A MULTICOMPONENT PCM WALL OPTIMIZED FOR PASSIVE SOLAR HEATING

被引:255
作者
PEIPPO, K
KAURANEN, P
LUND, PD
机构
[1] Department of Technical Physics, Helsinki University of Technology
关键词
D O I
10.1016/0378-7788(91)90009-R
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The use of phase change materials (PCMs) for short-term heat storage in direct-gain passive solar applications is discussed. Approximate formulae are presented for optimum phase change temperature and the thickness of a PCM wall. Numerical simulations based on the Test Meteorological Years of Helsinki, Finland (60-degrees-N) and Madison, Wisconsin (43-degrees-N) indicate that a phase change temperature of 1-3-degrees-C above the average room temperature would yield optimal diurnal heat storage results. A desired phase change point can be accurately obtained by using fatty acids and their mixtures. To ease the installation, PCMs can be impregnated into conventional construction materials such as plasterboard. The thermal performance of a PCM wall in the direct-gain room in a residential application was briefly studied through hourly simulations. According to conservative estimates, direct energy savings of 5-20% could be expected, depending on climate. As this may not always be adequate for economic cost-effectiveness, the effect of increased thermal comfort plays also a key role in evaluating the total benefits of PCMs storage.
引用
收藏
页码:259 / 270
页数:12
相关论文
共 24 条
[1]  
Lane, Solar Heat Storage: Latent Heat Materials, 1, (1983)
[2]  
Garg, Mullic, Bhargawa, Solar Thermal Energy Storage, (1985)
[3]  
Swet, Phase change storage in passive solar architecture, Proc. 5th Passive Solar Conference, pp. 212-216, (1980)
[4]  
Abhat, Low temperature latent heat thermal energy storage: heat storage materials, Solar Energy, 30, pp. 313-332, (1983)
[5]  
Charach, Zarmi, Zemel, Simple method for assessing the thermal performance of PCM panels, Proc. ISES Solar World Congress, pp. 1212-1216, (1987)
[6]  
Drake, A Study of the Optimal Transition Temperature of PCM Wallboard for Solar Energy Storage, Report ORNL/TM-10210, (1987)
[7]  
Shapiro, Feldman, Hawes, Banu, PCM thermal storage in wallboard, Proc. 12th Passive Solar Conference, pp. 48-58, (1987)
[8]  
Neeper, Potential benefits of distributed PCM thermal storage, Proc. 14th Passive Solar Conference, pp. 283-288, (1989)
[9]  
Salyer, Sircar, Charloff, Advanced phase-change materials for passive solar storage applications, Proc. Solar Building Conference, (1985)
[10]  
Salyer, Sircar, Development of PCM Wallboard for Heating and Cooling of Residential Buildings, (1989)