Fluctuation of Inducer Recirculation Stemming From Diffuser Stall in Centrifugal Turbomachinery Near Surge Condition

Kazuhiro Tsukamoto, C. Kato
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Abstract

This work investigates the unsteady fluctuation of inducer recirculation stemming from the diffuser stall that occurs near the surge condition. Experiments and unsteady numerical simulation were utilized for the investigation. Inducer recirculation is known to occur near the surge occurrence flow rate, where the flow rate has a positive slope of the performance curve and the recirculation extends to the upstream of the impeller inlet when decreasing the flow rate more. However, few papers have investigated the unsteady phenomenon of the recirculation, even though the surge is what causes it. Clarifying the recirculation phenomenon is essential in terms of expanding the operation range to the lower flow rate for centrifugal turbomachinery. This was our motivation for investigating the unsteady oscillation phenomenon of the inducer recirculation. We investigated a single-stage centrifugal blower with the maximum pressure rise ratio of 1.2 and focused on the flow rates near surge occurrence. The blower was equipped with an open type centrifugal impeller, a vane-less diffuser, and a scroll casing. The blower performance and pressure time-history data were obtained by experiments. Unsteady simulations using large eddy simulation (LES) were conducted to investigate the flow field in the blower for each flow rate. The obtained performance curve showed that the positive slope of the pressure rise at the lower flow rate was due to the impeller stall and that the inducer recirculation extending upstream of the suction pipe near the slope of the curve was flat. LES analysis revealed that this inducer recirculation had two typical fluctuation peaks, one at 20% of the rotation frequency and the other at 95%. We also found that the stall cell at the impeller inlet propagated in the circumferential direction and swirled at almost the same frequency as the impeller rotation. In addition, the fluctuation at the diffuser derived from the diffuser rotating stall propagated to the suction pipe.
近喘振工况下离心透平机扩散器失速引起的诱导轮再循环波动
本文研究了在喘振状态附近由扩散器失速引起的诱导轮再循环的非定常波动。采用实验和非定常数值模拟方法进行了研究。已知诱导轮再循环发生在浪涌发生流量附近,此时流量的性能曲线斜率为正,且越减小流量,再循环向叶轮进口上游延伸。然而,很少有论文研究了再循环的非定常现象,尽管这是由浪涌引起的。澄清再循环现象对于扩大离心涡轮机械的运行范围到低流量是必不可少的。这就是我们研究诱导体再循环非定常振荡现象的动机。以最大压升比为1.2的单级离心式鼓风机为研究对象,重点研究了发生喘振附近的流量。该鼓风机采用开式离心叶轮、无叶片扩散器和涡旋机匣。通过实验获得了风机性能和压力时程数据。采用大涡模拟(LES)对不同流量下的风机内部流场进行了非定常模拟。得到的性能曲线表明,在低流量时压力上升的正斜率是由于叶轮失速造成的,并且在曲线斜率附近向吸力管上游延伸的诱导轮再循环是平坦的。LES分析表明,诱导体再循环有两个典型的波动峰,一个在旋转频率的20%,另一个在旋转频率的95%。叶轮入口失速单元沿周向传播,其旋转频率与叶轮旋转频率基本一致。此外,扩压器旋转失速引起的扩压器处的波动也会传播到吸入管。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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