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Direct Numerical Simulation of Rotating Cavity Flows Using a Spectral Element-Fourier Method

机译:光谱元素-傅里叶法直接模拟旋转腔流

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A high-order numerical method is employed to investigate flow in a rotorlstator cavity without heat transfer and buoyant flow in a rotor/rotor cavity. The numerical tool used employs a spectral element discretization in two dimensions and a Fourier expansion in the remaining direction, which is periodic and corresponds to the azimuthal coordinate in cylindrical coordinates. The spectral element approximation uses a Galerkin method to discretize the governing equations, but employs high-order polynomials within each element to obtain spectral accuracy. A second-order, semi-implicit, stiffly stable algorithm is used for the time discretization. Numerical results obtained for the rotorlstator cavity compare favorably with experimental results for Reynolds numbers up to Re_l =10~6 in terms of velocities and Reynolds stresses. The buoyancy-driven flow is simulated using the Boussinesq approximation. Predictions are compared with previous computational and experimental results. Analysis of the present results shows close correspondence to natural convection in a gravitational field and consistency with experimentally observed flow structures in a water-filled rotating annulus. Predicted mean heat transfer levels are higher than the available measurements for an air-filled rotating annulus, but in agreement with correlations for natural convection under gravity.
机译:采用高阶数值方法研究转子-定子腔中的流动,而没有热传递和转子/转子腔中的浮力。所使用的数值工具在二维方向上使用光谱元素离散化,并且在剩余方向上进行傅立叶展开,该方向是周期性的,并且对应于圆柱坐标中的方位角坐标。频谱元素近似使用Galerkin方法离散化控制方程,但在每个元素内采用高阶多项式来获得频谱精度。时间离散化使用二阶,半隐式,刚性稳定算法。就速度和雷诺应力而言,转子定子腔获得的数值结果与雷诺数高达Re_l = 10〜6的实验结果相吻合。使用Boussinesq逼近来模拟浮力驱动的流动。将预测结果与以前的计算和实验结果进行比较。对当前结果的分析表明,它与重力场中的自然对流密切相关,并且与充水旋转环中实验观察到的流动结构保持一致。预测的平均热传递水平高于充气旋转环的可用测量值,但与重力作用下自然对流的相关性一致。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2017年第7期|072602.1-072602.10|共10页
  • 作者单位

    Department of Mechanical Engineering Sciences, Thermo-Fluid Systems University Technology Centre, University of Surrey, Guildford, UK;

    Department of Mechanical Engineering Sciences, Thermo-Fluid Systems University Technology Centre, University of Surrey, Guildford, UK;

    Department of Mechanical Engineering Sciences, University of Surrey, Guildford, UK;

    Department of Mechanical Engineering Sciences, Thermo-Fluid Systems University Technology Centre, University of Surrey, Guildford, UK;

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