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Radiative Response on Massive Noble Gas Injection For Runaway Suppression in Disruptive Plasmas

机译:大规模惰性气体注入对破坏性等离子体失控抑制的辐射响应

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摘要

The most direct way to avoid the formation of a relativistic electron beam under the influence of an electric field in a highly conducting plasma, is to increase the electron density to a value, where the retarding collisional force balances the accelerating one. In a disruptive tokamak plasma, rapid cooling induces a high electric field, which could easily violate the force balance and push electrons into the relativistic regime. Such relativistic electrons, the so-called runaways, accumulate many MeV's and can cause substantial damage when they hit the wall.This thesis is based on the principle of rapidly fueling the plasma for holding the force balance even under the influence of high electric fields typical for disruptions. The method of injecting high amounts of noble gas particles into the plasma from a close distance is put into practice in the ASDEX Upgrade fusion test facility. In the framework of this thesis, a multi-channel photometer system based on 144 AXUV detectors in a toroidal stereo measurement setup was built. It kept its promise to provide new insights into the transport mechanisms in a disruptive plasma under the influence of strong radiative interaction dynamics between injected matter and the hot plasma.
机译:避免在高导电等离子体中的电场的影响下形成相对论电子束的最直接方法是将电子密度增加到一个值,在该值处,减速碰撞力平衡了加速的电子束。在破坏性的托卡马克等离子体中,快速冷却会感应出高电场,这很容易破坏力平衡并将电子推入相对论体系。这种相对论性的电子,即所谓的失控,会累积许多MeV,并在撞击壁面时造成严重破坏。本论文基于即使在强电场的作用下,也能迅速为等离子体提供能量以保持力平衡的原理。破坏。在ASDEX升级聚变测试设备中,已实现了从近距离向等离子体中注入大量稀有气体颗粒的方法。在本文的框架下,建立了基于144个AXUV探测器的环形多通道光度计系统。它一直致力于在注入物质与热等离子体之间强烈的辐射相互作用动力学的影响下,为破坏性等离子体中的传输机理提供新的见解。

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    Reiter Bernhard;

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  • 年度 2010
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