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Modelling of photovoltaic-thermal collectors for the provision of electricity and low temperature heat-Comparison of different flow rate control approaches to optimize the electrical yield

机译:光伏热收集器建模,用于提供电力和低温热 - 不同流量控制方法,优化电源

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摘要

Photovoltaic-thermal (PVT) collectors can provide heat and electricity. A quasi-stationary model of a PVT collector is presented and validated based on measured data. Subsequently, the electrical and thermal performance of such a collector is simulated for different locations. These simulations focus on different flow rate control approaches with the aim of maximizing the electrical yield. The simulation results show that the two control approaches presented in this paper have the potential to increase the electrical output for all locations. The increase in additional electrical output at locations with higher solar radiation is significantly higher than the increase in solar radiation between the locations investigated. Additionally, the cooling fluids' temperature differences for such PVT collectors vary between the investigated control approaches, where variable flow rates lead to a steadier increase in cooling fluids' temperature. In conclusion, the flow rate needs to be adopted to the pre-defined main goal of the respective PVT collector. The use of variable flow rates by providing low-temperature heat at a more constant temperature level appears to be advantageous in this context.
机译:光伏 - 热(PVT)收集器可以提供热电型。基于测量数据呈现和验证PVT收集器的准固定模型。随后,为不同位置模拟这种收集器的电气和热性能。这些模拟专注于不同的流量控制方法,目的是最大化电源。仿真结果表明,本文提出的两种控制方法具有增加所有位置的电输出。具有较高太阳辐射的位置的额外电输出的增加显着高于所研究的位置之间的太阳辐射的增加。另外,对于这种PVT收集器的冷却流体的温度差异在研究的控制方法之间变化,其中可变流速导致冷却流体温度的持续增加。总之,需要采用流动速率对各个PVT收集器的预定义的主要目标。通过在更恒定的温度水平下提供低温热量来使用可变流速似乎是有利的。

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  • 来源
    《Renewable energy focus》 |2021年第6期|1-13|共13页
  • 作者单位

    Hamburg University of Technology (TUHH) Institute of Environmental Technology and Energy Economics (IUE) Eissendorfer Strasse 40 21073 Hamburg Germany;

    Hamburg University of Technology (TUHH) Institute of Environmental Technology and Energy Economics (IUE) Eissendorfer Strasse 40 21073 Hamburg Germany;

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