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Coupling heat transfer and large eddy simulation for combustion instability prediction in a swirl burner

机译:耦合传热与大涡模拟在旋流燃烧器燃烧不稳定性预测中的应用

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Large eddy simulations (LES) of combustion instabilities are often performed with simplified thermal wall boundary conditions, typically adiabatic walls. However, wall temperatures directly affect the gas temperatures and therefore the sound speed field. They also control the flame itself, its stabilization characteristics and its response to acoustic waves, changing the flame transfer functions (FTFs) of many combustion chambers. This paper presents an example of LES of turbulent flames fully coupled to a heat conduction solver providing the temperature in the combustor walls. LES results obtained with the fully coupled approach are compared to experimental data and to LES performed with adiabatic walls for a swirled turbulent methane/air burner installed at Engler-Bunte-Institute, Karlsruhe Institute of Technology and German Aerospace Center (DLR) in Stuttgart. Results show that the fully coupled approach provides reasonable wall temperature estimations and that heat conduction in the combustor walls strongly affects both the mean state and the unstable modes of the combustor. The unstable thermoacoustic mode observed experimentally at 750 Hz is captured accurately by the coupled simulation but not by the adiabatic one, suggesting that coupling LES with heat conduction solvers within combustor walls may be necessary in other configurations in order to capture flame dynamics. (C) 2018 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:燃烧不稳定性的大涡模拟(LES)通常是在简化的热壁边界条件(通常是绝热壁)下进行的。但是,壁温直接影响气体温度,进而影响声速场。它们还控制火焰本身,火焰的稳定特性及其对声波的响应,从而改变了许多燃烧室的火焰传递函数(FTF)。本文介绍了一个LES湍流火焰完全耦合到热传导解算器的示例,从而在燃烧室壁中提供了温度。将完全耦合方法获得的LES结果与实验数据进行比较,并与绝热壁进行的LES进行了对比。绝热壁对安装在斯图加特Engler-Bunte-Institute,卡尔斯鲁厄技术学院和德国航空航天中心(DLR)的涡流甲烷/空气燃烧器进行了分析。结果表明,完全耦合方法可提供合理的壁温估算值,并且燃烧室壁中的热传导会强烈影响燃烧室的平均状态和不稳定模式。在750 Hz的实验下观察到的不稳定的热声模式可以通过耦合模拟准确地捕获,而不是通过绝热模拟准确捕获,这表明在其他配置中可能需要将LES与燃烧室壁内的热传导求解器耦合才能捕获火焰动力学。 (C)2018年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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