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A gyrokinetic collision operator for magnetized Lorentz plasmas

机译:磁化Lorentz等离子体的回旋碰撞算子

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A gyrocenter collision operator for magnetized Lorentz plasmas is derived using the Fokker-Plank method. The gyrocenter collision operator consists of drift and diffusion terms in the gyrocenter coordinates, including the diffusion of the gyrocenter, which does not exist for the collision operator in the particle phase space coordinates. The gyrocenter collision operator also depends on the transverse electric field explicitly, which is crucial for the correct treatment of collisional effects and transport in the gyrocenter coordinates. The gyrocenter collision operator derived is applied to calculate the particle and heat transport fluxes in a magnetized Lorentz plasma with an electric field. The particle and heat transport fluxes calculated from our gyrocenter collision operator agree exactly with the classical Braginskii's result [S. I. Braginskii, Reviews of Plasma Physics (Consultants Bureau, New York, 1965), Vol. 1, p. 205: P. Helander and D. J. Sigmar, Collisional Transport in Magnetized Plasmas (Cambridge University, Cambridge, 2002), p. 65], which validates the correctness of our collision operator. To calculate the transport fluxes correctly, it is necessary to apply the pullback transformation associated with gyrocenter coordinate transformation in the presence of collisions, which also serves as a practical algorithm for evaluating collisional particle and heat transport fluxes in the gyrocenter coordinates.
机译:使用Fokker-Plank方法推导了磁化的洛伦兹等离子体的陀螺中心碰撞算子。回转中心碰撞算子由回转中心坐标中的漂移项和扩散项组成,包括回转中心的扩散,这在粒子相空间坐标中对于碰撞算子不存在。陀螺中心碰撞算子也明确地依赖于横向电场,这对于正确处理碰撞效应和在陀螺中心坐标中的传输至关重要。推导的陀螺中心碰撞算子用于计算带电场的磁化洛仑兹等离子体中的粒子和热传输通量。由我们的陀螺中心碰撞算子计算出的粒子和传热通量与经典的Braginskii结果完全吻合[S。 I. Braginskii,《等离子体物理评论》(纽约顾问局,1965年),第1卷。 1页205:P。Helander和D. J. Sigmar,“磁化等离子体中的碰撞运输”(剑桥大学,剑桥,2002年),第243页。 65],这验证了我们的碰撞算子的正确性。为了正确地计算传输通量,有必要在存在碰撞的情况下应用与陀螺中心坐标变换关联的回拉变换,这也可以用作评估陀螺中心坐标中的碰撞粒子和传热通量的实用算法。

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