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Design procedure for cooling ducts to minimise efficiency loss due to temperature rise in PV arrays

机译:冷却风道的设计程序,以最大程度地减少由于光伏阵列温度上升而引起的效率损失

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The principal variable to be fixed in the design of a PV cooling duct is its depth, and hence the hydraulic diameter of its cross-section D. Analysis of the flow and heat transfer in the duct under still-air (buoyant flow) conditions, when the temperature rise is greatest, is validated by measurements on a full-scale test rig. It is shown that there is an optimum value of this design variable, such that for an array of length L the minimum temperature occurs when the ratio L/D is about 20. The optimum value is not affected much by other quantities, including the slope of the array. In practical situations, the flow is obstructed by devices across the duct inlet and outlet to exclude insects, birds and rain, and by structural support members crossing the duct interior. It is shown that the latter are no cause for concern, since the effect of the reduction in the flow-rate due to their presence is more than offset by an increase in heat transfer through additional turbulent mixing. It is also shown that array temperatures are strongly reduced by wind effects, which increase both the heat lost from the front surface of the array and by enhancement of the flow in the duct. Though the trends are clear, limitations are encountered in the present state of knowledge in both areas.
机译:在PV冷却管道的设计中要固定的主要变量是其深度,因此是其横截面D的水力直径。分析在静止空气(浮力)条件下管道中的流动和热传递,当温度升高最大时,可通过在全尺寸试验台上进行测量来验证。结果表明,该设计变量存在一个最佳值,从而对于长度为L的阵列,当L / D之比约为20时,将出现最低温度。该最佳值不受其他量(包括斜率)的影响很大的数组。在实际情况下,通过导管入口和出口的装置以阻止昆虫,鸟类和雨水,以及穿过导管内部的结构性支撑构件阻碍了流动。可以看出,后者无所谓,因为由于它们的存在而导致的流速降低的效果被通过额外的湍流混合而增加的热传递所抵消。还显示出阵列温度由于风的作用而大大降低,这增加了从阵列前表面损失的热量和通过增加管道中的流量。尽管趋势很明显,但是在这两个领域的当前知识水平上都遇到了限制。

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