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Radiation asymmetry and MHD destabilization during the thermal quench after impurity shattered pellet injection

机译:在杂质破碎颗粒注入后热淬火过程中的辐射不对称和MHD稳定化

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摘要

The radiation response and the MHD destabilization during the thermal quench after a mixed species shattered pellet injection with impurity species neon and argon are investigated via 3D non-linear MHD simulation using the JOREK code. Both the n = 0 global current profile contraction and the local helical cooling at each rational surface caused by the pellet fragments are found to be responsible for MHD destabilization after the injection. Significant current driven mode growth is observed as the fragments cross low order rational surfaces, resulting in rapidly inward propagating stochastic magnetic field, ultimately causing the core temperature collapse. The thermal quench (TQ) is triggered as the fragments arrive on the q = 1 or q = 2 surface depending on the exact q profile and thus mode structure. When injecting from a single toroidal location, strong radiation asymmetry is found before and during the TQ as a result of the unrelaxed impurity density profile along the field line and asymmetric outward heat flux. Such asymmetry gradually relaxes over the course of the TQ, and is entirely eliminated by the end of it. Simulation results indicate that the aforementioned asymmetric radiation behavior could be significantly mitigated by injection from toroidally opposite locations, provided that the time delay between the two injectors is shorter than 1 tns. It is also found that the MHD response are sensitive to the relative timing and injection configuration in these multiple injection cases.
机译:使用JOREK码通过3D非线性MHD仿真研究了混合物种破碎颗粒喷射后热淬火过程中的辐射响应和MHD稳定化。 N = 0全局电流谱收缩和由颗粒片段引起的每个合理表面的局部螺旋冷却都被发现负责注射后的MHD稳定化。观察到显着的电流驱动模式生长作为碎片交叉低阶合理表面,导致快速向内传播随机磁场,最终导致核心温度塌陷。当片段到达Q = 1或Q = 2表面时,触发热骤冷(TQ),根据精确的Q型材,因此的模式结构。当从单个环形位置注入时,在TQ之前和期间发现强烈的辐射不对称,因为沿着场线和不对称的向外热通量的未密封杂质密度分布。这种不对称在TQ的过程中逐渐放松,并且完全消除了它的末端。仿真结果表明,通过从环形相对位置注射可以显着减轻前述的不对称辐射行为,只要两个喷射器之间的时间延迟短于1个TNS。还发现MHD响应对这些多喷射案例中的相对定时和注射配置敏感。

著录项

  • 来源
    《Nuclear fusion》 |2021年第2期|026015.1-026015.23|共23页
  • 作者单位

    Beihang University No. 37 Xueyuan Road Haidian District 100191 Beijing China ITER Organization Route de Vinon Sur Verdon CS 90 046 13067 Saint Paul-Lez-Durance Cedex France;

    CEA IRFM F-13108 Saint-Paul-Lez-Durance France;

    Max Planck Institute for Plasma Physics Boltzmannstr. 2 85748 Garching b. M. Germany;

    Max Planck Institute for Plasma Physics Boltzmannstr. 2 85748 Garching b. M. Germany;

    ITER Organization Route de Vinon Sur Verdon CS 90 046 13067 Saint Paul-Lez-Durance Cedex France;

    CEA IRFM F-13108 Saint-Paul-Lez-Durance France Eindhoven University of Technology De Rondom 70 5612 AP Eindhoven Netherlands;

    Eindhoven University of Technology De Rondom 70 5612 AP Eindhoven Netherlands;

    ITER Organization Route de Vinon Sur Verdon CS 90 046 13067 Saint Paul-Lez-Durance Cedex France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    disruption; disruption mitigation; thermal quench; shattered pellet injection; magneto-hydrodynamics; impurity radiation;

    机译:破坏;中断缓解;热淬火;破碎的颗粒注射;磁力流体动力学;杂质辐射;
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