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首页> 外文期刊>Computer physics communications >SPIREs: A finite-difference frequency-domain electromagnetic solver for inhomogeneous magnetized plasma cylinders
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SPIREs: A finite-difference frequency-domain electromagnetic solver for inhomogeneous magnetized plasma cylinders

机译:SPIREs:用于非均匀磁化等离子圆柱体的有限差分频域电磁求解器

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摘要

We present SPIREs (plaSma Padova Inhomogeneous Radial Electromagnetic solver), a Finite-Difference Frequency-Domain (FDFD) electromagnetic solver in one dimension for the rapid calculation of the electromagnetic fields and the deposited power of a large variety of cylindrical plasma problems. The two Maxwell wave equations have been discretized using a staggered Yee mesh along the radial direction of the cylinder, and Fourier transformed along the other two dimensions and in time. By means of this kind of discretization, we have found that mode-coupling of fast and slow branches can be fully resolved without singularity issues that flawed other well-established methods in the past. Fields are forced by an antenna placed at a given distance from the plasma. The plasma can be inhomogeneous, finite-temperature, collisional, magnetized and multi-species. Finite-temperature Maxwellian effects, comprising Landau and cyclotron damping, have been included by means of the plasma Z dispersion function. Finite Larmor radius effects have been neglected. Radial variations of the plasma parameters are taken into account, thus extending the range of applications to a large variety of inhomogeneous plasma systems. The method proved to be fast and reliable, with accuracy depending on the spatial grid size. Two physical examples are reported: fields in a forced vacuum waveguide with the antenna inside, and forced plasma oscillations in the helicon radiofrequency range.
机译:我们提出一种尖顶(等离子帕多瓦不均匀径向电磁解算器),一种有限差分的频域(FDFD)电磁解算器,用于快速计算电磁场和各种圆柱形等离子体问题的沉积功率。使用交错的Yee网格沿圆柱体的径向方向离散了两个Maxwell波动方程,并沿其他两个维度在时间上进行了Fourier变换。通过这种离散化,我们发现快速分支和慢分支的模式耦合可以完全解决,而不会出现过去会破坏其他完善方法的奇异性问题。电场是由与等离子相距给定距离的天线施加的。等离子体可以是不均匀的,有限温度的,碰撞的,磁化的和多种的。通过等离子Z色散函数,已包括有限温度的Maxwellian效应,包括Landau和回旋加速器阻尼。有限的拉莫尔半径效应已被忽略。考虑到等离子体参数的径向变化,因此将应用范围扩展到了各种各样的非均质等离子体系统。该方法被证明是快速且可靠的,其准确性取决于空间网格的大小。报告了两个物理示例:天线内部位于强制真空波导中的场,以及螺旋射频范围内的强制等离子体振荡。

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