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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Redesign of a Compressor Stage for a High-Performance Electric Supercharger in a Heavily Downsized Engine
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Redesign of a Compressor Stage for a High-Performance Electric Supercharger in a Heavily Downsized Engine

机译:重新设计大型紧凑型发动机中高性能电动增压器的压缩机级

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Engine downsizing is a modern solution for the reduction of CO 2 emissions from internal combustion engines. This technology has been gaining increasing attention from industry. In order to enable a downsized engine to operate properly at low speed conditions, it is essential to have a compressor stage with very good surge margin. The ported shroud, also known as the casing treatment, is a conventional way used in turbochargers to widen the working range. However, the ported shroud works effectively only at pressure ratios higher than 3:1. At lower pressure ratio, its advantages for surge margin enhancements are very limited. The variable inlet guide vanes are also a solution to this problem. By adjusting the setting angles of variable inlet guide vanes, it is possible to shift the compressor map toward the smaller flow rates. However, this would also undermine the stage efficiency, require extra space for installing the inlet guide vanes, and add costs. The best solution is therefore to improve the design of impeller blade itself to attain high aerodynamic performances and wide operating ranges. This paper reports a recent study of using inverse design method for the redesign of a centrifugal compressor stage used in an electric supercharger, including the impeller blade and volute. The main requirements were to substantially increase the stable operating range of the compressor in order to meet the demands of the downsized engine. The three-dimensional (3D) inverse design method was used to optimize the impeller geometry and achieve higher efficiency and stable operating range. The predicted performance map shows great advantages when compared with the existing design. To validate the computational fluid dynamics (CFD) results, this new compressor stage has also been prototyped and tested. It will be shown that the CFD predictions have very good agreement with experiments and the redesigned compressor stage has improved the pressure ratio, aerodynamic efficiency, choke, and surge margins considerably.
机译:发动机小型化是减少内燃机CO 2 排放的现代解决方案。这项技术已经越来越受到业界的关注。为了使尺寸缩小的发动机能够在低速条件下正常运行,必不可少的压缩机级必须具有非常好的喘振裕度。带孔的护罩,也称为套管处理,是涡轮增压器中用于扩大工作范围的常规方法。但是,带孔罩仅在高于3:1的压力比时才有效工作。在较低的压力比下,其增加喘振裕度的优势非常有限。可变的进口导向叶片也是解决该问题的方法。通过调节可变进口导流叶片的设定角度,可以使压缩机位置图朝较小的流量方向移动。但是,这也将降低工作台效率,需要额外的空间来安装进口导向叶片,并增加成本。因此,最好的解决方案是改进叶轮叶片本身的设计,以实现较高的空气动力学性能和较宽的工作范围。本文报道了使用逆设计方法对电动增压器(包括叶轮叶片和蜗壳)中使用的离心压缩机级进行重新设计的最新研究。主要要求是充分增加压缩机的稳定工作范围,以满足小型化发动机的需求。三维(3D)逆向设计方法用于优化叶轮几何形状并实现更高的效率和稳定的工作范围。与现有设计相比,预测的性能图显示出很大的优势。为了验证计算流体动力学(CFD)结果,还对这种新的压缩机级进行了原型设计和测试。结果表明,CFD预测与实验非常吻合,重新设计的压缩机级大大提高了压力比,空气动力效率,节流阀和喘振裕度。

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