耗散性衍射传播导致电子回旋加速器功率沉积和驱动电流剖面拓宽

K. Yanagihara, S. Kubo
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引用次数: 0

摘要

改进电子回旋共振加热(ECRH)和电流驱动(ECCD)预测是设计和控制未来装置中高性能聚变等离子体的重要问题,在未来装置中,电子回旋共振加热和电流驱动作为致动器的作用应比迄今为止的装置更为重要。基于准光学射线追踪代码 PARADE 新开发的电离层预测软件包在 JT-60SA 中发现:(i) 由于耗散衍射传播(DDP),与传统预测相比,电离层功率沉积和驱动电流的径向剖面都变宽了;(ii) 净驱动电流增加了几 kA/MW。DDP 的机理如下:斜向穿过谐振面的电离层波束在其波束横截面上被非均匀地耗散,从而使波束轨迹逐渐移动,谐振位置也随之移动,导致功率沉积曲线变宽。这种基于 PARADE 的新型 ECCD 和 ECRH 预测软件包不仅适用于 JT-60SA,还适用于其他现有设备甚至未来的设备。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Broadening of electron cyclotron power deposition and driven current profiles caused by dissipative diffractive propagation
Improvements of the Electron Cyclotron Resonance Heating (ECRH) and Current Drive (ECCD) predictions are important issues to design and control the high-performance fusion plasmas in future devices, where those should play a more important role as an actuator than in devices to date. The newly developed EC-prediction package based on the quasioptical ray tracing code PARADE revealed in JT-60SA that (i) radial profiles of both EC power deposition and driven current are broadened and (ii) the net driven current is increased by few kA/MW, in comparison with conventional predictions due to the dissipative diffractive propagation (DDP). The mechanism of DDP is as follows; EC wave beam obliquely passing through the resonant surface is dissipated non- uniformly on its beam cross section, so that the beam trajectory shifts gradually and thus the resonant position also shifts, resulting in the broadened power deposition profile. This novel ECCD and ECRH prediction package based on PARADE is applicable not only to JT-60SA but other existing devices and even, future devices.
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