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Investigation of the coupling mechanism between bent pipes and volute on the stall inception at the centrifugal compressor inlet

机译:离心式压缩机入口弯曲管道与蜗壳蜗壳的耦合机制研究

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The rotating stall of a centrifugal compressor not only deteriorates its efficiency but also impacts the blade fatigue failure. The inlet total pressure distortion is generated by a 90° bent pipe placed upstream from the inlet. The volute causes the circumferential non-uniform static pressure distribution of the impeller outlet, and the impeller is under the inlet distortion and the non-uniform outlet distribution condition. Current research pays little attention to the stall inception location and its formation process under the coupling interaction between the bent pipe and volute. In this paper, two installation angles of the inlet bent pipe were compared concerning the stall inception process, including the 115° (M1) and the 295° (M2) models. The circumferential angle between the volute tongue and the elbow axial plane approaches a blade passage width in model M1, and model M2 has the opposite installation angle to M1. The model M1 inlet low total pressure region caused by the bent pipe, and the outlet high static pressure region induced by the volute tongue together affect the same impeller passage at the 115° location causing the leading edge spillover. The coupling effect of the Model M1 accelerates the process of stall. However, the low total pressure region for the model M2 is located at the circumferential 295° point, and the high static outlet pressure affects the 115° impellers, resulting in a different stall inception location and process compared to the model M1. The leading edge spillover first occurs at the 295° location because of inlet distortion, and the second spillover appears at the 115° location due to the reversed propagation of the outlet high pressure region induced by the volute tongue. Compared to model M1, the stall formation of model M2 is relatively slow. Meanwhile, because of the recirculation flow, the static temperature rises sharply and the axial velocity drops significantly at the spillover region during the stall process. These results indicate that the coupling interaction between the low total inlet pressure and the high outlet static pressure jointly determines the stall inception location and its process at the centrifugal compressor inlet.
机译:离心式压缩机的旋转摊位不仅劣化了其效率,而且影响了叶片疲劳失效。入口总压力变形由位于入口上游的90°弯曲管产生。蜗壳导致叶轮出口的周向不均匀的静压分布,叶轮位于入口失真和非均匀出口分布条件下。目前的研究几乎没有注意到弯曲管道和蜗壳之间的耦合相互作用下的稳定初始位置及其形成过程。在本文中,比较了入口弯曲管的两个安装角度,比较了停滞初始过程,包括115°(M1)和295°(M2)型号。蜗壳舌和弯头轴向平面之间的圆周角接近型号M1中的叶片通道宽度,并且型号M2具有与M1相反的安装角度。由弯曲管道引起的模型M1入口低总压力区域,并且由蜗壳舌引起的出口高静压区域在一起在115°位置处影响相同的叶轮通道,导致前沿溢出。模型M1的耦合效果加速了失速的过程。然而,模型M​​2的低总压力区域位于圆周295°点,高静态出口压力影响115°叶轮,导致与模型M1相比不同的失速初始位置和过程。前缘溢出首先发生在295°位置,因为入口失真,并且由于由蜗壳舌头诱导的出口高压区域的反向传播,第二溢出物出现在115°位置。与型号M1相比,模型M2的档位形成相对较慢。同时,由于再循环流动,静态温度急剧上升,并且在失速过程期间溢出区域处的轴向速度显着下降。这些结果表明,低总入口压力和高出口静压之间的耦合相互作用在离心式压缩机入口处共同确定了停滞初始位置及其过程。

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