A review on the use of SrBr2•6H2O as a potential material for low temperature energy storage systems and building applications

被引:82
作者
Fopah-Lele, Armand [1 ]
Tamba, Jean Gaston [2 ]
机构
[1] Eeole Super Metiers Energies Renouvelables ESMER, Lab Procedes Innovants Energie Durable PIE, 071 BP 004 Zogbo, Cotonou, Benin
[2] Univ Douala, Univ Inst Technol IUT, Dept Thermal & Energy Engn, POB 8698, Douala, Cameroon
关键词
Strontium bromide; PCM; Sorption capacity; Building; Composite; Design; Heating and cooling; THERMOCHEMICAL HEAT-STORAGE; COMPOSITE SORBENTS; THERMAL STORAGE; HYDRATE SALT; SORPTION; PERFORMANCE; SRBR2; DENSITY;
D O I
10.1016/j.solmat.2017.02.018
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 combination of its sorption capacity, reaction enthalpy, melting temperatures around available industrial waste heat and solar source and high thermal efficiency (compared to others salt hydrates) makes strontium bromide and its two respective hydrates a potential material for low temperature energy storage and building applications. It is considered among suitable materials for low thermochemical and sorption energy storage application (N'Tsoukpoe et al. [7]) due to its high-energy storage density and end-user temperature. Strontium bromide is simultaneously considered as a phase change and a thermochemical material. A short analysis of the general physical and chemical properties such as thermodynamics, melting temperature, density, sorption kinetics, exergy, thermal conductivity, specific heat capacity and permeability highlights the advantageous properties. The review on the use of strontium bromide in pure or modified form is further extended to applications such as building structure, composite design for thermal storage, and heating and cooling. The usefulness and disadvantages of its use in closed/open processes are discussed. Possible solutions to issues are further presented or proposed.
引用
收藏
页码:175 / 187
页数:13
相关论文
共 52 条
[1]   Closed and open thermochemical energy storage: Energy- and exergy-based comparisons [J].
Abedin, Ali Haji ;
Rosen, Marc A. .
ENERGY, 2012, 41 (01) :83-92
[2]   STRONTIUM DIBROMIDE HEXAHYDRATE [J].
ABRAHAMS, I ;
VORDEMVENNE, E .
ACTA CRYSTALLOGRAPHICA SECTION C-CRYSTAL STRUCTURE COMMUNICATIONS, 1995, 51 :183-185
[3]  
[Anonymous], 1998, J. Phys. Chem. Ref. Data
[4]  
Barin I., 1977, Thermochemical Properties of Inorganic Substances: Supplement, P1
[5]  
Bissell A.J., 2015, W.O. Patent, Patent No. [2,015,025,175, 2015025175]
[6]   Experimental and modelling study of twin cells with latent heat storage walls [J].
Bontemps, Andre ;
Ahmad, Maha ;
Johannes, Kevin ;
Sallee, Hebert .
ENERGY AND BUILDINGS, 2011, 43 (09) :2456-2461
[7]  
Cabeza L.F., 2016, APPL ENERGY
[8]   A new composite sorbent based on SrBr2 and silica gel for solar energy storage application with high energy storage density and stability [J].
Courbon, Emilie ;
D'Ans, Pierre ;
Permyakova, Anastasia ;
Skrylnyk, Oleksandr ;
Steunou, Nathalie ;
Degrez, Marc ;
Frere, Marc .
APPLIED ENERGY, 2017, 190 :1184-1194
[9]   CRYSTAL STRUCTURE OF STRONTIUM BROMIDE MONOHYDRATE [J].
DYKE, M ;
SASS, RL .
JOURNAL OF PHYSICAL CHEMISTRY, 1964, 68 (11) :3259-&
[10]  
Ferchaud C, 2012, 12 INT C EN STOR LLE, P4