Fiala D, Lomas K J, Stohrer M
Institute of Energy and Sustainable Development, De Montfort University Leicester, The Gateway, Leicester LE1 9BH, United Kingdom.
J Appl Physiol (1985). 1999 Nov;87(5):1957-72. doi: 10.1152/jappl.1999.87.5.1957.
A dynamic model predicting human thermal responses in cold, cool, neutral, warm, and hot environments is presented in a two-part study. This, the first paper, is concerned with aspects of the passive system: 1) modeling the human body, 2) modeling heat-transport mechanisms within the body and at its periphery, and 3) the numerical procedure. A paper in preparation will describe the active system and compare the model predictions with experimental data and the predictions by other models. Here, emphasis is given to a detailed modeling of the heat exchange with the environment: local variations of surface convection, directional radiation exchange, evaporation and moisture collection at the skin, and the nonuniformity of clothing ensembles. Other thermal effects are also modeled: the impact of activity level on work efficacy and the change of the effective radiant body area with posture. A stable and accurate hybrid numerical scheme was used to solve the set of differential equations. Predictions of the passive system model are compared with available analytic solutions for cylinders and spheres and show good agreement and stable numerical behavior even for large time steps.
一项分为两部分的研究提出了一个预测人类在寒冷、凉爽、中性、温暖和炎热环境中热反应的动态模型。这是第一篇论文,关注被动系统的几个方面:1)人体建模;2)体内及其周边的热传输机制建模;3)数值计算方法。一篇正在准备的论文将描述主动系统,并将模型预测结果与实验数据以及其他模型的预测结果进行比较。这里重点是与环境热交换的详细建模:表面对流的局部变化、定向辐射交换、皮肤处的蒸发和水分收集,以及服装组合的不均匀性。还对其他热效应进行了建模:活动水平对工作效率的影响以及有效辐射体面积随姿势的变化。使用了一种稳定且准确的混合数值方案来求解微分方程组。被动系统模型的预测结果与圆柱体和球体的现有解析解进行了比较,即使对于大时间步长,也显示出良好的一致性和稳定的数值行为。