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首页> 外文期刊>International Journal of Pattern Recognition and Artificial Intelligence >Thermal Performance Analysis of Heat Pipe Intercooler Based on Artificial Neural-Networks
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Thermal Performance Analysis of Heat Pipe Intercooler Based on Artificial Neural-Networks

机译:基于人工神经网络的热管中间冷却器的热性能分析

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摘要

Since the internal heat transfer is a complicated process, the heat pipe heat exchanger of the engine has not been fully understood yet, which is originated from its extreme complexity. In theoretical studies, the involvement of two-phase flow and phase change processes usually simplifies the processing very much, and the model built differs too much from the actual one, resulting in reduced simulation accuracy. In this study, the prediction model of heat transfer and heat resistance of the heat pipe intercooler is established based on artificial neural networks (ANNs). Then the performance of the heat pipe intercooler from heat transfer and heat resistance aspects is investigated. The average relative error between the heat transfer prediction model and the test value is 3.6%, and the average relative error between the resistance prediction model and the test value is 12.68%, which shows that the prediction model can predict the thermal performance of heat pipe intercooler more accurately. Finally, the proposed model is applied to optimize the structural parameters of the heat pipe intercooler, and the optimal parameters are obtained accordingly. These optimal design parameters can provide the basis for further investigation and development of the heat pipe intercooler in diverse applications.
机译:由于内部传热是复杂的过程,因此发动机的热管热交换器尚未完全理解,其源自其极端复杂性。在理论研究中,两相流和相变过程的参与通常非常简化处理,并且模型从实际的模型不同,导致模拟精度降低。在该研究中,基于人工神经网络(ANNS)建立了热管中冷却器的热传递和耐热性的预测模型。然后研究了热管中冷却器免于传热和耐热性方面的性能。传热预测模型和测试值之间的平均相对误差为3.6%,电阻预测模型与测试值之间的平均相对误差为12.68%,表明预测模型可以预测热管的热性能中间冷却器更准确。最后,应用所提出的模型来优化热管中冷却器的结构参数,并且相应地获得最佳参数。这些最佳设计参数可以为进一步调查和开发热管中冷却器在不同应用中的进一步调查和开发的基础。

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