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Thermal quench mitigation and current quench control by injection of mixed species shattered pellets in DIII-D

机译:通过注入DIII-D中的混合物种破碎的颗粒来减轻热淬火和控制电流淬火

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摘要

Injection of large shattered pellets composed of variable quantities of the main ion species (deuterium) and high-Z impurities (neon) in the DIII-D tokamak demonstrates control of thermal quench (TQ) and current quench (CQ) properties in mitigated disruptions. As the pellet composition is varied, TQ radiation fractions increase continuously with the quantity of radiating impurity in the pellet, with a corresponding decrease in divertor heating. Post-TQ plasma resistivities increase as a result of the higher radiation fraction, allowing control of current decay timescales based on the pellet composition. Magnetic reconstructions during the CQ show that control of the current decay rate allows continuous variation of the minimum safety factor during the vertically unstable disruption, reducing the halo current fraction and resulting vessel displacement. Both TQ and CQ characteristics are observed to saturate at relatively low quantities of neon, indicating that effective mitigation of disruption loads by shattered pellet injection (SPI) can be achieved with modest impurity quantities, within injection quantities anticipated for ITER. This mixed species SPI technique provides a possible approach for tuning disruption properties to remain within the limited ranges allowed in the ITER design. Published by AIP Publishing.
机译:在DIII-D托卡马克中注入由可变数量的主要离子物种(氘)和高Z杂质(氖)组成的大粉碎颗粒,证明了在减轻干扰方面控制了热猝灭(TQ)和电流猝灭(CQ)特性。随着粒料组成的变化,TQ辐射分数随粒料中辐射杂质的数量而连续增加,而偏滤器加热相应降低。 TQ后的等离子体电阻率由于较高的辐射分数而增加,从而可以根据颗粒组成控制电流衰减时间尺度。 CQ期间的磁性重建表明,通过控制电流衰减率,可以在垂直不稳定扰动期间连续改变最小安全系数,从而减少晕轮电流分数并降低容器位移。观察到TQ和CQ特性都在相对较低的氖含量下达到饱和,这表明在ITER预期的注入量之内,可以通过适度的杂质量来有效地降低破碎的颗粒注入(SPI)破坏负荷的能力。这种混合物质SPI技术提供了一种可能的方法,可将干扰特性调整为保持在ITER设计所允许的有限范围内。由AIP Publishing发布。

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