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首页> 外文期刊>International Journal of Thermal Sciences >Modelling heat transfer and physiological responses of unclothed human body in hot environment by coupling CFD simulation with thermal model
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Modelling heat transfer and physiological responses of unclothed human body in hot environment by coupling CFD simulation with thermal model

机译:用热模型耦合CFD模拟在热环境中造型热传递和生理反应

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摘要

A coupling system was developed in the present study to simulate the heat transfer and physiological responses of the unclothed human body in hot environment. This system included a computational thermal manikin controlled by a mutli-node thermal model, which could dynamically respond to the environmental conditions. The computational thermal manikin was employed to determine the heat transfer between the human body and ambient environment as well as heat transfer coefficients at each body segment. The CFD simulation was then coupled with a multi-node thermal model to predict the heat transfer and human physiological responses in real time. The performance of coupling system was examined by comparing the simulated skin temperatures with the published measurements from human trials in hot environment. The CFD simulation results indicated that the calculated values of heat flux and heat transfer coefficients agreed well with test data and simulated results in literature. The coupling system reasonably predicted the skin temperatures at local body segments with the maximum discrepancies between the observed values and simulated ones no more than 1.0 degrees C, except for arm. The results suggested that the developed system was capable of simulating the heat flux and physiological responses in hot environment, which provided an effective tool to better predict thermal comfort, heat stress, and skin burn. (C) 2017 Elsevier Masson SAS. All rights reserved.
机译:在本研究中开发了一种偶联系统,以模拟在热环境中的不清衣人体的热传递和生理反应。该系统包括由Mutli节点热模型控制的计算热人体模型,其可以动态地响应环境条件。使用计算热人体模型以确定人体和环境环境之间的热传递以及每个体段的传热系数。然后,CFD模拟与多节点热模型偶联,以实时预测传热和人体生理反应。通过将模拟的皮肤温度与来自热环境中的人类试验的已发表的测量进行比较来检查偶联系统的性能。 CFD仿真结果表明,热通量和传热系数的计算值与测试数据吻合良好,并在文献中的模拟结果。耦合系统合理地预测了局部体段的皮肤温度,除了臂外,观察值和模拟的最大差异不超过1.0摄氏度。结果表明,发达的系统能够模拟热环境中的热通量和生理反应,为更好地预测热舒适,热应力和皮肤燃烧提供了有效的工具。 (c)2017年Elsevier Masson SAS。版权所有。

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