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首页> 外文期刊>Antennas and Propagation, IEEE Transactions on >A GPU-Accelerated Finite-Difference Time-Domain Scheme for Electromagnetic Wave Interaction With Plasma
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A GPU-Accelerated Finite-Difference Time-Domain Scheme for Electromagnetic Wave Interaction With Plasma

机译:电磁波与等离子体相互作用的GPU加速有限差分时域方案

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摘要

A graphical processing unit (GPU)-accelerated finite-difference time-domain (FDTD) scheme for the simulation of radio-frequency (RF) wave propagation in a dynamic, magnetized plasma is presented. This work builds on well-established FDTD techniques with the inclusion of new time advancement equations for the plasma fluid density and temperature. The resulting FDTD formulation is suitable for the simulation of the time-dependent behavior of an ionospheric plasma due to interaction with an RF wave and the excitation of plasma waves and instabilities. The stability criteria and the dependence of accuracy on the choice of simulation parameters are analyzed and found to depend on the choice of simulation grid parameters. It is demonstrated that accelerating the FDTD code using GPU technology yields significantly higher performance, with a dual-GPU implementation achieving a rate of node update almost two orders of magnitude faster than a serial implementation. Optimization techniques such as memory coalescence are demonstrated to have a significant effect on code performance. The results of numerical tests performed to validate the FDTD scheme are presented, with a good agreement achieved when the simulation results are compared to both the predictions of plasma theory and to the results of the Tech-X VORPAL 4.2.2 software that was used as a benchmark.
机译:提出了一种图形处理单元(GPU)加速的有限差分时域(FDTD)方案,用于模拟动态磁化等离子体中的射频(RF)波传播。这项工作建立在完善的FDTD技术的基础上,其中包括用于血浆流体密度和温度的新的时间提前方程。所得的FDTD公式适用于模拟电离层等离子体的时间相关行为,这是由于与RF波的相互作用以及等离子体波的激发和不稳定性。分析了稳定性标准和精度对仿真参数选择的依赖性,发现它们取决于仿真网格参数的选择。事实证明,使用GPU技术加速FDTD代码可获得更高的性能,双GPU实现的节点更新速率比串行实现快了两个数量级。诸如内存合并之类的优化技术已被证明对代码性能具有重大影响。给出了为验证FDTD方案而进行的数值测试的结果,当将模拟结果与等离子理论的预测以及Tech-X VORPAL 4.2.2软件的结果进行比较时,可以很好地达成共识。一个基准。

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