O. Vallhagen, L. Hanebring, F.J. Artola, M. Lehnen, E. Nardon, T. Fülöp, M. Hoppe, S.L. Newton and I. Pusztai
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引用次数: 0
摘要
本研究利用破坏建模工具 Dream 系统地探索了通过在热核实验堆中注入碎裂颗粒来减缓破坏的参数空间,重点关注失控电子(RE)动力学。与之前的研究相比,该研究的物理保真度有了显著提高,例如采用了现实的磁几何形状、电阻壁配置、热淬火起始标准,并纳入了额外的效应,例如热淬火期间的离子传输和增强的RE传输。这项工作旨在提供相当全面的实验可行方案,考虑到非活化和高性能 DT 运行的代表性等离子体、不同的热骤冷起始标准和传输水平、在一个或两个阶段注入的大量氢和氖,以及具有各种特征碎片尺寸的颗粒。采用交错注入方案,在氢氖混合注入之前注入纯氢,我们发现注入参数可在所有研究的放电中产生可接受的 RE 电流,且不会激活失控源。我们发现,将注入分为两个阶段可显著提高同化效果,并将热尾机制导致的可再生能源产生降至最低。然而,虽然在有放射性可再生能源的情况下,交错注入比单级注入效果更好,但在有等离子体电流的 DT 等离子体中,没有发现可接受可再生能源电流的情况。
Runaway electron dynamics in ITER disruptions with shattered pellet injections
This study systematically explores the parameter space of disruption mitigation through shattered pellet injection in ITER with a focus on runaway electron (RE) dynamics, using the disruption modeling tool Dream. The physics fidelity is considerably increased compared to previous studies, by e.g. using realistic magnetic geometry, resistive wall configuration, thermal quench onset criteria, as well as including additional effects, such as ion transport and enhanced RE transport during the thermal quench. The work aims to provide a fairly comprehensive coverage of experimentally feasible scenarios, considering plasmas representative of both non-activated and high-performance DT operation, different thermal quench onset criteria and transport levels, a wide range of hydrogen and neon quantities injected in one or two stages, and pellets with various characteristic shard sizes. Using a staggered injection scheme, with a pure hydrogen injection preceding a mixed hydrogen-neon injection, we find injection parameters leading to acceptable RE currents in all investigated discharges without activated runaway sources. Dividing the injection into two stages is found to significantly enhance the assimilation and minimize RE generation due to the hot-tail mechanism. However, while a staggered injection outperforms a single stage injection also in cases with radioactive RE sources, no cases with acceptable RE currents are found for a DT-plasma with a plasma current.
期刊介绍:
Nuclear Fusion publishes articles making significant advances to the field of controlled thermonuclear fusion. The journal scope includes:
-the production, heating and confinement of high temperature plasmas;
-the physical properties of such plasmas;
-the experimental or theoretical methods of exploring or explaining them;
-fusion reactor physics;
-reactor concepts; and
-fusion technologies.
The journal has a dedicated Associate Editor for inertial confinement fusion.