在磁性封闭的和等离子体中发生流转变
T Kinoshita1, K Tanaka2,3, A Ishizawa4
1Research Institute for Applied Mechanics, <a href="https://ror.org/00p4k0j84">Kyushu University</a>, Kasuga, Fukuoka 816-8580, Japan.
Physical review letters
|June 21, 2024
概括
在螺旋式装置中发现了流过渡,影响了能量传输. 等离子体在电阻交换模式中显示抑制的流,为恒星器优化提供了洞察力.
科学领域:
- 血物理学的等离子体物理学
- 核聚变能源的研究.
- 流动力学的动态.
背景情况:
- 了解等离子体流对于磁束聚变至关重要.
- 螺旋式装置,如恒星器和日子,对聚变能源有很大的希望.
- 流极大地影响了聚变等离子体中的能量传输.
研究的目的:
- 为了研究一个大型螺旋装置中新发现的流过渡.
- 为了确定控制等离子体行为下方和上方的过渡密度的流的类型.
- 阐明等离子体同位素 (和) 在流和能量传输中的作用.
主要方法:
- 在大型螺旋装置中进行实验观测.
- 分析流水平和流驱动的能源运输.
- (H) 和 (D) 等离子体行为的比较.
- 根据陀螺运动理论和双流体MHD模型进行验证.
主要成果:
- 在特定的等离子体密度下观察到明显的流过渡.
- 离子温度梯度 (ITG) 流在过渡密度以下占主导地位.
- 阻力交换 (RI) 流在过渡密度以上占主导地位.
- 与相比,等离子体在 RI 状态下表现出抑制的流和能量传输.
结论:
- 该研究确定ITG和RI流是螺旋装置中的关键模式.
- 同位素效应显著,特别是在RI制度下,乳显示抑制.
- 这些发现为优化恒星器和日光子设计以及理解聚变等离子体中的同位素效应提供了关键数据.
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