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Analysis of Pressure Pulsation Induced by Rotor-Stator Interaction in Nuclear Reactor Coolant Pump

机译:核反应堆冷却剂泵转子定子相互作用诱导的压力脉动分析

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摘要

The internal flow of reactor coolant pump (RCP) is much more complex than the flow of a general mixed-flow pump due to high temperature, high pressure, and large flow rate. The pressure pulsation that is induced by rotor-stator interaction (RSI) has significant effects on the performance of pump; therefore, it is necessary to figure out the distribution and propagation characteristics of pressure pulsation in the pump. The study uses CFD method to calculate the behavior of the flow. Results show that the amplitudes of pressure pulsation get the maximum between the rotor and stator, and the dissipation rate of pressure pulsation in impellers passage is larger than that in guide vanes passage. The behavior is associated with the frequency of pressure wave in different regions. The flow rate distribution is influenced by the operating conditions. The study finds that, at nominal flow, the flow rate distribution in guide vanes is relatively uniform and the pressure pulsation amplitude is the smallest. Besides, the vortex shedding or backflow from the impeller blade exit has the same frequency as pressure pulsation but there are phase differences, and it has been confirmed that the absolute value of phase differences reflects the vorticity intensity.
机译:电抗器冷却剂泵(RCP)的内部流量远比高温,高压和大流量大的通用混合流量泵的流量更复杂。转子定子相互作用(RSI)引起的压力脉动对泵的性能具有显着影响;因此,有必要弄清楚泵中压力脉动的分布和传播特性。该研究使用CFD方法来计算流动的行为。结果表明,压力脉动的幅度得到转子和定子之间的最大值,叶轮通道中的压力脉动的耗散速率大于导叶片通道中的压力脉动。该行为与不同区域中的压力波的频率相关联。流量分布受运行条件的影响。该研究发现,在标称流动时,导叶中的流量分布相对均匀,压力脉动幅度最小。此外,叶轮叶片出口的涡流脱落或回流具有与压力脉动相同的频率,但存在相差,并且已经证实相差的绝对值反映了涡旋强度。

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