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Feasibility of flat-plate heat-sinks using microscale solar cells up to 10,000 suns concentrations

机译:使用微型太阳能电池的平板散热器可行性高达10,000次太阳浓度

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Concentrator photovoltaic (CPV) systems replace semiconductor material by cost-efficient optical elements. The potential cost reduction of these systems is closely related to the concentration factor because higher light concentrations imply lower amount of semiconductor material required for the solar cells. Thus, one promising way for improving this technology is moving towards ultra-high (UH) concentration levels ( 2000 suns). However, the thermal management at such extreme light fluxes is difficult. Using small-sized solar cells is beneficial for improving the thermal management. Among the possible cooling strategies, the use of flat-plate heat-sinks for passive cooling, if feasible, would be the simplest way to dissipate the heat and would accelerate the development of UHCPV prototypes. However, the feasibility of flat-plate heat-sinks using microscale solar cells for UHCPV applications has not been analysed in detail yet. In this work, a thermal 3D finite-element model is used to investigate the possibilities of flat-plate heat-sinks at concentration ratios not tested to date, i.e. 2000-10,000 suns. Critical parameters such as solar cell area and efficiency, substrate thickness, heat-sink area, and heat-sink material are evaluated and discussed. Results show that solar cells of 1 mm x 1 mm area or below can be thermally handled with conventional Aluminium flat heat-sinks up to 10,000 suns.
机译:聚光灯光伏(CPV)系统通过成本高效的光学元件更换半导体材料。这些系统的潜在成本降低与浓度因子密切相关,因为较高的光浓度意味着太阳能电池所需的较低的半导体材料。因此,改善该技术的一个有希望的方法正在朝向超高(UH)浓度水平(> 2000太阳)。然而,这种极端光通量的热管理是困难的。使用小型太阳能电池有利于改善热管理。在可能的冷却策略中,使用平板散热器的被动冷却,如果可行,则是消散热量的最简单方法,并将加速UHCPV原型的发展。然而,尚未详细分析使用MicroScle太阳能电池的平板散热器的可行性尚未详细分析。在这项工作中,热3D有限元模型用于研究迄今为止未经过测试的浓度比的平板散热器的可能性,即2000-10,000个太阳。评估和讨论临界参数,例如太阳能电池区域和效率,衬底厚度,散热器区域和散热器材料。结果表明,通过高达10,000个太阳的传统铝平散热器,可以热处理1mm×1mm区域或下方的太阳能电池。

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