磁扫压回旋管集热器二次电子模拟

S. Cauffman, M. Blank, P. Borchard, K. Felch
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引用次数: 1

摘要

兆瓦级回旋管的设计目的是将剩余的电子束能量分布在一个大的收集表面上,以保持足够低的功率密度,在不威胁长期真空完整性的情况下消散。由于入射光束非常窄,因此使用了各种技术来降低集电极表面的瞬时和时间平均功率密度,同时将集电极的尺寸保持在当前制造能力的限制内。回旋管集热器的设计通常侧重于优化入射(“主”)光束的功率沉积。通常认为集热器表面的二次电子发射(无论是由于原发反射,还是真正的二次发射)的影响将倾向于进一步扩展功率密度分布。这种额外的扩散如果降低峰值功率密度是有益的,但如果它将功率沉积在不需要的位置或将粒子送回回旋加速器的相互作用区域,则可能是有害的。在这里,我们模拟了VGT-8115中二次/反射电子的效应,VGT-8115是一个110 GHz, 1.2 MW, 10秒的回旋管,用于DIII-D托卡马克的电子回旋加热和电流驱动。我们研究了在不同操作条件下二次发射的影响,如集热器清扫参数和集热器抑制电压的变化,比较了有和没有二次的功率密度和粒子轨迹。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Secondary Electron Simulations of a Gyrotron Collector with Magnetic Sweeping and Voltage Depression
Megawatt-class gyrotrons are designed to distribute the residual electron beam energy across a large collecting surface, to keep power densities low enough to be dissipated without threatening long-term vacuum integrity. Because the incident beam is very narrow, various techniques are used to lower the instantaneous and time-averaged power densities on the collector surface, while keeping the size of the collector within the limits of current fabrication capabilities. Gyrotron collector design typically focuses on optimizing the power deposition of the incident (“primary”) beam. It is often assumed that the effects of secondary electron emission from the collector surface (whether due to reflection of primaries, or true secondary emission) will tend to further spread the power density profile. Such additional spreading can be beneficial if it lowers peak power densities, but can be detrimental if it deposits power in undesired locations or sends particles back toward the gyrotron’s interaction region. Here, we simulate the effects of secondary/reflected electrons in the VGT-8115, a 110 GHz, 1.2 MW, 10-second gyrotron used for electron cyclotron heating and current drive in the DIII-D tokamak. We examine the ramifications of secondary emission under various operating conditions, such as variations in collector sweeping parameters and collector depression voltage, comparing power densities and particle trajectories with and without secondaries.
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