燃气轮机模型燃烧器的大涡模拟和基于投影的降阶建模挑战

IF 1.4 4区 工程技术 Q3 ENGINEERING, MECHANICAL
Nicholas Arnold-Medabalimi, Cheng Huang, K. Duraisamy
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引用次数: 3

摘要

由于混沌的多尺度物理和声学、水动力和化学过程之间复杂的非线性相互作用,燃气轮机燃烧的计算高效建模具有挑战性。采用基于火焰的方法对燃气轮机模型燃烧室湍流燃烧效应进行了全阶模型(FOM)大涡模拟。模态分析揭示了与平均和瞬时高频粒子图像测速场的高度相关性。利用动态模态分解方法定量表征了涡芯的动态特性。将FOM的控制方程投影到低维线性流形上,构造了一个降阶模型(ROM)。采用离散一致最小二乘投影保证全局稳定性。ROM提供了训练区域内燃烧动力学的精确重建,但在未来状态预测方面面临重大挑战。这种限制主要是由于增加的投影误差,这反过来又是流场高度混沌性质的直接后果,涉及大范围的分散相干结构。使用自适应基方法克服了这一缺点,该方法产生了与FOM一致的训练区域以外的准确动态预测。正式的基于投影的rom尚未应用于这种规模和复杂性的问题,实现准确和高效的rom是一个巨大的挑战问题。生产就绪的ROM方法将显著降低火焰动力学的计算成本,以及这种预测的可移植性到较小规模的计算机。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Large-eddy simulation and challenges for projection-based reduced-order modeling of a gas turbine model combustor
Computationally efficient modeling of gas turbine combustion is challenging due to the chaotic multi-scale physics and the complex non-linear interactions between acoustic, hydrodynamic, and chemical processes. A large-eddy simulation, referred to as the full order model (FOM), is performed for a gas turbine model combustor with turbulent combustion effects modeled using a flamelet-based method. Modal analysis reveals a high degree of correlation with averaged and instantaneous high-frequency particle image velocimetry fields. The dynamics of the precessing vortex core is quantitatively characterized using dynamic mode decomposition. The governing equations of the FOM are projected onto a low-dimensional linear manifold to construct a reduced-order model (ROM). A discretely-consistent least squares projection is used to guarantee global stability. The ROM provides an accurate reconstruction of the combustion dynamics within the training region, but faces a significant challenge in future state predictions. This limitation is mainly due to the increased projection error, which in turn is a direct consequence of the highly chaotic nature of the flow field, involving a wide range of dispersed coherent structures. This shortcoming is overcome using an adaptive basis method which yields accurate predictions of dynamics beyond the training region consistent with the FOM. Formal projection-based ROMs have not been applied to a problem of this scale and complexity, and achieving accurate and efficient ROMs is a grand challenge problem. A production-ready ROM method will significantly decrease the computational cost of the flame dynamics as well as the portability of this prediction to smaller-scale computers.
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来源期刊
International Journal of Spray and Combustion Dynamics
International Journal of Spray and Combustion Dynamics THERMODYNAMICS-ENGINEERING, MECHANICAL
CiteScore
2.20
自引率
12.50%
发文量
21
审稿时长
>12 weeks
期刊介绍: International Journal of Spray and Combustion Dynamics is a peer-reviewed open access journal on fundamental and applied research in combustion and spray dynamics. Fundamental topics include advances in understanding unsteady combustion, combustion instability and noise, flame-acoustic interaction and its active and passive control, duct acoustics...
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