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Plasma-neutral interaction modeling for Advanced Limiter Test-I operation on TEXTOR.

机译:适用于TEXTOR的Advanced Limiter Test-I操作的等离子体中性相互作用模型。

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摘要

The plasma flow properties along a magnetic field line intercepting a limiter or other neutralizing surface are significantly altered through charge exchange and reionization and dissociation of neutrals produced at the surface. The absorption and retention characteristics of the material surfaces also affect the plasma near the surface. This problem was investigated using a one-dimensional kinetic strip model linked with the Monte Carlo code, DEGAS, for two-dimensional neutral transport. The collisional Boltzman equation is solved for the ion and electron particle distribution functions in one velocity variable and one spatial variable. Effects of plasma-neutral interactions alter the particle distribution functions and are incorporated through use of interaction rates obtained from DEGAS.;Experimental results from ALT-I limiter operation on TEXTOR were modeled. Spatial profiles for the various plasma flow properties are presented, such as density, temperature, flux, interaction rates, etc. Results indicate that significant absorption exists in the duct portion of the ALT-I limiter, part of which may be due to co-depositional processes. It is also indicated that a modest ion accelerating pre-sheath electric field exists in the throat region. The various profiles demonstrate that ALT-I's designed throat length of 28 cm could have been as short as 9 cm and still maintained excellent operating characteristics. Future limiter design is also examined. A low temperature edge plasma is best for operation of a pumped limiter. It was also seen that ballistic scattering is not important. A steeper angled deflector plate that reduces the distance from the point of neutralization to the duct entrance, would produce the best results.
机译:通过电荷交换以及表面处产生的中性粒子的电离和离解,沿磁力线截取限制器或其他中和表面的等离子体流动特性会显着改变。材料表面的吸收和保留特性也会影响表面附近的等离子体。使用与蒙特卡洛代码DEGAS链接的一维动力学带状模型对二维中性传输进行了研究。对于一个速度变量和一个空间变量中的离子和电子粒子分布函数,求解了碰撞玻尔兹曼方程。血浆-中性相互作用的影响改变了颗粒的分布功能,并通过使用从DEGAS获得的相互作用速率而被合并。;对ALT-I限幅器在TEXTOR上的实验结果进行了建模。给出了各种血浆流动特性的空间分布图,例如密度,温度,通量,相互作用速率等。结果表明,ALT-I限流器的导管部分存在明显的吸收,其中一部分可能是由于沉积过程。还表明在喉部区域中存在适度的离子加速鞘前电场。各种曲线表明,ALT-I设计的喉咙长度为28厘米,本来可以短至9厘米,并且仍保持出色的工作特性。还检查了将来的限制器设计。低温边缘等离子体最适合抽运的限幅器。还可以看到弹道散射并不重要。倾斜角度更大的导流板会减小从中和点到管道入口的距离,将产生最佳效果。

著录项

  • 作者

    Harris, John Aaron.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Plasma physics.;Nuclear engineering.
  • 学位 Ph.D.
  • 年度 1988
  • 页码 214 p.
  • 总页数 214
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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