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Using the Vincenta code to analyse pressure increases in helium during the quench of a superconducting magnet

机译:使用Vincenta代码分析超导磁体淬火过程中氦气压力的升高

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摘要

The Vincenta code is used to simulate the pressure increases in helium in case of a quench in the super-conducting coils. We focus on two classes of coil in which helium is in direct contact with the conductor: coils consisting of cable-in-conduit conductors (as in ITER or JT-60SA), in which supercritical helium is forced through long channels; and bath-cooled coils, in which static helium is confined in short channels perpendicular to the conductor and opening into a bath (as in Tore Supra or Iseult). Various physical phe-nomena are responsible for the pressure increases in helium, which is subjected to strong heat flux in the conductor during a quench: at the local level, i.e. in the heated channels, the inertial forces that must be overcome to expel the fluid and the friction forces due to the induced velocity; at the global level, i.e. throughout the cryogenic system, the adiabatic compression of non-heated volumes hydraulically con-nected to the heated channels. Here we analyse the thermohydraulic behaviour of helium to highlight the dominant phenomena, according to the geometry of the helium flow paths. The results are applied to numerical simulation of the pressure rise in case of quench in a JT-60SA cable-in-conduit conductor (CICC) and in the bath-cooled Iseult coil.
机译:Vincenta代码用于模拟超导线圈失超时氦气的压力增加。我们将重点放在氦与导体直接接触的两类线圈上:由导管内电缆导体组成的线圈(如ITER或JT-60SA),其中超临界氦被迫通过长通道。以及浴池冷却的线圈,其中静态氦气被限制在垂直于导体并通入浴池的短通道中(例如Tore Supra或Iseult)。氦气中的压力增加是由各种物理phe-nomena引起的,在淬火过程中,氦气在导体中受到强大的热通量:在局部水平,即在加热通道中,必须克服惯性力才能排出流体以及由感应速度引起的摩擦力;在全球范围内,即在整个低温系统中,非加热体积的绝热压缩以液压方式与加热通道相连。在这里,我们根据氦流路径的几何形状分析氦的热工水力行为,以突出显示主要现象。该结果可用于JT-60SA导线管导体(CICC)和镀液冷却的Iseult线圈淬火时压力升高的数值模拟。

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