P2 asymmetry of Au's M-band flux and its smoothing effect due to high-Z ablator dopants
X-ray drive asymmetry is one of the main seeds of low-mode implosion asymmetry that blocks further improvement of the nuclear performance of “high-foot” experiments on the National Ignition Facility [Miller et al., Nucl. Fusion 44, S228 (2004)]. More particularly, the P2 asymmetry of Au's M-ban...
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doaj-6ef97d76a50c4e7f8a95268483a867cc2020-11-25T01:30:24ZengAIP Publishing LLCMatter and Radiation at Extremes2468-080X2017-03-0122697610.1016/j.mre.2016.12.001003702MREP2 asymmetry of Au's M-band flux and its smoothing effect due to high-Z ablator dopantsYongsheng Li0Chuanlei Zhai1Guoli Ren2Jianfa Gu3Wenyi Huo4Xujun Meng5Wenhua Ye6Ke Lan7Weiyan Zhang8Institute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaChina Academy of Engineering Physics, Mianyang 621900, ChinaX-ray drive asymmetry is one of the main seeds of low-mode implosion asymmetry that blocks further improvement of the nuclear performance of “high-foot” experiments on the National Ignition Facility [Miller et al., Nucl. Fusion 44, S228 (2004)]. More particularly, the P2 asymmetry of Au's M-band flux can also severely influence the implosion performance of ignition capsules [Li et al., Phys. Plasmas 23, 072705 (2016)]. Here we study the smoothing effect of mid- and/or high-Z dopants in ablator on Au's M-band flux asymmetries, by modeling and comparing the implosion processes of a Ge-doped ignition capsule and a Si-doped one driven by X-ray sources with P2 M-band flux asymmetry. As the results, (1) mid- or high-Z dopants absorb hard X-rays (M-band flux) and re-emit isotropically, which helps to smooth the asymmetric M-band flux arriving at the ablation front, therefore reducing the P2 asymmetries of the imploding shell and hot spot; (2) the smoothing effect of Ge-dopant is more remarkable than Si-dopant because its opacity in Au's M-band is higher than the latter's; and (3) placing the doped layer at a larger radius in ablator is more efficient. Applying this effect may not be a main measure to reduce the low-mode implosion asymmetry, but might be of significance in some critical situations such as inertial confinement fusion (ICF) experiments very near the performance cliffs of asymmetric X-ray drives.http://dx.doi.org/10.1016/j.mre.2016.12.001 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yongsheng Li Chuanlei Zhai Guoli Ren Jianfa Gu Wenyi Huo Xujun Meng Wenhua Ye Ke Lan Weiyan Zhang |
spellingShingle |
Yongsheng Li Chuanlei Zhai Guoli Ren Jianfa Gu Wenyi Huo Xujun Meng Wenhua Ye Ke Lan Weiyan Zhang P2 asymmetry of Au's M-band flux and its smoothing effect due to high-Z ablator dopants Matter and Radiation at Extremes |
author_facet |
Yongsheng Li Chuanlei Zhai Guoli Ren Jianfa Gu Wenyi Huo Xujun Meng Wenhua Ye Ke Lan Weiyan Zhang |
author_sort |
Yongsheng Li |
title |
P2 asymmetry of Au's M-band flux and its smoothing effect due to high-Z ablator dopants |
title_short |
P2 asymmetry of Au's M-band flux and its smoothing effect due to high-Z ablator dopants |
title_full |
P2 asymmetry of Au's M-band flux and its smoothing effect due to high-Z ablator dopants |
title_fullStr |
P2 asymmetry of Au's M-band flux and its smoothing effect due to high-Z ablator dopants |
title_full_unstemmed |
P2 asymmetry of Au's M-band flux and its smoothing effect due to high-Z ablator dopants |
title_sort |
p2 asymmetry of au's m-band flux and its smoothing effect due to high-z ablator dopants |
publisher |
AIP Publishing LLC |
series |
Matter and Radiation at Extremes |
issn |
2468-080X |
publishDate |
2017-03-01 |
description |
X-ray drive asymmetry is one of the main seeds of low-mode implosion asymmetry that blocks further improvement of the nuclear performance of “high-foot” experiments on the National Ignition Facility [Miller et al., Nucl. Fusion 44, S228 (2004)]. More particularly, the P2 asymmetry of Au's M-band flux can also severely influence the implosion performance of ignition capsules [Li et al., Phys. Plasmas 23, 072705 (2016)]. Here we study the smoothing effect of mid- and/or high-Z dopants in ablator on Au's M-band flux asymmetries, by modeling and comparing the implosion processes of a Ge-doped ignition capsule and a Si-doped one driven by X-ray sources with P2 M-band flux asymmetry. As the results, (1) mid- or high-Z dopants absorb hard X-rays (M-band flux) and re-emit isotropically, which helps to smooth the asymmetric M-band flux arriving at the ablation front, therefore reducing the P2 asymmetries of the imploding shell and hot spot; (2) the smoothing effect of Ge-dopant is more remarkable than Si-dopant because its opacity in Au's M-band is higher than the latter's; and (3) placing the doped layer at a larger radius in ablator is more efficient. Applying this effect may not be a main measure to reduce the low-mode implosion asymmetry, but might be of significance in some critical situations such as inertial confinement fusion (ICF) experiments very near the performance cliffs of asymmetric X-ray drives. |
url |
http://dx.doi.org/10.1016/j.mre.2016.12.001 |
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