首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >Numerical Simulation of a Turbulent Flow Over a Backward Facing Step With Heated Wall-Effect of Pulsating Velocity and Oscillating Wall
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Numerical Simulation of a Turbulent Flow Over a Backward Facing Step With Heated Wall-Effect of Pulsating Velocity and Oscillating Wall

机译:脉动速度和振荡壁对壁面受热影响的后向台阶湍流流动的数值模拟

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摘要

An accurate prediction of the flow and the thermal boundary layer is required to properly simulate gas to wall heat transfer in a turbulent flow. This is studied with a view to application to gas turbine combustors. A typical gas turbine' combustion chamber flow presents similarities with the well-studied case of turbulent flow over a backward facing step, especially in the near-wall regions where the heat transfer phenomena take place. However, the combustion flow in a gas turbine engine is often of a dynamic nature and enclosed by a vibrating liner. Therefore apart from steady state situations, cases with an oscillatory inlet flow and vibrating walls are investigated. Results of steady state and transient calculations for the flow field, friction coefficient, and heat transfer coefficient, with the use of various turbulence models, are compared with literature data. It has been observed that the variations in the excitation frequency of the inlet flow and wall vibrations have an influence on the instantaneous heat transfer coefficient profile. However, significant effect on the time mean value and position of the heat transfer peak is only visible for the inlet velocity profile fluctuations with frequency approximately equal to the turbulence bursting frequency.
机译:需要正确预测流动和热边界层,以正确模拟湍流中气体到壁的热传递。为了应用于燃气轮机燃烧器,对此进行了研究。典型的燃气轮机燃烧室流动与经过深入研究的湍流在后向台阶上的情况相似,特别是在发生传热现象的近壁区域。然而,燃气涡轮发动机中的燃烧流通常是动态的,并且被振动衬套包围。因此,除了稳态情况之外,还研究了入口流量振荡和振动壁的情况。使用各种湍流模型,对流场,摩擦系数和传热系数的稳态和瞬态计算结果与文献数据进行了比较。已经观察到,入口流的激发频率和壁振动的变化对瞬时传热系数分布有影响。但是,只有当进气速度曲线的波动频率大约等于湍流爆裂频率时,才能看到对传热峰的时间平均值和位置的重大影响。

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