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AERODYNAMIC DESIGN AND OPTIMIZATION OF PIPE DIFFUSER FOR A HIGH-LOADING CENTRIFUGAL COMPRESSOR

机译:高负荷离心式压缩机管道空气扩散器的气动设计与优化

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Pipe diffuser draws more attentions these years as the stage pressure ratio and loads grow, since it is known that the pipe diffuser has a superior performance to the traditional vane diffuser as the diffuser inlet flow field is transonic or supersonic. Generally speaking, when the pressure ratio is high enough to give rise to the emergence of a critical cross-section, it would usually be in the diffuser, closing to the leading edge other than in the impeller. Therefore, the diffuser would have a significant impact on stage choke margin and its performance while be difficult to design and to match the impeller with satisfaction. To address the problem, a preliminary geometry design method for pipe diffuser is presented in this paper. In this paper, the performance and flow field analysis are based on numerical simulation carried out by Numeca, a commercial simulation software. For verified the calculated results' reliability and grid independence, corresponding calculations and comparisons are conducted and discussed. Then, the performance of stage with pipe diffuser is compared with the stage with vane diffuser. Next, the specific effects of incidence on the performance and flow field are analyzed and discussed respectively. At last, an optimized aerodynamic structure of pipe diffuser is presented. As shown in the CFD results, the stage peak isentropic efficiency can reach up to 83.65% with the stage total pressure ratio slightly increased from 6.50 to 6.78, which means 4.29% of isentropic efficiency was raised by substituting the pipe diffuser for the vane diffuser.
机译:近年来,随着级压比和负载的增加,管道扩散器引起了更多的关注,因为众所周知,由于扩散器入口流场是跨音速的或超音速的,因此管道扩散器的性能要优于传统的叶片扩散器。一般而言,当压力比足够高以导致出现临界横截面时,通常会在扩散器中,靠近叶轮而不是叶轮的前缘。因此,扩散器将对级扼流圈裕度及其性能产生重大影响,同时难以设计并使叶轮满意。为了解决这个问题,本文提出了一种用于扩压器的初步几何设计方法。在本文中,性能和流场分析基于商业仿真软件Numeca进行的数值模拟。为了验证计算结果的可靠性和网格独立性,进行了相应的计算和比较。然后,将带有扩压器的平台与带扩压器的平台的性能进行比较。接下来,分别分析和讨论入射对性能和流场的特定影响。最后,提出了一种优化的空气扩散器空气动力学结构。如CFD结果所示,级峰值等熵效率可以达到83.65%,级总压力比从6.50略微增加到6.78,这意味着通过用管式扩散器代替叶片扩散器可以提高4.29%的等熵效率。

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