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Measuring the human body's microclimate using a thermal manikin

机译:使用人体模型测量人体的微气候

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The human body is surrounded by a microclimate, which results from its convective release of heat. In this study, the air temperature and flow velocity of this microclimate were measured in a climate chamber at various room temperatures, using a thermal manikin simulating the heat release of the human being. Different techniques (Particle Streak Tracking, thermography, anemometry, and thermistors) were used for measurement and visualization. The manikin surface temperature was adjusted to the particular indoor climate based on simulations with a thermoregulation model (UCBerkeley Thermal Comfort Model). We found that generally, the microclimate is thinner at the lower part of the torso, but expands going up. At the head, there is a relatively thick thermal layer, which results in an ascending plume above the head. However, the microclimate shape strongly depends not only on the body segment, but also on boundary conditions: The higher the temperature difference between the surface temperature of the manikin and the air temperature, the faster the airflow in the microclimate. Finally, convective heat transfer coefficients strongly increase with falling room temperature, while radiative heat transfer coefficients decrease. The type of body segment strongly influences the convective heat transfer coefficient, while only minimally influencing the radiative heat transfer coefficient.
机译:人体周围是微气候,这是由于对流放热所致。在这项研究中,使用模拟人体热量释放的热人体模型,在不同室温下的气候室内测量了微气候的空气温度和流速。测量和可视化使用了不同的技术(颗粒条纹跟踪,热成像,风速仪和热敏电阻)。人体模型的表面温度根据温度调节模型(UCBerkeley Thermal Comfort Model)的模拟进行了调整,以适应特定的室内气候。我们发现,总体上,小气候在躯干下部较薄,但向上扩展。在头部,有一个相对较厚的热层,导致头部上方的烟羽上升。但是,微气候的形状不仅取决于人体部位,而且还取决于边界条件:人体模型的表面温度与气温之间的温差越高,微气候中的气流越快。最后,对流换热系数随着室温的降低而大大增加,而辐射换热系数则下降。人体节段的类型强烈影响对流传热系数,而对辐射传热系数的影响很小。

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