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Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators

机译:聚光光伏/集热器与热电发电机组合系统的性能分析

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Thermoelectric (TE) modules utilize available temperature differences to generate electricity by the Seebeck effect. The current study investigates the merits of employing thermoelectrics to harvest additional electric energy instead of just cooling concentrating photovoltaic (CPV) modules by heat sinks (heat extractors). One of the attractive options to convert solar energy into electricity efficiently is to laminate TE modules between CPV modules and heat extractors to form a CPV-TE/thermal (CPV-TE/T) hybrid system. In order to perform an accurate estimation of the additional electrical energy harvested, a coupled-field model is developed to calculate the electrical performance of TE devices, which incorporates a rigorous interfacial energy balance including the Seebeck effect, the Peltier effect, and Joule heating, and results in better predictions of the conversion capability. Moreover, a 3D multi-physics computational model for the HCPV-TE/T water collector system consisting of a solar concentrator, 10 serially connected GaAslGe photovoltaic (PV) cells, 300 couples of bismuth telluride TE modules, and a cooling channel with heat-recovery capability, is implemented by using the commercial FE-tool Comsol Multiphysics~®. A conjugate heat transfer model is used, assuming laminar flow through the cooling channel. The performance and efficiencies of the hybrid system are analyzed. As compared with the traditional photovoltaic/thermal (PV/T) system, a comparable thermal efficiency and a higher 8% increase of the electrical efficiency can be observed through the PV-TE hybrid system. Additionally, with the identical convective surface area and cooling flow rate in both configurations, the PV-TE/T hybrid system yields higher PV cell temperatures but more uniform temperature distributions across the cell array, which thus eliminates the current matching problem; however, the higher cell temperatures lower the PV module's fatigue life, which has become one of the biggest challenges in the PV-TE hybrid system.
机译:热电(TE)模块利用塞贝克效应利用可利用的温差来发电。当前的研究调查了利用热电来收集更多电能的好处,而不是仅仅通过散热器(集热器)冷却聚光光伏(CPV)模块。有效地将太阳能转换为电能的有吸引力的选择之一是在CPV模块和吸热器之间层压TE模块,以形成CPV-TE /热(CPV-TE / T)混合系统。为了准确估算收集到的额外电能,开发了耦合场模型来计算TE设备的电性能,该模型结合了严格的界面能量平衡,包括塞贝克效应,珀尔帖效应和焦耳热,并可以更好地预测转换能力。此外,HCPV-TE / T集水器系统的3D多物理场计算模型包括一个太阳能集中器,10个串联的GaAslGe光伏(PV)电池,300对碲化铋TE模块以及一个带热源的冷却通道。恢复功能是通过使用商用有限元工具Comsol Multiphysics〜®实现的。使用共轭传热模型,假设层流通过冷却通道。分析了混合动力系统的性能和效率。与传统的光伏/热能(PV / T)系统相比,通过PV-TE混合系统可以观察到相当的热效率和8%的电效率提高。另外,由于两种配置中的对流表面积和冷却流量相同,PV-TE / T混合系统可产生更高的PV电池温度,但整个电池阵列的温度分布更均匀,从而消除了电流匹配问题;但是,较高的电池温度会降低PV模块的疲劳寿命,这已成为PV-TE混合动力系统的最大挑战之一。

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  • 来源
    《Journal of Electronic Packaging》 |2014年第4期|041004.1-041004.7|共7页
  • 作者单位

    Department of Mechanical Engineering, Binghamton University-SUNY, Binghamton, NY 13902;

    Department of Mechanical Engineering, Binghamton University-SUNY, Binghamton, NY 13902;

    Applied Optics Lab, GE Global Research, Niskayuna, NY 12309;

    Department of Mechanical Engineering, Binghamton University-SUNY, Binghamton, NY 13902;

    Department of Mechanical Engineering, Binghamton University-SUNY, Binghamton, NY 13902;

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