Simulation Study On Photovoltaic Photothermal Coupled Ground Source Heat Pump Cogeneration

Mengfei Zhang, Jingxia Liu, Baoli Li
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Abstract

The TRNSYS model of photovoltaic photothermal coupled ground source heat pump cogeneration system is established in this paper. The weather data of Baotou, Inner Mongolia are used to simulate the whole year operation of the system. The influence of different cooling water flow rate and collection tank volume on power generation is analyzed. The energy consumption of energy storage systems with and without hydrogen production is analyzed and compared. It is concluded that different cooling water flow rate and different collection tank volume have little effect on the system power generation. In the heat collection season, the water temperature at the inlet of the buried pipe increases with the increase of solar radiation intensity, and the photoelectric conversion efficiency decreases with the increase of photovoltaic panel temperature. The combination of the CHP system and the hydrogen production system can absorb the discarded light and increase the energy utilization rate of the system by about 3.5%. The photovoltaic photothermal coupled ground source heat pump system is compared with the ground source heat pump system. When the ground source heat pump runs separately for heating for ten years, the soil temperature drops from the initial set of 13℃ to 1.58℃, and the temperature decreases by 11.42℃. Soil temperature decreased significantly and soil cold accumulation was serious. The photovoltaic photothermal coupled ground source heat pump system can maintain the soil temperature balance, the system runs for 10 years, the temperature only reduces 0.38℃. The COP of heat pump unit is also higher than that of ground source heat pump individual heating system.
光伏光热耦合地源热泵热电联产仿真研究
建立了光伏光热耦合地源热泵热电联产系统的TRNSYS模型。利用内蒙古包头市的气象资料,对系统的全年运行进行了模拟。分析了不同冷却水流量和集水罐容积对发电的影响。对有制氢和无制氢的储能系统的能耗进行了分析和比较。结果表明,不同冷却水流量和不同集水罐容积对系统发电量影响不大。在集热季节,地埋管入口水温随太阳辐射强度的增加而升高,光电转换效率随光伏板温度的升高而降低。热电联产系统与制氢系统的结合可以吸收废弃的光,使系统的能量利用率提高3.5%左右。将光伏光热耦合地源热泵系统与地源热泵系统进行了比较。地源热泵单独运行供热十年后,土壤温度由初始设定的13℃下降到1.58℃,温度下降11.42℃。土壤温度明显下降,土壤冷积累严重。光伏光热耦合地源热泵系统能保持土壤温度平衡,系统运行10年,温度仅降低0.38℃。热泵机组的COP也高于地源热泵单供热系统的COP。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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