publisher

AIP Publishing

Subject

Electrical and Electronic Engineering,Nuclear Energy and Engineering,Nuclear and High Energy Physics,Atomic and Molecular Physics, and Optics

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