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Improvement of the weighted multi-point (WMP) radiation model for diffusive flames by the application of a set of stochastic optimisation algorithms

机译:一组随机优化算法应用,改善扩散火焰的加权多点(WMP)辐射模型

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摘要

The weighted multi-point source model (WMP) has been proposed to model flame radiation from far to near distances, encompassing regions where the single point (SP) model cannot predict it adequately. To develop its formulation, the WMP has been studied as an inverse problem, being optimised to minimise the error between experimental and numerical data. Efficient optimisation methods are thus necessary, and a performance study applied to the WMP model is essential for its development. This study aims to evaluate which types of stochastic algorithms are the best for this problem and to improve the current radiation model comparing the results to those by previous studies. Five algorithms with different characteristics are chosen and tuned for the WMP problem with a design of experiments (DoE) methodology, and applied to each configuration of the model. The best performance was shown by the grey wolf optimiser (GWO), allying stability to fast convergence. The best solution improved previous results by 23.7%, and was also 82.72% better than the solution calculated with the SP model, and 76.24% better than the one calculated with the canonical WMP. A trend in radiation emission distribution is observed with results by previous studies, guiding better formulations in weight distribution.
机译:已经提出了加权多点源模型(WMP)以将火焰辐射模拟远离距离,包括单点(SP)模型不能充分预测的区域。为了开发其制定,已经研究了WMP作为逆问题,优化以最小化实验和数值数据之间的误差。因此,需要有效的优化方法,应用于WMP模型的性能研究对于其开发至关重要。本研究旨在评估哪种类型的随机算法是该问题的最佳选择,并改善当前辐射模型将结果与先前研究的结果进行比较。使用实验(DOE)方法的设计,选择和调整具有不同特征的五种具有不同特征的算法,并应用于模型的每个配置。灰狼优化器(GWO)显示了最佳性能,即可快速收敛的稳定性。最佳解决方案将先前的结果改善了23.7%,也比用SP型号计算的溶液更好地提高了82.72%,比用规范WMP计算的溶液更好76.24%。通过先前的研究结果观察到辐射发射分布的趋势,引导更好的重量分布配方。

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