Optimal combination of an air-to-air thermoelectric heat pump with a heat recovery system to HVAC a passive house dwelling

被引:27
作者
Martinez, A. [2 ,3 ]
Astrain, D. [2 ,3 ]
de Garayo, S. Diaz [1 ]
机构
[1] Natl Renewable Energy Ctr, Sarriguren 31621, Spain
[2] Univ Publ Navarra, Dept Engn, Pamplona 31006, Spain
[3] Smart Cities Inst, Pamplona, Spain
关键词
Thermoelectricity; HEAT pump; Heat recovery unit; Passive house; HVAC; VENTILATION; PERFORMANCE; DESIGN;
D O I
10.1016/j.apenergy.2021.118443
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The main objective of this research is to propose a HVAC system for an 80-100 m(2) passive house dwelling based on a thermoelectric air-to-air heat pump combined with a heat recovery unit. The computational parametric investigation demonstrates that the integration of the heat recovery unit significantly improves the coefficient of performance of the heat pump: 2-3 times for partial load operation and 12.5 % for maximum load. Moreover, the number of required modules to reach the maximum performance is at least 5 times lower.A second analysis assesses its seasonal heating performance in three climates as stated by the energy labeling Directive 2010/30/EU. The optimum number of thermoelectric modules in all cases is close to 15, regardless of the climate. This 15-modules thermoelectric heat pump provides a maximum heating capacity of 2500 W and 405 W for cooling, which compensates the typical internal heat gains and the transmission heat flux through the building envelope and the ventilation in the passive house dwelling. Finally, the analysis reveals that, in order to increase this cooling capacity, it is more convenient the improvement of the heat exchangers between the thermoelectric modules and the cooling air stream, rather than increasing the number of modules.
引用
收藏
页数:16
相关论文
共 35 条
[1]  
Alejandro M-R., 2021, PASSIVHAUS ENCY, V1, P20, DOI [10.3390/ encyclopedia1010005, DOI 10.3390/ENCYCLOPEDIA1010005]
[2]  
[Anonymous], 2011, The EU Biodiversity Strategy to 2020, P1, DOI [DOI 10.2779/39229, 10.2779/39229]
[3]  
[Anonymous], 2012, OFFICIAL J EUROPEAN, P1, DOI [DOI 10.3000/19770677.L_2012.315.ENG, 10.3000/19770677.L_2012.315.eng]
[4]  
[Anonymous], 2010, Official Journal of the European Union, L153 of, V18, P13, DOI DOI 10.3000/17252555.L_2010.153.ENG
[5]   Heat pipes thermal performance for a reversible thermoelectric cooler-heat pump for a nZEB [J].
Aranguren, P. ;
DiazDeGarayo, S. ;
Martinez, A. ;
Araiz, M. ;
Astrain, D. .
ENERGY AND BUILDINGS, 2019, 187 :163-172
[6]   A comparative study of different heat exchange systems in a thermoelectric refrigerator and their influence on the efficiency [J].
Astrain, D. ;
Aranguren, P. ;
Martinez, A. ;
Rodriguez, A. ;
Perez, M. G. .
APPLIED THERMAL ENGINEERING, 2016, 103 :1289-1298
[7]   Thermoelectric heat recovery units applied in the energy harvest built ventilation: Parametric investigation and performance optimization [J].
Cai, Yang ;
Mei, Shuo-Jun ;
Liu, Di ;
Zhao, Fu-Yun ;
Wang, Han-Qing .
ENERGY CONVERSION AND MANAGEMENT, 2018, 171 :1163-1176
[8]   Applicability of thermoelectric heat pump in a dedicated outdoor air system [J].
Cheon, Seong-Yong ;
Lim, Hansol ;
Jeong, Jae-Weon .
ENERGY, 2019, 173 :244-262
[9]   Prototype of an air to air thermoelectric heat pump integrated with a double flux mechanical ventilation system for passive houses [J].
Diaz de Garayo, S. ;
Martinez, A. ;
Aranguren, P. ;
Astrain, D. .
APPLIED THERMAL ENGINEERING, 2021, 190
[10]  
EU, 2010, DIR 2010 30 EU IND L