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Evaporation heat transfer characteristics of a grooved heat pipe with micro-trapezoidal grooves

机译:具有微梯形槽的带槽热管的蒸发传热特性

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摘要

A detailed mathematical model predicting the effect of contact angle on the meniscus radius, thin film profile and heat flux distribution occurring in the micro-trapezoidal grooves of a heat pipe has been presented. The model can be used to determine the maximum evaporating heat transfer rate in the evaporator including the effects of disjoining pressure and surface tension. The equation of meniscus radii calculation in the evaporator at given heat load based on the liquid wicks configuration has been put forward. The numerical results show that while the capillary limitation governs the maximum heat transport capability in a grooved heat pipe, the thin film evaporation determines the effective thermal conductivity in a grooved heat pipe. The ratio of the heat transfer through the thin film region to the total heat transfer through the wall to the vapor phase decreases when the contact angle increases. The superheat effects on the heat flux distribution in the thin film region also have been conducted and the results show that the disjoining pressure plays an important role in this region. The current investigation will result in a better understanding of thin film evaporation and its effect on the effective thermal conductivity in a grooved heat pipe.
机译:提出了详细的数学模型,该模型预测了接触角对热管微梯形凹槽中弯月面半径,薄膜轮廓和热通量分布的影响。该模型可用于确定蒸发器中的最大蒸发传热速率,包括分离压力和表面张力的影响。提出了基于液芯结构在给定热负荷下蒸发器弯月面半径的计算公式。数值结果表明,虽然毛细管限制决定了带槽热管中的最大传热能力,但薄膜蒸发决定了带槽热管中的有效导热率。当接触角增大时,通过薄膜区域的热传递与通过壁到气相的总热传递的比率减小。还对薄膜区域中的热通量分布进行了过热效应,结果表明,分离压力在该区域中起着重要作用。当前的研究将使人们更好地了解薄膜蒸发及其对带槽热管中有效导热率的影响。

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