首页> 外文会议>8th Biennial Conference on Engineering Systems Design and Analysis 2006 vol.1 >Modeling of Closed Loop Pulsating Heat Pipes by Neural Networks
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Modeling of Closed Loop Pulsating Heat Pipes by Neural Networks

机译:闭环脉动热管的神经网络建模

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摘要

Pulsating heat pipes (PHPs) are devices that their performance strongly depends on many factors such as filling ratio, working fluid, internal diameter, and etc. Therefore, variety of such parameters must be considered in experimental data or an accurate model must be used to characterize the behaviors of PHPs. In this study, a two layers neural network model is used to predict the behaviors of the PHPs. The effects of filling ratio and heat power input and working fluid on thermal resistance of PHPs are considered. The obtained results are in good agreement with available data and can be appropriate for predicting the trend of effective parameters on PHPs performance.
机译:脉动热管(PHP)的性能在很大程度上取决于许多因素,例如填充率,工作流体,内径等。因此,在实验数据中必须考虑各种此类参数,或者必须使用精确的模型来进行测量。描述PHP的行为。在这项研究中,使用了两层神经网络模型来预测PHP的行为。考虑了填充比,热功率输入和工作流体对PHP的热阻的影响。获得的结果与可用数据非常吻合,可以适当地预测有效参数对PHP性能的趋势。

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