arXiv:2409.05885cs.LGcs.CE2024-09被引 1

用少量仿真数据高效建模燃烧非线性响应,助力推进器声热稳定性分析。

Efficient nonlinear flame response modeling for propulsion thermoacoustic analysis using limited numerical data

  • 设计频扫+多幅值扰动数据,捕捉频率与振幅耦合效应
  • 双路径时序代理模型误差仅6.69%,覆盖72组测试案例
  • 适合需要快速稳定性分析的燃烧系统研发人员

表征非线性燃烧响应对预测推进燃烧室热声不稳定性至关重要,但通过高保真模拟获取完整响应图谱计算成本过高。本文提出一种数据驱动方法,仅需有限数值样本即可学习非线性燃烧响应动态。不同于需大量谐波激励仿真的传统方法,本研究设计了一组频扫-多幅值扰动数据集,以捕捉激励频率与幅值的耦合效应,从而高效建模流体扰动与释热率波动间的非线性输入输出关系。构建了双路径时序代理模型,在时域中同时保留全局响应趋势与局部非线性特征。在预混层流火焰的数值模拟验证中,该框架能准确预测宽范围强迫幅值与频率下的非线性单频响应,72个独立测试案例平均相对误差为6.69%。进一步采用改进的$n-τ$模型评估表明,增加训练数据多样性可更精确捕捉强非线性响应。本工作为构建非线性燃烧响应模型提供了高效替代方案,为推进器燃烧室快速热声稳定性分析提供了可行路径。

原文摘要 · Abstract (English)

Characterizing nonlinear flame response is critical for predicting thermoacoustic instabilities in propulsion combustors, yet obtaining a comprehensive response map through high-fidelity simulations remains computationally prohibitive. This study proposes a data-driven approach for learning nonlinear flame-response dynamics from limited numerical samples. Instead of requiring exhaustive harmonic-forcing simulations, a frequency-sweeping dataset with multiple perturbation amplitudes is designed to capture the coupled effects of excitation frequency and amplitude, enabling efficient learning of the nonlinear input-output relationship between flow perturbations and heat-release-rate fluctuations. A dual-path temporal surrogate model is developed to represent nonlinear response evolution in the time domain, where complementary temporal features are extracted to retain both global response trends and local nonlinear characteristics. The proposed framework is validated using numerical simulations of a laminar premixed flame. It accurately predicts nonlinear single-frequency responses over a wide range of forcing amplitudes and frequencies, with an average mean relative error of 6.69\% for 72 independent test cases. Further evaluation using a modified $n-τ$ model demonstrates that the framework can capture stronger nonlinear responses by increasing the diversity of the training data. This work provides an efficient alternative for constructing nonlinear flame-response models and offers a promising approach for rapid thermoacoustic stability analysis of propulsion combustors.

非线性建模热声分析数据驱动

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