首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >EXPERIMENTAL AND NUMERICAL ANALYSIS OF THE SECONDARY FLOW ACROSS THE INTERPHASE BALANCE DRUM OF A HIGH PRESSURE BACK-TO-BACK CENTRIFUGAL COMPRESSOR
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EXPERIMENTAL AND NUMERICAL ANALYSIS OF THE SECONDARY FLOW ACROSS THE INTERPHASE BALANCE DRUM OF A HIGH PRESSURE BACK-TO-BACK CENTRIFUGAL COMPRESSOR

机译:高压背靠背离心压缩机相间平衡鼓二次流的实验与数值分析

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With the major aim of gathering information on the machine lateral stability in high pressure-high density conditions, and of assessing the prediction capabilities of the in-house design tools and overall process, a back-to-back centrifugal compressor has been instrumented and tested in several operating conditions. The present paper focuses on the secondary flows across the interphase balance drum of the back-to-back compressor, where the sealing is accomplished with a honeycomb seal. The compressor interphase section has been instrumented with dedicated special probes for the clearance measurement associated to pressure and flow angle probes in order to characterize pressure distributions and swirl variations depending on the specific operating range. The experimental data acquired over the machine operation have been compared with a three-dimensional steady-state numerical analysis results obtained from the simulation, carried out with a Reynolds averaged Navier-Stokes (RANS) approach, of the flowfield in the complex interphase secondary system composed by the impeller cavities and the honeycomb seal. This paper addresses the comparison between numerical results and experimental data, which allowed the matching of models with experiments in terms of pressure distribution and the complex flowfield. Finally, all the data have been used to validate an in-house one-dimensional flow network solver for pressure distribution and leakage flow calculations along cavities and seals. Results have shown a general good agreement between measured data and calculation output. In particular, computational fluid dynamic analysis provided detailed pressure and velocity distributions that allowed gaining insight in the physics of such a complex region. The one-dimensional model has been demonstrated to be a fast and reliable tool to well predict local pressure variations inside cavities and seals and, consequently, the residual axial thrust.
机译:为了收集有关高压-高密度条件下机器横向稳定性的信息,并评估内部设计工具和整个过程的预测能力,我们对背对背式离心压缩机进行了测试和测试。在几种操作条件下。本文着重研究了背靠背压缩机的相间平衡鼓中的二次流,其中通过蜂窝密封实现了密封。压缩机相间部分装有专用的专用探头,用于测量与压力和流量角探头相关的间隙,以便根据特定的工作范围来表征压力分布和涡旋变化。机器操作过程中获得的实验数据已与三维稳态数值分析结果进行了比较,该结果是通过使用雷诺平均Navier-Stokes(RANS)方法对复杂相间二次系统中的流场进行仿真获得的由叶轮腔和蜂窝密封件组成。本文讨论了数值结果和实验数据之间的比较,这使得模型可以在压力分布和复杂流场方面与实验进行匹配。最后,所有数据已用于验证内部一维流动网络求解器,用于沿空腔和密封的压力分布和泄漏流量计算。结果表明,测量数据与计算输出之间总体上具有良好的一致性。特别是,计算流体动力学分析提供了详细的压力和速度分布,从而使您能够洞悉这种复杂区域的物理原理。一维模型已被证明是一种快速可靠的工具,可以很好地预测腔体和密封件内部的局部压力变化,从而预测残余轴向推力。

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