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THE PREDICTION AND MEASUREMENT OF INCOMPRESSIBLE FLOW IN A LABYRINTH SEAL (TURBULENCE MODELING, SWIRL-FLOW).

机译:Labyrinth密封中不可压缩流动的预测和测量(湍流建模,旋流)。

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摘要

A computational/experimental study was conducted on the incompressible flow in a labyrinth seal at a variety of leakage rates and seal rotation rates. The predictions were obtained using a finite difference code that utilized QUICK differencing to minimize the effects of false diffusion. Measured inlet boundary conditions for the axial and swirl velocity components as well as turbulence kinetic energy were employed. Considering the complexity of the flowfield, this yielded fair agreement between velocity predictions and the hot film measurements. The resulting computer code may be used to simulate, and in turn, improve labyrinth seal designs.; The effects of leakage rate and seal rotation rate on the overall pressure drop are presented in terms of a loss coefficient. It was determined that when the rotation rate is increased beyond a certain point compared to the leakage rate, a second recirculation zone (SRZ) forms inside the seal cavity. This dramatically alters the flowfield in the seal and results in a substantial increase in the pressure drop across the seal. A flow map is presented indicating the approximate rotation rate required to produce this phenomenon at a given leakage rate. Unfortunately for most practical applications, the SRZ will not form until a prohibitively large shaft speed is reached.; Also included in this study are the predicted distributions of the important flowfield quantities and the effects that leakage and rotation rate have on them. Both predicted and measured profiles are presented for the axial and swirl velocity components and turbulent kinetic energy.
机译:对迷宫式密封中的不可压缩流在各种泄漏率和密封旋转率下进行了计算/实验研究。这些预测是使用有限差分代码获得的,该差分差分代码利用QUICK差分技术将虚假扩散的影响降至最低。使用了测量的轴向和涡旋速度分量的入口边界条件以及湍流动能。考虑到流场的复杂性,这在速度预测和热膜测量之间产生了合理的一致性。所得的计算机代码可用于模拟,进而改善迷宫式密封设计。泄漏率和密封件转速对总压降的影响以损耗系数表示。已确定,当转速比泄漏率增加到某个点以上时,在密封腔内会形成第二回流区(SRZ)。这极大地改变了密封件中的流场,并导致整个密封件上的压降大大增加。给出了流程图,指示在给定泄漏率下产生此现象所需的近似转速。不幸的是,对于大多数实际应用而言,只有在达到极大的轴转速之前,才会形成SRZ。这项研究还包括重要流场数量的预测分布以及泄漏和转速对其的影响。给出了轴向和旋流速度分量以及湍动能的预测和实测轮廓。

著录项

  • 作者

    DEMKO, JONATHAN ALEXANDER.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1986
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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