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Energy deposition and thermal effects of runaway electrons in ITER-FEAT plasma facing components

机译:ITER-FEAT等离子面对组件中电子的能量沉积和热效应

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The profile of energy deposited by runaway electrons (RAEs) of 10 or 50 MeV in International Thermonuclear Experimental Reactor-Fusion Energy Advanced Tokamak (ITER-FEAT) plasma facing components (PFCs) and the subsequent temperature pattern have been calculated by using the Monte Carlo code FLUKA and the finite element heat conduction code ANSYS. The RAE energy deposition density was assumed to be 50 MJ/m(2) and both 10 and 100 ms deposition times were considered. Five different configurations of PFCs were investigated: primary first wall armoured with Be, with and without protecting CFC poloidal limiters, both port limiter first wall options (Be flat tile and CFC monoblock), divertor baffle first wall, armoured with W. The analysis has outlined that for all the configurations but one (port limiter with Be flat tile) the heat sink and the cooling tube beneath the armour are well protected for both RAE energies and for both energy deposition times. On the other hand large melting (W, Be) or sublimation (C) of the surface layer occurs, eventually affecting the PFCs lifetime. (C) 2003 Elsevier Science B.V. All rights reserved. [References: 9]
机译:通过使用蒙特卡洛计算了国际热核实验堆-融合能高级托卡马克(ITER-FEAT)等离子面对组件(PFC)中10 MeV或50 MeV的失控电子(RAE)沉积的能量分布和随后的温度模式代码FLUKA和有限元导热代码ANSYS。 RAE能量沉积密度假定为50 MJ / m(2),并且同时考虑了10和100 ms的沉积时间。研究了五种不同的PFC配置:用Be铠装的第一主墙,带有或不带有CFC倍数限制器,两个端口限制器第一墙选件(平瓦和CFC单块),带有W铠装的分流挡板第一壁。概述指出,除了一种配置(带有Be瓷砖的端口限制器)以外,所有配置都已很好地保护了装甲下方的散热器和冷却管,使其不受RAE能量和能量沉积时间的影响。另一方面,表面层发生大的熔化(W,Be)或升华(C),最终影响了PFC的寿命。 (C)2003 Elsevier Science B.V.保留所有权利。 [参考:9]

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