逆z-夹紧动力学建模

V. Makhina, A. Esaulov, B. Bauer, R. Siemon, R. Presura, V. Sotnikov, I. Paraschiv, I. Lindemuth, R. Kirkpatrick, P. Sheehey, D. Ryutov
{"title":"逆z-夹紧动力学建模","authors":"V. Makhina, A. Esaulov, B. Bauer, R. Siemon, R. Presura, V. Sotnikov, I. Paraschiv, I. Lindemuth, R. Kirkpatrick, P. Sheehey, D. Ryutov","doi":"10.1109/PPC.2003.1277661","DOIUrl":null,"url":null,"abstract":"The two-dimensional MHD numerical simulation MHRDR has been applied to develop and investigate a new possible fusion scheme, and design experiments to test it. The confinement of magnetized high-beta plasma directly by material walls holds considerable promise for fusion. An interesting prospective Magnetized Target Fusion (MTF) target plasma is the cylindrical inverse pinch, which is, in theory, an MHD-stable, self-organized plasma. An inverse pinch consists of coaxial, metal, current-carrying cylinders with plasma between them. Important insight into this plasma has been obtained using the MHRDR simulation. First, simulations observe that interchange m=0 modes rearrange the plasma into a pressure profile that is stable to m=0 (the Kadomtsev stable profile). Such plasma self-organization is very encouraging for the development of a robust practical device, since the pressure profile does not have to be created in a very particular manner to satisfy the Kadomtsev criterion. Second, the plasma beta can be adjusted by using an initial bias current on the central conductor to magnetize the gas before it is ionized. In this way, the plasma beta can be kept below 40%, so that, according to theory, the troublesome m=1 mode is also stabilized. (The r-z MHRDR code does not analyze the three-dimensional kink motion.) Although the convection associated with self-organization enhances thermal transport, the kinetic energy of turbulent motion is small compared to the thermal energy, and the energy transport is globally Bohm-like, which is acceptable for MTF. The MHRDR modeling is guiding the design of an experiment on the 2-TW Zebra z-pinch at UNR to test the inverse-pinch concept. For the parameters of the designed experiment, MHRDR simulations predict the 2-MV, 1-MA Marx generator will produce a deuterium plasma with B/spl sim/4T, n/spl sim/10/sup 22/m/sup -3/, T/spl sim/300 eV, and a lifetime of 10-50 microseconds. Understanding of the energy transport in this simple wall-confined plasma will increase confidence in the design of eventual integrated liner-on-plasma experiments.","PeriodicalId":143385,"journal":{"name":"Digest of Technical Papers. PPC-2003. 14th IEEE International Pulsed Power Conference (IEEE Cat. No.03CH37472)","volume":"15 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2003-06-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"1","resultStr":"{\"title\":\"Modeling of the inverse z-pinch dynamics\",\"authors\":\"V. Makhina, A. Esaulov, B. Bauer, R. Siemon, R. Presura, V. Sotnikov, I. Paraschiv, I. Lindemuth, R. Kirkpatrick, P. Sheehey, D. Ryutov\",\"doi\":\"10.1109/PPC.2003.1277661\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"The two-dimensional MHD numerical simulation MHRDR has been applied to develop and investigate a new possible fusion scheme, and design experiments to test it. The confinement of magnetized high-beta plasma directly by material walls holds considerable promise for fusion. An interesting prospective Magnetized Target Fusion (MTF) target plasma is the cylindrical inverse pinch, which is, in theory, an MHD-stable, self-organized plasma. An inverse pinch consists of coaxial, metal, current-carrying cylinders with plasma between them. Important insight into this plasma has been obtained using the MHRDR simulation. First, simulations observe that interchange m=0 modes rearrange the plasma into a pressure profile that is stable to m=0 (the Kadomtsev stable profile). Such plasma self-organization is very encouraging for the development of a robust practical device, since the pressure profile does not have to be created in a very particular manner to satisfy the Kadomtsev criterion. Second, the plasma beta can be adjusted by using an initial bias current on the central conductor to magnetize the gas before it is ionized. In this way, the plasma beta can be kept below 40%, so that, according to theory, the troublesome m=1 mode is also stabilized. (The r-z MHRDR code does not analyze the three-dimensional kink motion.) Although the convection associated with self-organization enhances thermal transport, the kinetic energy of turbulent motion is small compared to the thermal energy, and the energy transport is globally Bohm-like, which is acceptable for MTF. The MHRDR modeling is guiding the design of an experiment on the 2-TW Zebra z-pinch at UNR to test the inverse-pinch concept. For the parameters of the designed experiment, MHRDR simulations predict the 2-MV, 1-MA Marx generator will produce a deuterium plasma with B/spl sim/4T, n/spl sim/10/sup 22/m/sup -3/, T/spl sim/300 eV, and a lifetime of 10-50 microseconds. Understanding of the energy transport in this simple wall-confined plasma will increase confidence in the design of eventual integrated liner-on-plasma experiments.\",\"PeriodicalId\":143385,\"journal\":{\"name\":\"Digest of Technical Papers. PPC-2003. 14th IEEE International Pulsed Power Conference (IEEE Cat. No.03CH37472)\",\"volume\":\"15 1\",\"pages\":\"0\"},\"PeriodicalIF\":0.0000,\"publicationDate\":\"2003-06-15\",\"publicationTypes\":\"Journal Article\",\"fieldsOfStudy\":null,\"isOpenAccess\":false,\"openAccessPdf\":\"\",\"citationCount\":\"1\",\"resultStr\":null,\"platform\":\"Semanticscholar\",\"paperid\":null,\"PeriodicalName\":\"Digest of Technical Papers. PPC-2003. 14th IEEE International Pulsed Power Conference (IEEE Cat. No.03CH37472)\",\"FirstCategoryId\":\"1085\",\"ListUrlMain\":\"https://doi.org/10.1109/PPC.2003.1277661\",\"RegionNum\":0,\"RegionCategory\":null,\"ArticlePicture\":[],\"TitleCN\":null,\"AbstractTextCN\":null,\"PMCID\":null,\"EPubDate\":\"\",\"PubModel\":\"\",\"JCR\":\"\",\"JCRName\":\"\",\"Score\":null,\"Total\":0}","platform":"Semanticscholar","paperid":null,"PeriodicalName":"Digest of Technical Papers. PPC-2003. 14th IEEE International Pulsed Power Conference (IEEE Cat. No.03CH37472)","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1109/PPC.2003.1277661","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 1

摘要

利用二维MHD数值模拟MHRDR开发和研究了一种新的可能的融合方案,并设计了实验来测试它。被磁化的高β等离子体直接受到材料壁的约束,在核聚变方面具有相当大的前景。一个有趣的、有前景的磁化目标聚变(MTF)目标等离子体是圆柱形逆捏,它在理论上是一种mhd稳定的、自组织的等离子体。反向夹紧由同轴的金属载流圆柱体组成,圆柱体之间有等离子体。通过MHRDR模拟获得了对等离子体的重要见解。首先,模拟观察到交换m=0模式将等离子体重新排列成稳定于m=0的压力分布(Kadomtsev稳定分布)。这种等离子体自组织对于开发坚固的实用装置是非常令人鼓舞的,因为压力分布不必以非常特殊的方式来满足Kadomtsev准则。其次,等离子体β可以通过在中心导体上使用初始偏置电流在气体被电离之前磁化来调节。这样,等离子体的β可以保持在40%以下,这样,根据理论,麻烦的m=1模式也稳定了。(r-z MHRDR代码不分析三维扭结运动。)虽然与自组织相关的对流增强了热输运,但湍流运动的动能相对于热能来说很小,并且能量输运是全局的Bohm-like,这对于MTF是可以接受的。MHRDR模型指导了UNR在2-TW Zebra z-pinch上的实验设计,以测试反向夹紧概念。对于设计的实验参数,MHRDR模拟预测,2 mv, 1 ma Marx发生器将产生B/spl sim/4T, n/spl sim/10/sup 22/m/sup -3/, T/spl sim/300 eV的氘等离子体,寿命为10-50微秒。了解这种简单的壁面约束等离子体中的能量输运将增加设计最终集成等离子体上衬里实验的信心。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling of the inverse z-pinch dynamics
The two-dimensional MHD numerical simulation MHRDR has been applied to develop and investigate a new possible fusion scheme, and design experiments to test it. The confinement of magnetized high-beta plasma directly by material walls holds considerable promise for fusion. An interesting prospective Magnetized Target Fusion (MTF) target plasma is the cylindrical inverse pinch, which is, in theory, an MHD-stable, self-organized plasma. An inverse pinch consists of coaxial, metal, current-carrying cylinders with plasma between them. Important insight into this plasma has been obtained using the MHRDR simulation. First, simulations observe that interchange m=0 modes rearrange the plasma into a pressure profile that is stable to m=0 (the Kadomtsev stable profile). Such plasma self-organization is very encouraging for the development of a robust practical device, since the pressure profile does not have to be created in a very particular manner to satisfy the Kadomtsev criterion. Second, the plasma beta can be adjusted by using an initial bias current on the central conductor to magnetize the gas before it is ionized. In this way, the plasma beta can be kept below 40%, so that, according to theory, the troublesome m=1 mode is also stabilized. (The r-z MHRDR code does not analyze the three-dimensional kink motion.) Although the convection associated with self-organization enhances thermal transport, the kinetic energy of turbulent motion is small compared to the thermal energy, and the energy transport is globally Bohm-like, which is acceptable for MTF. The MHRDR modeling is guiding the design of an experiment on the 2-TW Zebra z-pinch at UNR to test the inverse-pinch concept. For the parameters of the designed experiment, MHRDR simulations predict the 2-MV, 1-MA Marx generator will produce a deuterium plasma with B/spl sim/4T, n/spl sim/10/sup 22/m/sup -3/, T/spl sim/300 eV, and a lifetime of 10-50 microseconds. Understanding of the energy transport in this simple wall-confined plasma will increase confidence in the design of eventual integrated liner-on-plasma experiments.
求助全文
通过发布文献求助,成功后即可免费获取论文全文。 去求助
来源期刊
自引率
0.00%
发文量
0
×
引用
GB/T 7714-2015
复制
MLA
复制
APA
复制
导出至
BibTeX EndNote RefMan NoteFirst NoteExpress
×
提示
您的信息不完整,为了账户安全,请先补充。
现在去补充
×
提示
您因"违规操作"
具体请查看互助需知
我知道了
×
提示
确定
请完成安全验证×
copy
已复制链接
快去分享给好友吧!
我知道了
右上角分享
点击右上角分享
0
联系我们:info@booksci.cn Book学术提供免费学术资源搜索服务,方便国内外学者检索中英文文献。致力于提供最便捷和优质的服务体验。 Copyright © 2023 布克学术 All rights reserved.
京ICP备2023020795号-1
ghs 京公网安备 11010802042870号
Book学术文献互助
Book学术文献互助群
群 号:604180095
Book学术官方微信