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Detonation cell size model based on deep neural network for hydrogen, methane and propane mixtures with air and oxygen

机译:基于深度神经网络的氢,甲烷和丙烷与空气和氧气的混合物的爆炸单元尺寸模型

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The aim of the present study was to develop model for detonation cell sizes prediction based on a deep artificial neural network of hydrogen, methane and propane mixtures with air and oxygen. The discussion about the currently available algorithms compared existing solutions and resulted in a conclusion that there is a need for a new model, free from uncertainty of the effective activation energy and the reaction length definitions. The model offers a better and more feasible alternative to the existing ones. Resulting predictions were validated against experimental data obtained during the investigation of detonation parameters, as well as with data collected from the literature. Additionally, separate models for individual mixtures were created and compared with the main model. The comparison showed no drawbacks caused by fitting one model to many mixtures. Moreover, it was demonstrated that the model may be easily extended by including more independent variables. As an example, dependency on pressure was examined. The preparation of experimental data for deep neural network training was described in detail to allow reproducing the results obtained and extending the model to different mixtures and initial conditions. The source code of ready to use models is also provided.
机译:本研究的目的是基于氢,甲烷和丙烷与空气和氧气的混合物的深层人工神经网络,开发用于爆轰细胞尺寸预测的模型。关于当前可用算法的讨论将现有解决方案进行了比较,得出的结论是,需要一种新模型,而该模型应避免有效活化能和反应长度定义的不确定性。该模型为现有模型提供了更好,更可行的替代方案。根据在爆轰参数研究期间获得的实验数据以及从文献中收集的数据,对所得的预测进行了验证。此外,针对单个混合物创建了单独的模型,并与主模型进行了比较。比较显示没有因将一个模型适合多种混合物而引起的缺点。此外,证明了通过包含更多独立变量可以轻松扩展模型。例如,检查了对压力的依赖性。详细介绍了用于深度神经网络训练的实验数据的准备,以允许重现获得的结果并将模型扩展到不同的混合物和初始条件。还提供了即用型模型的源代码。

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