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A Clothing Ventilation and Heat Loss Electric Circuit Model with Natural Convection for a Clothed Swinging Arm of a Walking Human

机译:一种衣服通风和热损失电路模型,用于行走的衣服摇摆臂自然对流

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摘要

This work aims to develop a computationally effective electric circuit model to estimate the ventilation and heat transfer for walking human in the presence of natural convection. The ventilation circuit includes flow resistance, inductance, and electromotive force elements. It is coupled to an electric resistance circuit of heat flows to adjust the temperature difference inducing natural convection flow. The coupled ventilation and heat circuit models predicted both the segmental ventilation rate and heat loss from the arm at different walking and wind speeds. The developed model of the segmental ventilation and heat transfer from the clothed human segment was validated by performing experiments on a walking thermal manikin using tracer gas method. Good agreement was observed between the model predictions and the experiment at a maximum relative error of 10% lying within the standard deviation range. Results showed that the simplified ventilation-heat circuit models succeeded in estimating the natural convection effect at low computational cost. Moreover, it was shown that the effect of natural convection is more significant in walking at no wind than in windy condition. Accounting for natural convection effect increases the segmental ventilation and heat loss at low air permeability (0.02 m/s) by 68% and 20%, respectively.
机译:这项工作旨在开发一种计算有效的电路模型,以估计在自然对流存在下行走的通风和热传递。通风电路包括流动阻力,电感和电动势元件。它耦合到热流的电阻电路,以调整诱导自然对流流的温差。耦合通风和热电路模型预测了在不同步行和风速下的臂的节段通风速率和热量损失。通过使用示踪气体方法对行走热人体模型进行实验,验证了从穿衣人段的分段通风和热传递的开发模型。在模型预测和实验之间观察到良好的一致性,并且在标准偏差范围内的10%的最大相对误差下的实验之间。结果表明,简化的通气热电路模型成功地估计了低计算成本的自然对流效应。此外,表明自然对流的效果在无风中行走而不是在风的状态下更为显着。天然对流效应的核算将低透气性(0.02米/磅)的节段通风和热损失分别增加68%和20%。

著录项

  • 来源
    《Heat Transfer Engineering》 |2019年第4期|330-345|共16页
  • 作者单位

    Amer Univ Beirut Dept Mech Engn POB 11-0236 Beirut 11072020 Lebanon;

    Amer Univ Beirut Dept Mech Engn POB 11-0236 Beirut 11072020 Lebanon;

    Amer Univ Beirut Dept Mech Engn POB 11-0236 Beirut 11072020 Lebanon;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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