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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Buoyancy-Induced Flow in Open Rotating Cavities
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Buoyancy-Induced Flow in Open Rotating Cavities

机译:开式旋转腔中的浮力引起的流量

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Buoyancy-induced flow can occur in the cavity between the co-rotating compressor disks in gas-turbine engines, where the Rayleigh numbers can be in excess of 10~12. In most cases the cavity is open at the center, and an axial throughflow of cooling air can interact with the buoyancy-induced flow between the disks. Such flows can be modeled, computationally and experimentally, by a simple rotating cavity with an axial flow of air. This paper describes work conducted as part of ICAS-GT, a major European research project. Experimental measurements of velocity, temperature, and heat transfer were obtained on a purpose-built experimental rig, and these results have been reported in an earlier paper. In addition, 3D unsteady CFD computations were carried out using a commercial code (Fluent) and a RNG k-e turbulence model. The computed velocity vectors and contours of temperature reveal a flow structure in which, as seen by previous experimenters, "radial arms" transport cold air from the center to the periphery of the cavity, and regions of cyclonic and anticyclonic circulation are formed on either side of each arm. The computed radial distribution of the tangential velocity agrees reasonably well with the measurements in two of the three cases considered here. In the third case, the computations significantly overpredict the measurements; the reason for this is not understood. The computed and measured values of Nu for the heated disk show qualitatively similar radial distributions, with high values near the center and the periphery. In two of the cases, the quantitative agreement is reasonably good; in the third case, the computations significantly underpredict the measured values.
机译:在燃气涡轮发动机的同向旋转压缩机盘之间的空腔中会发生浮力产生的流动,其中瑞利数可能会超过10〜12。在大多数情况下,空腔在中心处是敞开的,并且冷却空气的轴向通流可以与圆盘之间的浮力引起的流相互作用。这样的流动可以通过具有轴向空气流动的简单旋转腔在计算和实验上建模。本文介绍了作为ICAS-GT(欧洲一项重大研究项目)的一部分而开展的工作。在专用实验设备上获得了速度,温度和传热的实验测量结果,这些结果已在较早的论文中进行了报道。此外,使用商业代码(Fluent)和RNG k-e湍流模型进行了3D非稳态CFD计算。计算出的速度矢量和温度轮廓线揭示了一种流动结构,如先前的实验人员所见,“径向臂”将冷空气从中心向腔体的外围传输,并且在两侧形成了旋风和反旋风循环区域每条手臂。计算出的切线速度的径向分布与此处考虑的三种情况中的两种情况下的测量值相当吻合。在第三种情况下,计算结果大大高估了测量结果。原因尚不清楚。加热盘的Nu的计算值和测量值在质量上显示出相似的径向分布,在中心和外围附近具有较高的值。在两种情况下,定量协议相当合理。在第三种情况下,计算结果大大低估了测量值。

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