首页> 外文期刊>Journal of Computational Physics >Numerical modeling of the thermal force in a plasma for test-ion transport simulation based on a Monte Carlo Binary Collision Model (II) - Thermal forces due to temperature gradients parallel and perpendicular to the magnetic field
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Numerical modeling of the thermal force in a plasma for test-ion transport simulation based on a Monte Carlo Binary Collision Model (II) - Thermal forces due to temperature gradients parallel and perpendicular to the magnetic field

机译:基于Monte Carlo二元碰撞模型(II)的用于测试离子迁移模拟的等离子体中热力的数值建模-由于温度梯度平行和垂直于磁场而产生的热力

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We have developed a numerical model of the thermal force for test-ion transport simulation in a magnetized background plasma, based on the Monte Carlo Binary Collision Model (BCM) [T. Takizuka, H. Abe, J. Comput. Phys. 25 (1977) 205]. The model is basically the same as presented in our previous paper [Y. Homma, A. Hatayama, J. Comput. Phys. 231 (2012) 3211-3227] for the case without magnetic field, but in the present paper, a more extended form of a distorted Maxwellian distribution is employed for the velocity distribution of background plasma ions to simulate the thermal force caused by parallel and perpendicular (with respect to the direction of magnetic field) temperature gradients. The model consists mainly of two steps: (i) choosing a background plasma ion velocity from a distorted Maxwellian distribution, and (ii) calculating a Coulomb collision between a test particle and the above chosen ion by using the BCM. In addition, equations of motion for charged test particle in the magnetic field are calculated by Buneman-Boris Algorithm.A series of test simulations has been done in a simple geometry with different temperature gradients and different strengths of magnetic field. Numerical results of the thermal force due to parallel and perpendicular temperature gradients agree well with the theoretical prediction for all test cases. Especially, it has been confirmed that the model reproduces the temperature screening effect of test particles (i.e. guiding center drift of test particle caused by the thermal force of perpendicular temperature gradient).
机译:我们基于蒙特卡洛二进制碰撞模型(BCM)[T. Takizuka,H.Abe,J.Comput。物理25(1977)205]。该模型与我们之前的论文[Y. Homma,A.Hatayama,J.Comput。物理[231(2012)3211-3227]对于没有磁场的情况,但在本文中,采用更扩展的形式的扭曲麦克斯韦分布用于背景等离子体离子的速度分布,以模拟平行和垂直引起的热力(相对于磁场方向)温度梯度。该模型主要包括两个步骤:(i)从变形的麦克斯韦分布中选择背景等离子体离子速度,以及(ii)通过使用BCM计算测试粒子与上述选定离子之间的库仑碰撞。此外,还通过Buneman-Boris算法计算了带电测试粒子在磁场中的运动方程,并在具有不同温度梯度和不同磁场强度的简单几何形状中进行了一系列测试模拟。由平行和垂直温度梯度引起的热力的数值结果与所有测试用例的理论预测吻合得很好。特别地,已经证实该模型再现了测试颗粒的温度屏蔽效果(即,由垂直温度梯度的热力引起的引导测试颗粒的中心漂移)。

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