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Design and Numerical Analyses of the M4 Steering Mirrors for the ITER Electron Cyclotron Heating Upper Launcher

机译:ITER电子回旋加速器加热上部发射器的M4转向镜的设计和数值分析

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摘要

Four electron cyclotron heating upper launchers (ECHULs) will be used at ITER to counteract magnetohydrodynamic plasma instabilities by targeting them with up to 24 MW of mm-wave power at 170 GHz. This mm-wave power is injected through eight ex-vessel (EV) waveguide assemblies for each ECHUL to the in-vessel (IV) waveguides. The mm-wave power exiting the eight IV waveguides inside the ECHUL is reflected by three fixed mirror sets and finally aimed by two independent steering mirrors to specific plasma locations. These two steering mirrors have recently experienced an important redesign in order to deal with the new requirements. This article reports the status of the steering mirrors as well as the fluid dynamic and thermomechanical analyses carried out to validate the design for the normal operation (NO) scenario. The fluid dynamic analyses show that the power dissipated in both steering mirrors due to the mm-wave radiation, nuclear heating, and plasma heat flux can be properly removed with an acceptable mass flow generating admissible pressure drop, temperature rise, and corrosion rate values. The results obtained in the thermomechanical simulation, validated using the American Society of Mechanical Engineers (ASME) code, shows that the steering mirror design is capable of withstanding the expected loads taking place during NO.
机译:ITER将使用四个电子回旋加速器加热上发射器(ECHUL),以170 GHz时高达24 MW的毫米波功率为目标,抵消磁流体动力学等离子体的不稳定性。该毫米波功率通过每个ECHUL的八个外置(EV)波导组件注入到内置(IV)波导中。离开ECHUL内部的八个IV波导的毫米波功率被三个固定的反射镜组反射,最后被两个独立的转向镜对准特定的等离子体位置。为了应对新的要求,这两个转向镜最近经历了重要的重新设计。本文报告了转向镜的状态以及为验证正常运行(NO)方案而进行的流体动力学和热机械分析。流体动力学分析表明,由于毫米波辐射,核加热和等离子热通量而在两个转向镜中产生的功率可以通过可接受的质量流量适当除去,从而产生可接受的压降,温度升高和腐蚀速率值。在热机械仿真中获得的结果(使用美国机械工程师协会(ASME)编码进行了验证)表明,转向镜设计能够承受NO期间发生的预期载荷。

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