首页> 外文会议>ASME (American Society of Mechanical Engineers) Turbo Expo 2002: Turbomachinery >UNSTEADY FLOW SIMULATIONS OF A TRANSONIC NOZZLE AND CASCADE FOR A TIME-DEPENDENT BOUNDARY FLOW
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UNSTEADY FLOW SIMULATIONS OF A TRANSONIC NOZZLE AND CASCADE FOR A TIME-DEPENDENT BOUNDARY FLOW

机译:时变边界流的跨声场和级联非定常流动模拟

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In this study we investigate unsteady compressible internal flow caused by flow fluctuations at an inlet or outlet flow-boundary. A finite-volume time-marching method has been developed for the unsteady flow analysis. This paper presents the proposed method and reports the results of a numerical investigation into the effects of a time-varying back pressure to a two-dimensional transonic nozzle and of a pulsating inlet flow to a transonic three-dimensional cascade of tapered blades. The computational model is based on a solution of the unsteady Euler equations for compressible flow. The time accurate solution is advanced by an explicit single-step second order time integration scheme. It has been found that the flow fluctuations at flow boundaries can cause strong unsteady effects on the operation of nozzles and cascades. Two modes of operation have been predicted for the unsteady flow in the nozzle: an upstream moving shock wave (mode-A) and an oscillating shock wave (mode-B). The results for the cascade have shown that the pulsating inlet flow causes the shock wave to originate, to move upstream and weaken over the period; the supersonic region on the blade surface varies continuously. The instantaneous mass flow rates and shock motions have been determined for them; they are important for their design and performance calculations.
机译:在这项研究中,我们研究了由入口或出口流动边界处的流动波动引起的不稳定的可压缩内部流动。对于非定常流动分析,已经开发了一种有限体积的时间步长方法。本文介绍了所提出的方法,并报告了对二维跨音速喷嘴时变背压和锥形叶片跨音速三维级联的脉动入口流的影响进行数值研究的结果。该计算模型基于可压缩流的非定常Euler方程的解。通过明确的单步二阶时间积分方案提高了时间精确解决方案。已经发现,在流动边界处的流动波动可对喷嘴和叶栅的操作造成强烈的不稳定影响。对于喷嘴中的非恒定流,已经预测了两种工作模式:上游移动冲击波(模式A)和振荡冲击波(模式B)。级联的结果表明,脉动的进气流会引起冲击波产生,并在此期间向上游移动并减弱。叶片表面的超音速区域连续变化。已经确定了它们的瞬时质量流率和冲击运动。它们对于设计和性能计算很重要。

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