Review of solar thermoelectric cooling technologies for use in zero energy buildings

被引:131
作者
Liu, ZhongBing [1 ]
Zhang, Ling [1 ]
Gong, GuangCai [1 ]
Li, HangXin [1 ]
Tang, GuangFa [1 ]
机构
[1] Hunan Univ, Coll Civil Engn, Changsha 410082, Hunan, Peoples R China
基金
中国国家自然科学基金;
关键词
Solar energy; Thermoelectric cooling technology; Zero energy building; Active building envelope; Energy recovery; Air conditioner; HEAT-PUMP; AIR-CONDITIONER; RECOVERY; SYSTEM; OPTIMIZATION; MANAGEMENT; DESIGN; DRIVEN; COOLER;
D O I
10.1016/j.enbuild.2015.05.029
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Energy crisis and global warming have become more and more serious with the social development. Since buildings account for a significant proportion of the total energy consumption and carbon emissions, it is very necessary and urgent to decrease building energy consumption. Minimizing the need for energy use in buildings through energy-efficient measures and adopting renewable energy are the basic strategies. Zero energy buildings, which only consume solar energy and other renewable energies, have been considered as one solution and have drawn more and more attention in recent years. Solar thermoelectric cooling technologies can be powered directly by a photovoltaic (PV) and cause no harm to the environment, which fully fulfill the demand of ZEBs. This paper reviews solar thermoelectric cooling technologies and proposes a technical route of solar thermoelectric cooling technologies for use in zero energy buildings. It can be seen that solar thermoelectric cooling systems can minimize the energy demands, increase energy effectiveness and reduce fossil energy consumption in buildings. With the thermoelectric and PV industry's development along with the advent of new materials, the solar thermoelectric cooling technologies for use in zero energy buildings are promising. (c) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:207 / 216
页数:10
相关论文
共 47 条
[1]   Review of heat/energy recovery exchangers for use in ZEBs in cold climate countries [J].
Alonso, Maria Justo ;
Liu, Peng ;
Mathisen, Hans M. ;
Ge, Gaoming ;
Simonson, Carey .
BUILDING AND ENVIRONMENT, 2015, 84 :228-237
[2]   Greenhouse gas emissions in China 2007: Inventory and input-output analysis [J].
Chen, G. Q. ;
Zhang, Bo .
ENERGY POLICY, 2010, 38 (10) :6180-6193
[3]   Development of an energy-saving module via combination of solar cells and thermoelectric coolers for green building applications [J].
Cheng, Tsung-Chieh ;
Cheng, Chin-Hsiang ;
Huang, Zhu-Zin ;
Liao, Guo-Chun .
ENERGY, 2011, 36 (01) :133-140
[4]   Experimental investigation and analysis on a thermoelectric refrigerator driven by solar cells [J].
Dai, YJ ;
Wang, RZ ;
Ni, L .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2003, 77 (04) :377-391
[5]   Optimization of thermoelectric heat pumps by operating condition management and heat exchanger design [J].
David, Benjamin ;
Ramousse, Julien ;
Luo, Lingai .
ENERGY CONVERSION AND MANAGEMENT, 2012, 60 :125-133
[6]   Optimal ammonia water absorption refrigeration cycle with maximum internal heat recovery derived from pinch technology [J].
Du, S. ;
Wang, R. Z. ;
Xia, Z. Z. .
ENERGY, 2014, 68 :862-869
[7]   Utilization of thermoelectric cooling in a portable active solar still - An experimental study on winter days [J].
Esfahani, Javad Abolfazli ;
Rahbar, Nader ;
Lavvaf, Mehdi .
DESALINATION, 2011, 269 (1-3) :198-205
[8]   Thermodynamic simulation of condensation heat recovery characteristics of a single stage centrifugal chiller in a hotel [J].
Gong, Guangcai ;
Chen, Feihu ;
Su, Huan ;
Zhou, Jianyong .
APPLIED ENERGY, 2012, 91 (01) :326-333
[9]   Optimum design and experimental study of a thermoelectric ventilator [J].
Han, Tianhe ;
Gong, Guangcai ;
Liu, Zhongbin ;
Zhang, Ling .
APPLIED THERMAL ENGINEERING, 2014, 67 (1-2) :529-539
[10]   Optimization-based feasibility study of an active thermal insulator [J].
Harren-Lewis, Timothy ;
Rangavajhala, Sirisha ;
Messac, Achille ;
Zhang, Junqiang .
BUILDING AND ENVIRONMENT, 2012, 53 :7-15