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First Octahedral Spherical Hohlraum Energetics Experiment at the SGIII Laser Facility

Authors :
Ke Lan
Wen Yi Huo
Huabing Du
Xiaohua Jiang
Kuixing Zheng
Yaohua Chen
Xiaoshi Peng
Sanwei Li
Jiamin Yang
Deng Bo
He Zhibing
Zhichao Li
Dong Yang
Qianqian Gu
Wang Qiangqiang
Wei Zhang
Jie Liu
Guanghui Yuan
Kai Du
Shenye Liu
Wei Zhou
Feng Wang
Yuancheng Wang
Yonggang Liu
Guoli Ren
Hui Cao
Baibin Jiang
Zhebin Wang
Yongsheng Li
Chaoguang Li
Haijun Zhang
Yongkun Ding
Tao Xu
Shaoen Jiang
Xufei Xie
Shu Li
Xuewei Deng
Lifei Hou
Wang Liquan
Qihua Zhu
Xiaoxia Huang
Keli Deng
Liang Guo
Dongxia Hu
Xiayu Zhan
Source :
Physical Review Letters. 120
Publication Year :
2018
Publisher :
American Physical Society (APS), 2018.

Abstract

The first octahedral spherical hohlraum energetics experiment is accomplished at the SGIII laser facility. For the first time, the 32 laser beams are injected into the octahedral spherical hohlraum through six laser entrance holes. Two techniques are used to diagnose the radiation field of the octahedral spherical hohlraum in order to obtain comprehensive experimental data. The radiation flux streaming out of laser entrance holes is measured by six flat-response x-ray detectors (FXRDs) and four M-band x-ray detectors, which are placed at different locations of the SGIII target chamber. The radiation temperature is derived from the measured flux of FXRD by using the blackbody assumption. The peak radiation temperature inside hohlraum is determined by the shock wave technique. The experimental results show that the octahedral spherical hohlraum radiation temperature is in the range of 170-182 eV with drive laser energies of 71 kJ to 84 kJ. The radiation temperature inside the hohlraum determined by the shock wave technique is about 175 eV at 71 kJ. For the flat-top laser pulse of 3 ns, the conversion efficiency of gas-filled octahedral spherical hohlraum from laser into soft x rays is about 80% according to the two-dimensional numerical simulation.

Details

ISSN :
10797114 and 00319007
Volume :
120
Database :
OpenAIRE
Journal :
Physical Review Letters
Accession number :
edsair.doi.dedup.....110b86aa40d14db5dc5ad7b0163c5861