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Prediction of air leakage in heat exchangers for automotive applications using artificial neural networks

机译:使用人工神经网络预测热交换器热交换器漏气

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The paper presents a new approach to industrial control procedures using artificial intelligence methods. In particular, a multi-layer neural networks are proposed for air leakage prediction in automotive heat exchangers. Experimental studies are focused on supporting the control process and limiting numerous production tests. The paper includes a modeling and simulation results of artificial neural networks and also comparison of various network parameter values due to prediction effectiveness and generated errors. The most effective model is verified not only in simulation tests, but also in real industrial conditions. The proposed procedure based on artificial neural networks is effective in air leakage evaluation of heat exchangers. Finally, conclusions are specified and future enhancements are explained.
机译:本文介绍了使用人工智能方法的工业控制程序的新方法。特别地,提出了一种用于汽车热交换器中的空气泄漏预测的多层神经网络。实验研究专注于支持控制过程并限制许多生产测试。本文包括人工神经网络的建模和仿真结果,以及由于预测效率和产生的错误而比较各种网络参数值。最有效的模型不仅在仿真测试中验证,也是在实际工业条件下进行验证。基于人工神经网络的所提出的程序在热交换器的漏气评估中有效。最后,结论是指定的,并解释了未来的增强。

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