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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Transient heat transfer between a turbulent lean partially premixed flame in limit cycle oscillation and the walls of a can type combustor
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Transient heat transfer between a turbulent lean partially premixed flame in limit cycle oscillation and the walls of a can type combustor

机译:极限循环振荡中的湍流稀薄的部分预混火焰与罐式燃烧器壁之间的瞬态热传递

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In this paper transient fluid-structure thermal analyses of the Limousine test rig have been conducted while the combustor was exposed to saturated amplitude limit cycle combustion oscillations (LCO). The heat transfer between hot combustion gases and the liner wall cooled by convection will affect thermoacoustic instabilities, and therefore the relevance of prediction of the transient heat transfer rate in gas turbine combustors is explored. The commercial CFD code ANSYS CFX is used to analyze the problem. Fluid and solid regions are resolved simultaneously in a monolithical approach with application of a finite volume approach. Since the spatial scales of the solid temperature profiles are different in case of steady state and transient oscillatory heat transfer, special care has to be taken in the meshing strategy. It is shown that for the transient oscillatory heat transfer in to the solid in LCO operation, the mesh distribution and size of the grid in the solid part of the domain will play a very important role in determining the magnitude for the heat flow in the solid and the gas pressure fluctuations, and the grid resolution needs to be adapted to the thermal penetration depth. Moreover, compared to the calculations of only the fluid domain with adiabatic/isothermal boundary wall conditions, the results demonstrated that application of the Conjugated Heat Transfer (CHT) model leads to significant accuracy improvements in the prediction of the characteristics of the combustion instability. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在本文中,在燃烧器暴露于饱和振幅极限循环燃烧振荡(LCO)的情况下,对豪华轿车试验台进行了瞬态流体结构热分析。热燃烧气体与通过对流冷却的衬里壁之间的传热会影响热声不稳定性,因此,探索了预测燃气轮机燃烧器瞬态传热速率的相关性。商业CFD代码ANSYS CFX用于分析问题。通过应用有限体积方法,以单片方法同时解析流体和固体区域。由于在稳态和瞬态振荡传热的情况下,固体温度曲线的空间尺度是不同的,因此在啮合策略中必须格外小心。结果表明,对于在LCO操作中向固体中的瞬时振荡传热,畴的固体部分中网格的网格分布和尺寸将在确定固体中热流的大小方面起非常重要的作用。气压波动和网格分辨率需要适应热穿透深度。此外,与仅用绝热/等温边界壁条件进行的流体域计算相比,结果表明,共轭传热(CHT)模型的应用可显着提高燃烧不稳定性特征的预测精度。 (C)2015 Elsevier Ltd.保留所有权利。

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