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On the permissibility of approximating irregular cavity geometries by rectangular boxes and cylinders

机译:关于矩形箱和圆柱近似不规则腔几何形状的允许性

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A general procedure for the three dimensional analysis of a gas cavity by the concept of four pole parameters has been developed by Kim and Soedel [1]; the procedure was later extended by Lai and Soedel [2] to two dimensional analysis, which is more efficient in computation than the 3-D analysis method and can solve some geometries which are difficult to solve by the 3-D method. In this study, the above procedures are applied to a realistic compressor head with irregular corners, flow obstacles, and a bullet shaped muffler by idealized rectangular box and circular cylinder approximations. The experimental tests are performed, discussed in this paper, and compared to the simulation results. The comparisons demonstrate the limitations of an overly idealized theoretical shape analysis for practical applications. Certain response frequencies which shift between idealized theory and experimental data are traced to certain acoustic path constrictions in the compressor head and the muffler which result in a geometric deviation from the idealized box and bullet shapes. It is concluded that while idealized shape approximations are useful for a qualitative understanding of gas pulsation muffling behavior, precise geometric modeling is needed for precise predictions. Or one has to rely on transfer function measurements.
机译:通过Kim和Soedel开发了通过四极参数的概念对气腔的三维分析的一般程序已经开发出来[1];该程序后来被Lai和Soedel [2]延伸到二维分析,在计算中比三维分析方法更有效,并且可以通过3-D方法解决一些难以解决的几何形状。在该研究中,上述方法应用于具有不规则角,流量障碍物,流量障碍物的现实压缩机头,通过理想化的矩形盒和圆柱近似的子弹形消声器。在本文中讨论了实验测试,并与模拟结果相比。比较展示了实际应用的过于理想理论形状分析的局限性。某些响应频率在理想化理论和实验数据之间转移的响应频率被追踪到压缩机头部和消声器中的某些声学路径收缩,从而导致与理想盒和子弹形状的几何偏差。结论是,虽然理想化的形状近似对于对气体脉动消声行为的定性理解有用,但是精确的预测需要精确的几何建模。或者必须依赖传递函数测量。

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