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Combined solar heating and air-source heat pump system with energy storage: thermal performance analysis and optimization

机译:组合太阳能加热和空气源热泵系统,具有储能:热性能分析和优化

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As renewable and clean energy source, solar energy has been widely used for building energy supply. However, due to its instability, solar heating system often works with auxiliary heat source and thermal energy storage (TES) equipment, in order to maintain steady hot water supply for space heating. In this paper, the analytical model is established for a hybrid heating system, containing solar collector, air-source heat pump and water tank. Moreover, its thermal performance and relationship with climatic parameters are investigated. Aimed at maximizing the overall energy conversion efficiency of such a hybrid heating system, the optimal operation strategy and heating load ratio of each subsystem are determined through inverse problem method. The results show that overall energy efficiency decreases with declining solar radiation and outdoor air temperature. The optimal operation strategy is as follows: during the daytime, solar collector is activated at full capacity as long as solar radiation is high enough and the extra hot water is stored in the tank; in the night, the water tank release heat initially; air-source heat pump works to make up for the insufficient part throughout the whole day. The case study indicates that heat pump, TES equipment and solar direct heating account for 66.5%, 23.1% and 10.4% of total heating load respectively in a typical winter day. Under such situation, the electricity consumption of the whole system can be reduced by 33% compared to traditional heating system (i.e., single heat pump). This work can provide guidance for practical design of heating system with multiple heat source and TES equipment.
机译:作为可再生和清洁的能源,太阳能已广泛用于建筑能源供应。然而,由于其不稳定,太阳能加热系统经常与辅助热源和热能存储(TES)设备配合使用,以保持稳定的热水供应空间加热。在本文中,建立了分析模型,用于混合加热系统,含有太阳能收集器,空气源热泵和水箱。此外,研究了其与气候参数的热性能和关系。旨在最大化这种混合热系统的整体能量转换效率,通过逆问题方法确定每个子系统的最佳操作策略和加热负荷比。结果表明,整体能效随太阳辐射和室外空气温度下降而降低。最佳运行策略如下:在白天,只要太阳辐射足够高,额外的热水储存在罐中,太阳能收集器随着全容量被激活;夜间,水箱最初释放热量;空气源热泵工作始终弥补整个一整天的不足。案例研究表明,热泵,TES设备和太阳能直接加热占66.5%,分别在典型的冬季日的总热负荷的66.5%,23.1%和10.4%。在这种情况下,与传统的加热系统相比,整个系统的电力消耗可以减少33%(即单热泵)。这项工作可以为具有多个热源和TES设备的加热系统的实际设计提供指导。

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