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Comparative Study of Unsteady Flows in a Transonic Centrifugal Compressor with Vaneless and Vaned Diffusers

机译:无叶片和叶片扩散器的跨音速离心压缩机非定常流动的比较研究

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To reduce vibration and noise level, the impeller and diffuser blade numbers inside an industrial compressor are typically chosen without common divisors. The shapes of volutes or collectors in these compressors are also not axis-symmetric. When impeller blades pass these asymmetric structures, the flow field in the compressor is time-dependent and three-dimensional. To obtain a fundamental physical understanding of these three-dimensional unsteady flow fields and assess their impact on the compressor performance, the flow field inside the compressors needs to be studied as a whole to include asymmetric and unsteady interaction between the compressor components. In the current study, a unified three-dimensional numerical model was built for a transonic centrifugal compressor including impeller, diffusers, and volute. HFC 134a was used as the working fluid. The thermodynamic and transport properties of the refrigerant gas were modeled by the Martin-Hou equation of state and power laws, respectively. The three-dimensional unsteady flow field was simulated with a Navier-Stokes solver using the k -ε turbulent model. The overall performance parameters are obtained by integrating the field quantities. Both the unsteady flow field and the overall performance are analyzed comparatively for each component. The compressor was tested in a water chiller system instrumented to obtain both the overall performance data and local flow-field quantities. The experimental and numerical results agree well. The correlation between the overall compressor performance and local flow-field quantities is defined. The methodology developed and data obtained in these studies can be applied to the centrifugal compressor design and optimization.
机译:为了降低振动和噪音水平,通常选择工业压缩机内的叶轮和扩压器叶片数,而无需共用除数。这些压缩机中​​的蜗壳或收集器的形状也不是轴对称的。当叶轮叶片通过这些不对称结构时,压缩机中的流场是时间相关的并且是三维的。为了获得对这些三维非稳态流场的基本物理理解并评估它们对压缩机性能的影响,需要整体研究压缩机内部的流场,以包括压缩机组件之间的非对称和非稳态相互作用。在当前的研究中,为跨音速离心压缩机建立了统一的三维数值模型,包括叶轮,扩压器和蜗壳。 HFC 134a用作工作流体。分别利用状态定律和功率定律的马丁-侯方程对制冷剂气体的热力学和传输特性进行了建模。使用k-ε湍流模型,通过Navier-Stokes求解器模拟了三维非定常流场。整体性能参数是通过对现场数量进行积分获得的。比较不稳定的流场和整体性能的每个组件。在水冷系统中对压缩机进行了测试,该系统配备了水冷系统,可获取整体性能数据和本地流场数量。实验和数值结果吻合良好。定义了整体压缩机性能与局部流场数量之间的相关性。这些研究中开发的方法和获得的数据可以应用于离心压缩机的设计和优化。

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