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Numerical Simulation of the Application of Solar Radiant Systems, Internal Airflow and Occupants?¢???? Presence in the Improvement of Comfort in Winter Conditions

机译:太阳辐射系统,内部气流和乘员应用的数值模拟?改善冬季舒适性的存在

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In this work, the use of numerical simulation in the application of solar radiant systems, internal airflow and occupants?¢???? presence in the improvement of comfort in winter conditions is made. The thermal comfort, the local thermal discomfort and the air quality in an occupied chamber space are evaluated. In the experimental measurements, a wood chamber, a desk, two seats, two seated hygro-thermal manikins, a warm radiant floor, a solar radiation simulator and a water solar collector are used. The air velocity and the air temperature fluctuation are experimentally evaluated around 15 human body sections. The chamber surface temperature is experimentally measured. In the numerical simulation, a coupling human thermal comfort (HTC) integral model, a computational fluids dynamics (CFD) differential model and a building thermal response (BTR) integral model are applied. The human thermal comfort level is evaluated by the HTC numerical model. The airflow inside the virtual chamber, using the k-epsilon and RNG turbulence models, is evaluated by the CFD numerical model. The chamber surface and the collector temperatures are evaluated by the BTR numerical model. In the human thermal comfort level, in non-uniform environments, the predicted mean vote (PMV) and the predicted percentage of dissatisfied (PPD) people are numerically evaluated; in the local thermal discomfort level the draught risk (DR) is experimentally and numerically analyzed; and in the air quality, the carbon dioxide CO 2 concentration is numerically calculated. In the validation tests, the experimental and numerical values of the chamber surface temperature, the air temperature, the air velocity, the air turbulence intensity and the DR are presented.
机译:在这项工作中,数值模拟在太阳辐射系统,内部气流和乘员的应用中的应用?存在改善冬季条件下的舒适度。评估了所占据的腔室空间中的热舒适性,局部热不适感和空气质量。在实验测量中,使用了一个木室,一个桌子,两个座位,两个座位的湿热人体模型,一个温暖的辐射地板,一个太阳辐射模拟器和一个水太阳能收集器。实验评估了15个人体区域的风速和气温波动。腔室表面温度是通过实验测量的。在数值模拟中,应用了耦合人类热舒适(HTC)积分模型,计算流体动力学(CFD)差分模型和建筑物热响应(BTR)积分模型。通过HTC数值模型评估人体的热舒适程度。使用Cε和RNG湍流模型,通过CFD数值模型评估虚拟室内的气流。室表面和收集器温度通过BTR数值模型进行评估。在非均匀环境中,在人类的热舒适水平上,对预测的平均投票(PMV)和预测的不满意(PPD)百分比进行数值评估;在局部热不适水平上,通过实验和数字分析了吃水风险(DR);在空气质量中,通过数值计算二氧化碳CO 2的浓度。在验证测试中,给出了腔室表面温度,空气温度,空气速度,空气湍流强度和DR的实验和数值。

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