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Analytical and Numerical Assessment of Thermally Induced Pressure Waves in the IFMIF-DONES Liquid-Lithium Target

机译:IFMIF-Dones液 - 锂靶中热诱导压力波的分析与数值评估

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The intended steady-state operation conditions of the International Fusion Materials Irradiation Facility-DEMO Oriented Neutron Source (IFMIF-DONES) target system are based on the D+ beam stationary running at full nominal power (5 MW). Nevertheless, critical situations can occur in the case of unavoidable sudden events like beam trips. The instantaneous variation in the heating power deposited in lithium when the beam is rapidly switched between ON- and OFF-states leads to thermal expansion, which is compensated by the compression of the target material, resulting in locally high pressures and a pressure wave propagating through the target toward the back wall. Besides the tensile stress of the back wall structure caused by shock pressure waves, undesirable cavitation may occur, when pressure waves are reflected leading to negative pressures. For this purpose, analytical and numerical thermohydraulic analyses of the effects generated in lithium during the beam-on/beam-off switches are performed. The pressure wave development inside the Li-target has been analyzed numerically with the computational fluid dynamics (CFD) code Star-CCM+. The simulation of the thermally induced pressure in the Li-target shows that for normal operation conditions, peak pressures of about 0, 3 MPa can be reached. In both "beam-on" and "beam-off" cases, a zone with a negative static pressure flow forms in the Li-target. The results obtained from the analytical and numerical analyses of the thermally induced pressure waves are discussed concerning potential cavitation and stability of the lithium free-surface flow. The simulation results served as input for the analysis of fatigue effects occurring in the target structure during sudden beam-on/beam-off events.
机译:国际融合材料辐照设施 - 演示中子源(IFMIF-Dones)目标系统的预期稳态运行条件基于全名称(5 MW)的D +梁静止。尽管如此,在比梁跳闸等不可避免的突发事件的情况下,可能会出现危急情况。当梁在束之间快速切换时锂沉积在锂的加热功率的瞬时变化导致热膨胀,其通过压缩目标材料来补偿,导致局部高压力和传播通过的压力波目标向后墙。除了由冲击压力波引起的后壁结构的拉伸应力之外,当压力波反射导致负压的压力波时,可能发生不希望的空化。为此,执行光束/光束开关期间锂中产生的效果的分析和数值热液分析。利用计算流体动力学(CFD)COD-CCM +,在数值上进行了数量分析了LI-TARGE内的压力波的发展。 Li-靶中的热诱导压力的模拟表明,对于正常的操作条件,可以达到约0,3MPa的峰值压力。在“光束”和“光束”壳体中,在LI-靶中形成具有负静压流动的区域。从热诱导的压力波的分析和数值分析获得的结果讨论了锂自由表面流动的潜在空化和稳定性。仿真结果用作突然波束/光束事件期间在目标结构中发生疲劳效应的输入。

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