Simulation of forming process of Z-pinch dynamic hohlraum based on the program MULTI2D-Z

被引:1
|
作者
Chen Zhong-Wang [1 ]
Ning Cheng [1 ]
机构
[1] Inst Appl Phys & Computat Math, Beijing 100088, Peoples R China
基金
中国国家自然科学基金;
关键词
Z-pinch; dynamic hohlraum; radiation magnetohydrodynamics; MULTI-2D code; HOT DENSE MATTER; COMPUTER CODE; RADIATION HYDRODYNAMICS; QEOS;
D O I
10.7498/aps.66.125202
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The radiation hydrodynamics code MULTI-2D, which was developed by Ramis et al. in 2009 (2009 Comput. Phys. Commun. 180 977) and adopted the single temperature fluid and unstructured lagrangian mesh, is modified into a radiation magnetohydrodynamics code MULTI2D-Z by adding the program module of evolution equation of magnetic field, and self-consistently considering the Lorentz force in the module of motion equation and the Ohmic heating in the module of energy equation. The newly developed module for magnetic field was validated to be reliable. The module is used to study the magnetic field diffusion process, and it is found that the diffusion is weakened due to the increasing of plasma temperature and density and the fluid convection, in which there is minus grads of velocity in radial direction. The new code MULTI2D-Z is used to simulate the formation process of dynamic hohlraum driven by tungsten wire-array Z-pinch at an 8 MA current level. The obtained results are that X-ray power and energy are, respectively, similar to 30 TW and similar to 300 kJ, radiation temperature in foam is similar to 120 eV, and the implosion trajectory of wire-array is also obtained. The calculated results reveal that the magnetic field is mainly distributed in the outside of tungsten plasma during the hohlraum formation. The foam expands due to the radiation heating from the shock wave created by the collision between wire-array plasma and the foam. The thermal radiation wave, which is characterized by radiation temperature, spreads towards the central axis faster than the plasma temperature. When the thermal radiation wave spreads to the central axis, the radiation temperature becomes comparatively uniform in space, and is almost equal to the plasma temperature except at the place of the shock wave. These results help the people to better understand the magnetic field diffusion and convection in Z-pinch, as well as the formation mechanism of dynamic hohlraum driven by wire-array Z-pinch. It is also indicated that the newly developed code MULTI2D-Z can be considered as a new tool for simulating Z-pinch and its applications, such as inertial confinement fusion and magnetically accelerated flyer plates.
引用
收藏
页数:13
相关论文
共 30 条
  • [1] X-ray imaging measurements of capsule implosions driven by a Z-pinch dynamic hohlraum -: art. no. 095004
    Bailey, JE
    Chandler, GA
    Slutz, SA
    Bennett, GR
    Cooper, G
    Lash, JS
    Lazier, S
    Lemke, R
    Nash, TJ
    Nielsen, DS
    Moore, TC
    Ruiz, CL
    Schroen, DG
    Smelser, R
    Torres, J
    Vesey, RA
    [J]. PHYSICAL REVIEW LETTERS, 2002, 89 (09)
  • [2] Electromagnetic pulse emission produced by Z pinch implosions
    Dan Jia-Kun
    Ren Xiao-Dong
    Huang Xian-Bin
    Zhang Si-Qun
    Zhou Shao-Tong
    Duan Shu-Chao
    Ouyang Kai
    Cai Hong-Chun
    Wei Bing
    Ji Ce
    He An
    Xia Ming-He
    Feng Shu-Ping
    Wang Meng
    Xie Wei-Ping
    [J]. ACTA PHYSICA SINICA, 2013, 62 (24) : 245201
  • [3] Power enhancement by increasing the initial array radius and wire number of tungsten Z pinches
    Deeney, C
    Nash, TJ
    Spielman, RB
    Seaman, JF
    Chandler, GC
    Struve, KW
    Porter, JL
    Stygar, WA
    McGurn, JS
    Jobe, DO
    Gilliland, TL
    Torres, JA
    Vargas, MF
    Ruggles, LE
    Breeze, S
    Mock, RC
    Douglas, MR
    Fehl, DL
    McDaniel, DH
    Matzen, MK
    Peterson, DL
    Matuska, W
    Roderick, NF
    MacFarlane, JJ
    [J]. PHYSICAL REVIEW E, 1997, 56 (05): : 5945 - 5958
  • [4] Optical Thomson Scattering Measurements of Plasma Parameters in the Ablation Stage of Wire Array Z Pinches
    Harvey-Thompson, A. J.
    Lebedev, S. V.
    Patankar, S.
    Bland, S. N.
    Burdiak, G.
    Chittenden, J. P.
    Colaitis, A.
    De Grouchy, P.
    Doyle, H. W.
    Hall, G. N.
    Khoory, E.
    Hohenberger, M.
    Pickworth, L.
    Suzuki-Vidal, F.
    Smith, R. A.
    Skidmore, J.
    Suttle, L.
    Swadling, G. F.
    [J]. PHYSICAL REVIEW LETTERS, 2012, 108 (14)
  • [5] Preliminary experimental results of tungsten wire-array Z-pinches on primary test stand
    Huang, Xian-Bin
    Zhou, Shao-Tong
    Dan, Jia-Kun
    Ren, Xiao-Dong
    Wang, Kun-Lun
    Zhang, Si-Qun
    Li, Jing
    Xu, Qiang
    Cai, Hong-Chun
    Duan, Shu-Chao
    Ouyang, Kai
    Chen, Guang-Hua
    Ji, Ce
    Wei, Bing
    Feng, Shu-Ping
    Wang, Meng
    Xie, Wei-Ping
    Deng, Jian-Jun
    Zhou, Xiu-Wen
    Yang, Yi
    [J]. PHYSICS OF PLASMAS, 2015, 22 (07)
  • [6] Preliminary experimental study on implosion dynamics and radiation character of Z-pinch dynamic hohlraum
    Jiang Shu-Qing
    Ning Jia-Min
    Chen Fa-Xin
    Ye Fan
    Xue Fei-Biao
    Li Lin-Bo
    Yang Jian-Lun
    Chen Jin-Chuan
    Zhou Lin
    Qin Yi
    Li Zheng-Hong
    Xu Rong-Kun
    Xu Ze-Ping
    [J]. ACTA PHYSICA SINICA, 2013, 62 (15)
  • [7] An equation of state code for hot dense matter, based on the QEOS description
    Kemp, AJ
    Meyer-ter-Vehn, J
    [J]. NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1998, 415 (03): : 674 - 676
  • [8] Leaper RJ, 1999, NUCL FUSION, V39, P1283, DOI 10.1088/0029-5515/39/9Y/306
  • [9] Azimuthal structure and global instability in the implosion phase of wire array Z-pinch experiments
    Lebedev, SV
    Mitchell, IH
    Aliaga-Rossel, R
    Bland, SN
    Chittenden, JP
    Dangor, AE
    Haines, MG
    [J]. PHYSICAL REVIEW LETTERS, 1998, 81 (19) : 4152 - 4155
  • [10] Liberman M A, 2003, PHYS HIGH DENSITY Z