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Numerical Analysis of the Influence of Acceleration on Cavitation Instabilities that arise in Cascade

机译:加速度对级联中空化不稳定性影响的数值分析

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In the turbopump inducer of a liquid propellant rocket engine, cavitation is affected by acceleration that occurs during an actual launch sequence. Since cavitation instabilities such as rotating cavitations and cavitation surges are suppressed during launch, it is difficult to obtain data on the influence of acceleration on cavitation instabilities. Therefore, as a fundamental investigation, in the present study, a three-blade cyclic cascade is simulated numerically in order to investigate the influence of acceleration on time-averaged and unsteady characteristics of cavitation that arise in cascade. Several cases of acceleration in the axial direction of the cascade, including accelerations in the upstream and downstream directions, are considered. The numerical results reveal that cavity volume is suppressed in low cavitation number condition and cavitation performance increases as a result of high acceleration in the axial-downstream direction, also, the inverse tendency is observed in the axial-upstream acceleration. Then, the regions in which the individual cavitation instabilities occur shift slightly to a low-cavitation-number region as the acceleration increases downstream. In addition, in a downstream acceleration field, neither sub-synchronous rotating cavitation nor rotating-stall cavitation are observed. On the other hand, rotating-stall cavitation occurs in a relatively higher-cavitationnumber region in an upstream acceleration field. Then, acceleration downstream is robust against cavitation instabilities, whereas cavitation instabilities easily occur in the case of acceleration upstream. Additionally, comparison with the Froude number under the actual launch conditions of a Japanese liquid propellant rocket reveals that the cavitation performance will not be affected by the acceleration under the current launch conditions.
机译:在液体推进剂火箭发动机的涡轮泵诱导器中,空化受实际发射过程中发生的加速度影响。由于在发射期间抑制诸如旋转空化和空化波动的空化不稳定性,所以难以获得关于加速度对空化不稳定性的影响的数据。因此,作为基础研究,在本研究中,对三叶片循环叶栅进行了数值模拟,以研究加速度对叶栅中时间平均和非定常特性的影响。考虑了沿叶栅轴向的加速度的几种情况,包括沿上游和下游方向的加速度。数值结果表明,由于在轴向下游方向上的高加速度,在低空穴数量条件下空腔体积受到抑制,并且空穴性能提高,并且在轴向上游方向上也观察到相反的趋势。然后,随着加速度向下游增加,其中单个气蚀不稳定性发生的区域稍微移至低气蚀数区域。另外,在下游的加速场中,未观察到亚同步旋转空化和旋转失速空化。另一方面,失速空化发生在上游加速场中的相对较高空化数的区域中。这样,下游加速对抵抗气蚀的不稳定性是有力的,而在上游加速的情况下容易发生气蚀的不稳定性。另外,与日本液体推进剂火箭的实际发射条件下的弗洛德数进行比较表明,在当前发射条件下,空化性能将不受加速度的影响。

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