Chinese Journal of Computational Physics ›› 2023, Vol. 40 ›› Issue (2): 189-198.DOI: 10.19596/j.cnki.1001-246x.8619
Special Issue: 贺贤土院士从事科学研究工作60周年暨激光聚变相关研究进展专刊
• The 60th Anniversary of Academician He Xiantu's Scientific Research Work: A Special Issue of Research Progress in Laser Fusion • Previous Articles Next Articles
Zhiyuan LI(), Jiwei LI*(
), Lifeng WANG, Zhensheng DAI, Jianfa GU, Minqing HE, junfeng WU, Wenhua YE, Xiantu HE
Received:
2022-08-16
Online:
2023-03-25
Published:
2023-07-05
Contact:
Jiwei LI
Zhiyuan LI, Jiwei LI, Lifeng WANG, Zhensheng DAI, Jianfa GU, Minqing HE, junfeng WU, Wenhua YE, Xiantu HE. Impacts of Direct Drive Laser Focal Spot Size on Ignition Performance of Hybrid Drive Inertial Confinement Fusion[J]. Chinese Journal of Computational Physics, 2023, 40(2): 189-198.
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URL: http://www.cjcp.org.cn/EN/10.19596/j.cnki.1001-246x.8619
timp/ns | Vimp/(km · s-1) | Adiabat | Bangtime/ns | Stagnation time/ns | at the stagnation time | Neutron yield | Yield/MJ | ||
Phs/Gbar | Tihs/keV | ρRfuel/(g · cm-2) | |||||||
7.72 | 445 | 3.7 | 7.98 | 7.95 | 1 069 | 8.7 | 1.04 | 7.08 × 1018 | 20 |
Table 1 One dimensional implosion parameters
timp/ns | Vimp/(km · s-1) | Adiabat | Bangtime/ns | Stagnation time/ns | at the stagnation time | Neutron yield | Yield/MJ | ||
Phs/Gbar | Tihs/keV | ρRfuel/(g · cm-2) | |||||||
7.72 | 445 | 3.7 | 7.98 | 7.95 | 1 069 | 8.7 | 1.04 | 7.08 × 1018 | 20 |
焦斑尺寸/μm | timp/ns | Vimp/(km·s-1) | Adiabat | Bangtime/ns | Stagnation time/ns | at the stagnation time | Neutron yield | Yield/MJ | ||
Phs/Gbar | Tihs/keV | ρRfuel/(g·cm-2) | ||||||||
1 200 | 7.68 | 423 | 5.37 | 7.98 | 7.97 | 312 | 4.57 | 0.9 | 6.80 × 1016 | 0.192 |
1 400 | 7.7 | 430 | 4.05 | 8.03 | 7.97 | 516 | 5.94 | 0.96 | 2.89 × 1018 | 8.14 |
1 500 | 7.75 | 439 | 3.74 | 8.02 | 7.99 | 934 | 7.34 | 1.14 | 7.00 × 1018 | 19.90 |
1D | 7.72 | 445 | 3.7 | 7.98 | 7.95 | 1 069 | 8.7 | 1.04 | 7.08 × 1018 | 20.00 |
Table 2 Two-dimensional implosion parameters
焦斑尺寸/μm | timp/ns | Vimp/(km·s-1) | Adiabat | Bangtime/ns | Stagnation time/ns | at the stagnation time | Neutron yield | Yield/MJ | ||
Phs/Gbar | Tihs/keV | ρRfuel/(g·cm-2) | ||||||||
1 200 | 7.68 | 423 | 5.37 | 7.98 | 7.97 | 312 | 4.57 | 0.9 | 6.80 × 1016 | 0.192 |
1 400 | 7.7 | 430 | 4.05 | 8.03 | 7.97 | 516 | 5.94 | 0.96 | 2.89 × 1018 | 8.14 |
1 500 | 7.75 | 439 | 3.74 | 8.02 | 7.99 | 934 | 7.34 | 1.14 | 7.00 × 1018 | 19.90 |
1D | 7.72 | 445 | 3.7 | 7.98 | 7.95 | 1 069 | 8.7 | 1.04 | 7.08 × 1018 | 20.00 |
Fig.8 The relationship between the ion temperature and the hotspot areal density and the relationship between the hotspot mass and the hotspot areal density under the different focal spot radius
timp/ns | Vimp/(km · s-1) | Adiabat | Bangtime/ns | Stagnation time/ns | at the stagnation time | Neutron yield | Yield/MJ | ||
Phs/Gbar | Tihs/keV | ρRfuel/(g · cm-2) | |||||||
7.88 | 420 | 3.35 | 8.17 | 8.12 | 609 | 5.9 | 1.18 | 4.9 × 1018 | 13.8 |
Table 3 Implosion parameters of the optimized design
timp/ns | Vimp/(km · s-1) | Adiabat | Bangtime/ns | Stagnation time/ns | at the stagnation time | Neutron yield | Yield/MJ | ||
Phs/Gbar | Tihs/keV | ρRfuel/(g · cm-2) | |||||||
7.88 | 420 | 3.35 | 8.17 | 8.12 | 609 | 5.9 | 1.18 | 4.9 × 1018 | 13.8 |
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