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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >Stall inception induced by the volute tongue at centrifugal compressor inlet
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Stall inception induced by the volute tongue at centrifugal compressor inlet

机译:离心压缩机入口处的蜗壳舌引起的失速开始

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The stall and surge directly impact on the safety and reliability of compressors. The spike-type and modal-type stall inception exist in compressors. At present, few studies pay attention to the stall inception of centrifugal compressor, such as the formation reason for the stall inception and the action by the volute tongue on the stall precursor. This paper investigated the stall characteristics of a high-speed small-flow centrifugal compressor and illustrated the relationship between the volute tongue and the location of stall inception. In addition, the mechanism of stall inception was also clarified. Both the analysis of initial flow structures and the comparison of the frequency spectrum characteristics at different monitoring points show that the spike-type stall occurs at about 115 degrees circumferential position in this centrifugal compressor. The nonaxisymmetric geometry structure of the volute leads to the uneven circumferential pressure distribution. The blockade effect of the volute tongue results in high static pressure area near the volute tongue. The disturbance caused by high static pressure adversely propagates into the diffuser, resulting in the static pressure peak value at different radii. As the pressure peaks adversely migrate to the impeller inlet and induce the leading edge spillover near the corresponding blade, the spike-type stall occurs. Therefore, the volute tongue both induces the stall inception and determines the circumferential position of the stall inception at the centrifugal compressor inlet.
机译:失速和喘振直接影响压缩机的安全性和可靠性。压缩机中存在尖峰型和模态型失速开始。目前,很少有研究关注离心压缩机的失速开始,例如失速开始的形成原因和蜗壳舌对失速前体的作用。本文研究了高速小流量离心压缩机的失速特性,并阐明了蜗壳舌与失速起始位置之间的关系。此外,还阐明了失速开始的机制。初始流动结构的分析和在不同监测点的频谱特性的比较都表明,在这种离心压缩机中,尖峰型失速发生在大约115度的圆周位置。蜗壳的非轴对称几何结构导致圆周压力分布不均匀。蜗舌的阻挡作用导致蜗舌附近具有较高的静压力区域。高静压引起的扰动不利地传播到扩散器中,导致静压峰值处于不同半径。当压力峰值不利地迁移到叶轮入口并在相应的叶片附近引起前缘溢出时,就会出现尖峰型失速。因此,蜗壳舌既引起失速开始,又确定了离心压缩机入口处的失速开始的圆周位置。

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