Optimization of solar-air source heat pump heating system with phase change heat storage

被引:10
作者
Kong, Xiangfei [1 ]
Liu, Yingshan [1 ]
Li, Han [1 ]
Fan, Man [1 ]
Cao, Weixue [2 ]
机构
[1] Hebei Univ Technol, Sch Energy & Environm Engn, Tianjin 300401, Peoples R China
[2] Tianjin Chengjian Univ, Sch Energy & Safety Engn, Tianjin 300384, Peoples R China
关键词
Multi-factors optimization; Non-guaranteed hours; Penalty function; Phase change thermal storage; THERMAL-ENERGY STORAGE; PERFORMANCE; TEMPERATURE; SIMULATION; WATER; PCM; MODEL; ASHP;
D O I
10.1016/j.applthermaleng.2024.122897
中图分类号
O414.1 [热力学];
学科分类号
摘要
The optimization of heating system has always been of much concern, among which the annual life cycle cost (ALCC) was widely used as an optimization method, while the non-guaranteed hours were often overlooked. This study proposed the elasticity-economy (E-E) objective function as an optimizing indicator, and demonstrated it taking a solar assisted heat pump heating system with phase change material (SC-ASHP-PCM) as an example. Firstly, the single variation impact was analyzed. After optimizing the thermal performance of sub-systems, the proportion of heat supplied by solar collector (SC) and phase change material (PCM) sub-systems increased by 5.4 % and 3.4 %, respectively. Subsequently, the Hooke-Jeeves algorithm was developed to optimize multifactors, hence minimizing the E-E objective function. The optimal solution was achieved when the nonguaranteed rate was 5 % and the penalty factor was 150 CNY/h. Compared with the baseline situation, the system energy consumption (156.8 x 10(3) kW.h) was reduced by 30 %, and the E-E objective function was reduced by 24 %. Furthermore, the minimum operating cost was 18.3 CNY/m(2), saving up to 46 % compared to traditional heating systems. The method is generalized to obtain the optimal energy saving potential under different non-guaranteed hours, which provides guidance for the heating systems' design and operation.
引用
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页数:16
相关论文
共 59 条
[1]   Numerical analysis on heat transfer of a pyramid-shaped photovoltaic panel [J].
Abu-Hamdeh, Nidal H. ;
Khorasani, Saleh ;
Oztop, Hakan F. ;
Alnefaie, Khalid A. .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2022, 147 (02) :1727-1738
[2]  
AMEEN FR, 1993, ASHRAE TRAN, V99, P61
[3]  
[Anonymous], 2017, ASHRAE Handbook - Fundamentals (SI)
[4]  
ANSI/ASHRAE/IES, ANSI/ASHRAE/IES 90.1-2016 Standard
[5]   Solar collector tilt angle optimization for solar power plant setup-able sites at Western Himalaya and correlation formulation [J].
Awasthi, Anchal ;
Kallioglu, Mehmet Ali ;
Sharma, Ashutosh ;
Mohan, Anand ;
Chauhan, Ranchan ;
Singh, Tej .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2022, 147 (20) :11417-11431
[6]   Heat transfer enhancement in water when used as PCM in thermal energy storage [J].
Cabeza, LF ;
Mehling, H ;
Hiebler, S ;
Ziegler, F .
APPLIED THERMAL ENGINEERING, 2002, 22 (10) :1141-1151
[7]   A rational method for selection of coincident design dry- and wet-bulb temperatures for required system reliability [J].
Chen, TY ;
Yik, F ;
Burnett, J .
ENERGY AND BUILDINGS, 2005, 37 (06) :555-562
[8]   Simulation and optimization study on a solar space heating system combined with a low temperature ASHP for single family rural residential houses in Beijing [J].
Deng, Jie ;
Tian, Zhiyong ;
Fan, Jianhua ;
Yang, Ming ;
Furbo, Simon ;
Wang, Zhifeng .
ENERGY AND BUILDINGS, 2016, 126 :2-13
[9]   Experimental evaluation of the cascaded energy storage radiator for constructing indoor thermal environment in winter [J].
Fan, Man ;
Wang, Jia ;
Kong, Xiangfei ;
Suo, Hanxiao ;
Zheng, Wandong ;
Li, Han .
APPLIED ENERGY, 2023, 332
[10]   Development of a math module of shell and tube phase-change energy storage system used in TRNSYS [J].
Feng, Guohui ;
Liu, Ming ;
Huang, Kailiang ;
Qiang, Xiaoqian ;
Chang, Qunpeng .
ENERGY, 2019, 183 :428-436