首页> 外文期刊>Journal of Heat Transfer >Ventilation of Wind-Permeable Clothed Cylinder Subject to Periodic Swinging Motion: Modeling and Experimentation
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Ventilation of Wind-Permeable Clothed Cylinder Subject to Periodic Swinging Motion: Modeling and Experimentation

机译:周期性摆动的透风布筒通风:建模与实验

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A theoretical and experimental study has been performed to determine the ventilation induced by swinging motion and external wind for a fabric-covered cylinder of finite length representing a limb. The estimated ventilation rates are important in determining local thermal comfort. A model is developed to estimate the external pressure distribution resulting from the relative wind around the swinging clothed cylinder. A mass balance equation of the microclimate air layer is reduced to a pressure equation assuming laminar flow in axial and angular directions and that the air layer is lumped in the radial direction. The ventilation model predicts the total renewal rate during the swinging cycle. A good agreement was found between the predicted ventilation rates at swinging frequencies between 40 rpm and 60 rpm and measured values from experiments conducted in a controlled environmental chamber (air velocity is less than 0.05 m/s) and in a low speed wind tunnel (for air speed between 2 m/s and 6 m/s) using the tracer gas method to measure the total ventilation rate induced by the swinging motion of a cylinder covered with a cotton fabric for both closed and open aperture cases. A parametric study using the current model is performed on a cotton fabric to study the effect of wind on ventilation rates for a nonmoving clothed limb at wind speeds ranging from 0.5 m/s to 8 m/s, the effect of a swinging limb in stagnant air at frequencies up to 80 rpm, and the combined effect of wind and swinging motion on the ventilation rate. For a nonmoving limb, ventilation rate increases with external wind. In the absence of wind, the ventilation rate increases with increased swinging frequency.
机译:已经进行了理论和实验研究来确定由摆动运动和外部风引起的通风,该通风是由织物覆盖的有限长度的圆柱体(代表肢体)引起的。估计的通风速率对于确定局部热舒适性很重要。开发了一个模型来估计外部压力分布,该外部压力分布是由围绕着旋转的衣服筒周围的相对风产生的。将小气候空气层的质量平衡方程式简化为假设轴向和角度方向为层流且空气层沿径向集总的压力方程式。通风模型可预测摆动周期内的总更新率。在40 rpm至60 rpm的摆动频率下的预测通风率与在受控环境室内(空气速度小于0.05 m / s)和低速风洞(用于使用示踪气体法测量2 m / s到6 m / s之间的最大空气速度),以测量封闭和开放孔情况下由覆盖有棉织物的圆筒的摆动运动引起的总通风率。使用当前模型对棉质织物进行参数研究,以研究风对不动衣服的肢体在风速为0.5 m / s至8 m / s时通风速率的影响,肢体摆动停滞的影响空气的频率高达80 rpm,并且风和摇摆运动对通风率的综合影响。对于不活动的肢体,通气率随外部风的增加而增加。在没有风的情况下,通风频率会随着摆动频率的增加而增加。

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