Operational optimisation of an air-source heat pump system with thermal energy storage for domestic applications

被引:18
|
作者
Olympios, Andreas, V [1 ,2 ]
Sapin, Paul [1 ,2 ]
Freeman, James [3 ]
Olkis, Christopher [3 ]
Markides, Christos N. [1 ,2 ]
机构
[1] Imperial Coll London, Clean Energy Proc CEP Lab, London SW7 2AZ, England
[2] Imperial Coll London, Ctr Proc Syst Engn CPSE, Dept Chem Engn, London SW7 2AZ, England
[3] Mitsubishi Elect R&D Ctr Europe BV, 17 Firth Rd,Houston Ind Estate, Livingston EH54 5DJ, Scotland
基金
英国工程与自然科学研究理事会; 英国自然环境研究理事会;
关键词
Domestic heating; Genetic algorithm; Heat pump; Optimisation; Phase-change material; Thermal energy storage; POWER PROVISION; FUTURE; PV;
D O I
10.1016/j.enconman.2022.116426
中图分类号
O414.1 [热力学];
学科分类号
摘要
Electricity-driven air-source heat pumps are a promising element of the transition to lower-carbon energy sys-tems. In this work, operational optimisation is performed of an air-source heat pump system aimed at providing space heating and domestic hot water to a single-family dwelling. The novelty of this work lies in the devel-opment of comprehensive thermal network models of two different system configurations: (i) a standard configuration of a heat pump system coupled to a hot-water cylinder; and (ii) an advanced configuration of a heat pump system coupled to two phase-change material thermal stores. Three different objective functions (opera-tional cost, coefficient of performance, and self-sufficiency from a locally installed solar-PV system) are inves-tigated and the proposed mixed-integer, non-linear optimisation problems are solved by employing a genetic algorithm. Simulations are conducted at two carefully selected European locations with different climate char-acteristics (Oban in Scotland, UK, and Munich in Southern Germany) over four seasons represented by typical weather weeks. Comparison of key results against a conventional operating strategy reveals that the use of smart operational strategies for the operation of the heat pump and thermal stores can lead to considerable economic savings for consumers and significant performance improvements over the system lifetime. Optimising the operation of the standard configuration leads to average annual cost savings of up to 22% and 20% at the UK and German locations, respectively. The optimisation of the advanced configuration with the two PCM stores shows even higher potential for economic savings - up to 39% and 29% per year at the respective locations - as this configuration allows for greater operational flexibility, and high-electricity-price periods can be almost completely avoided. Depending on the objective function, configuration and location, the system seasonal co-efficient of performance varies between 2.4 and 2.8. Lastly, a significant (up to four-times) increase in the fraction of heat pump energy demand covered by an appropriately-sized rooftop PV system is demonstrated, increasing from 8% to 34% at the UK location and from 6% to 24% at the German location. The analysis highlights trade-offs between the objective functions, while the time-resolved results can be used to guide the future development of smart controllers for these applications.
引用
收藏
页数:23
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