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Detached eddy simulation of turbulent flow and heat transfer in a two-pass internal cooling duct

机译:两通道内部冷却管道中湍流和传热的分离涡流模拟

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摘要

Numerical predictions of a hydrodynamic and thermally developed turbulent flow are presented for a stationary duct with square ribs aligned normal to the main flow direction. The rib height to channel hydraulic diameter (e/D_h) is 0.1, the rib pitch to rib height (P/e) is 10 and the calculations have been carried out for a bulk Reynolds number of 20,000. The capability of the detached eddy simulation (DES) version of the 1988 k-ω model has been validated in predicting the turbulent flow field and the heat transfer in a complete two pass channel. Results of mean flow quantities, secondary flows, friction and heat transfer are compared to experiments and large-eddy simulations (LES). It is concluded that in spite of shortcomings in predicting transition correctly at the entrance to the duct, DES surpasses the base capability of the underlying RANS model and predicts flow and heat transfer with good accuracy in a flow which is dominated by separation and reattachment of shear layers, unsteady vortex induced secondary motions, and strong streamline curvature. In all aspects it reproduces the correct physics and shows good quantitative comparisons with LES and experiments while reducing the computational complexity by nearly an order of magnitude.
机译:提出了具有固定垂直于主流动方向的方肋的固定管道的流体动力和热发展湍流的数值预测。肋骨高度与通道水力直径(e / D_h)为0.1,肋骨螺距与肋骨高度(P / e)为10,并且已针对20,000雷诺数进行了计算。 1988k-ω模型的分离涡流模拟(DES)版本的能力已在预测完整的两程通道内的湍流场和传热中得到了验证。将平均流量,二次流量,摩擦和热传递的结果与实验和大涡流模拟(LES)进行了比较。结论是,尽管在正确预测管道入口处的过渡方面存在缺陷,但DES仍超过了基础RANS模型的基本能力,并且在以剪切力的分离和重新附着为主导的流动中,能够很好地预测流动和传热。层,不稳定的涡流引起的二次运动以及强烈的流线曲率。它在所有方面都再现了正确的物理原理,并与LES和实验进行了良好的定量比较,同时将计算复杂度降低了近一个数量级。

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