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Transient thermal-electrical performance modelling of solar concentrating photovoltaic (CPV) receiver

机译:太阳能光伏(CPV)接收机的瞬态热电性能建模

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The cell efficiency of a solar CPV system can be enhanced by the dissipation of the thermal load from the receiver assembly. The performance of the solar cell is influenced by the incident light and cell operating temperature. In this study, a triple-junction solar cell, under a concentration ratio of 500x and cell dynamic efficiency, is considered for a wide range of operating temperatures (25-80 degrees C). The key purpose of this work is to simulate both transient and steady-state operating conditions, based on the temperature-dependent conversion efficiency. In this study, a transient model has been developed using COMSOL Multiphysics (R). A live-link technique of COMSOL with MATLAB (R) is used to couple of successive thermal and electrical steady-state models for a fixed timestep. The performance behaviour of electrical parameters J(sc), V-oc, P, FF and P-max are investigated. The results show that a dynamical efficiency, compared with constant efficiency and integrated error, was approximately 12%. The cell cycle steady-state temperature occurs at a maximum cell temperature of 78.4 degrees C within 30 s at the convective heat transfer coefficient h(conv) = 1400 W/m(2) K and 500x of concentration ratio. Thus, steady-state cell temperature and time to reach it significantly dependence on the values of the environmental parameters of DNI, AM and T-amb. Therefore, we can determine the thermal response of h(conv) to keep the value of T-cell 80 degrees C.
机译:通过从接收器组件的热负荷的耗散,可以提高太阳CPV系统的电池效率。太阳能电池的性能受到入射光和电池工作温度的影响。在该研究中,考虑了在500倍和电池动态效率的浓度比下的三界太阳能电池(25-80℃)。这项工作的关键目的是根据温度相关的转换效率模拟瞬态和稳态的操作条件。在本研究中,使用COMSOL Multiphysics(R)开发了瞬态模型。使用MATLAB(R)的COMSOL的直播技术用于针对固定的时间步进耦合连续的热电态模型。研究了电气参数j(sc),V-oc,p,ff和p-max的性能行为。结果表明,与恒定效率和集成误差相比,动态效率约为12%。在对流传热系数H(CONV)= 1400W / m(2)K和500倍的浓度比下,细胞周期温度发生在30秒内的最大细胞温度为78.4℃的最大细胞温度。因此,稳态细胞温度和时间达到它显着依赖于DNI,AM和T-BAM的环境参数的值。因此,我们可以确定H(CONV)的热响应,以保持T细胞的值<80℃。

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