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Performance and Reliability Analysis of Hybrid Concentrating Photovoltaic/Thermal Collectors With Tree-Shaped Channel Nets' Cooling System

机译:具有树形通道网冷却系统的混合聚光光伏/热电集热器的性能和可靠性分析

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摘要

Excess temperatures on concentrating photovoltaic (PV) modules can lead to a decrease in electrical efficiency and irreversible structural damage. Therefore, designing an appropriate cooling system becomes necessary for the lifetime and performance of concentrating PV (CPV) modules. The basic design considerations for cooling systems include low and uniform cell temperatures, minimal pumping power, high PV efficiencies, and system reliability. In this paper, a 3-D multiphysics computational model for a hybrid concentrating photovoltaic/thermal (HCPV/T) water collector is developed. The collector consists of a solar concentrator, 40 silicon cells connected in series, and a multichannel liquid cooling system with heat-recovery capability. A conjugate heat transfer model is used, assuming laminar flow through either parallel or tree-shaped branching cooling channels. The temperature distributions within the PV cells are determined for different cooling strategies. Comparisons are made by considering the thermal and electrical performances, such as PV cell temperature, electrical efficiency, and outlet water temperature, between a system incorporating tree-shaped channel networks and one having straight parallel channel cooling arrays. For identical convective surface area and pumping pressures in both configurations, the tree-shaped branched channel cooling networks yield lower PV cell temperatures and more uniform temperature distributions within the PV cells. Additionally, a finite-element mechanical analysis is used to estimate the fatigue life of the PV modules based on the temperature profiles obtained from both cooling channel configurations under a specified pumping pressure. The model results predict that the fatigue life of the module with the branched channels is almost twice that of the module with straight channels.
机译:聚光光伏(PV)模块上的温度过高会导致电效率下降和不可逆转的结构损坏。因此,设计合适的冷却系统对于浓缩PV(CPV)模块的使用寿命和性能变得十分必要。冷却系统的基本设计考虑因素包括较低且均匀的电池温度,最小的泵浦功率,较高的PV效率和系统可靠性。在本文中,建立了混合聚光光伏/热(HCPV / T)集水器的3-D多物理场计算模型。该收集器由一个太阳能集中器,40个串联的硅电池和一个具有热回收功能的多通道液体冷却系统组成。使用共轭传热模型,假设层流通过平行或树形分支冷却通道。确定PV电池内的温度分布以适用于不同的冷却策略。在考虑到包含树形通道网络的系统和具有平行通道冷却阵列的系统之间的热性能和电气性能(例如PV电池温度,电效率和出水温度)之间进行了比较。对于两种配置中相同的对流表面积和泵送压力,树形分支通道冷却网络可产生较低的PV电池温度和PV电池内更均匀的温度分布。此外,基于在指定的泵送压力下从两个冷却通道配置获得的温度曲线,使用有限元力学分析来估算PV模块的疲劳寿命。模型结果预测,带有分支通道的模块的疲劳寿命几乎是带有直通道的模块的疲劳寿命的两倍。

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