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Comparing FEM Transfer Matrix Simulated Compressor Plenum Pressure Pulsations to Measured Pressure Pulsations and to CFD Results

机译:比较有限元转印矩阵模拟压缩机气内压力脉动测量压力脉动和CFD结果

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Improving efficiency of positive displacement compressors requires improving current computer compressor simulations to better model compressor behavior. This paper will specifically look at increasing fidelity of the 1D thermodynamic compressor simulation program by incorporating suction and discharge pulsations due to complex suction and discharge three dimensional (3D) plenum geometry. This method allows for quick pressure pulsation analysis and enables the design engineer to make changes early in the compressor development cycle. Finite Element Method (FEM) full harmonic analysis is used to calculate suction or discharge plenum's impedance transfer functions in the frequency domain. The impedance transfer functions are normalized to the FEM conditions and normalized impedance transfer functions are used to model all compressor operating speeds and operating conditions. The normalized impedance transfer functions are independent of mass flow, compressor speed, valve dynamics, sonic velocity, refrigerant density, refrigerant, bore size and stroke size which allow the 1D compressor simulation program to change any of these variables without have to solve for a new FEM impedance transfer function. We have also worked on a new way to include damping and phase shift between mass flow and pressure pulsations that better agrees with experimental and Computational Fluid Dynamics (CFD) results. Since some of this method is novel or may extend beyond the limits of linear acoustic analysis, it requires good agreement to compressor test results and to CFD results. The main part of the paper will show good agreement between simulated pressure pulsations to suction and discharge test results in a reciprocating compressor. The paper will also show our latest improvements in pulsation modeling to obtain better agreement to CFD results than the original comparison in Bilal et al. (2010).
机译:提高正排量压缩机的效率需要改善电流计算机压缩机模拟以更好的模型压缩机行为。本文将具体地通过在复杂抽吸和排出三维(3D)增压室几何形状引起的吸力和排放脉动来特别看一下1D热力学压缩机仿真程序的保真度。该方法允许快速压力脉动分析,使设计工程师能够在压缩机开发周期提前进行更改。有限元方法(FEM)全谐波分析用于计算频域中的吸入或放电增压室的阻抗传递函数。阻抗传递函数被标准化为FEM条件,并归一化阻抗传输函数用于建模所有压缩机操作速度和操作条件。归一化阻抗传递函数与质量流量,压缩机速度,阀门动力学,声速,制冷剂密度,制冷剂,孔径和行程尺寸无关,允许1D压缩机仿真程序更改任何这些变量,而无需为新的方式解决这些变量FEM阻抗传递函数。我们还曾在新的方式上工作,包括质量流量和压力脉动之间的阻尼和相移,更好地同意实验和计算流体动力学(CFD)结果。由于该方法中的一些是新颖的或者可以延伸超出线性声学分析的限制,因此需要良好的一致性对压缩机测试结果和CFD结果。本文的主要部分将在模拟压力脉动之间显示出良好的一致性,在往复式压缩机中产生往复式的压缩机。本文还将显示我们在脉动建模方面的最新改进,以获得比Bilal等人的原始比较更好地达成CFD结果。 (2010)。

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