1 |
DONKERS P A, SOGUTOGLU L C, HUININK H P, et al. A review of salt hydrates for seasonal heat storage in domestic applications[J]. Applied Energy, 2017, 199: 45-68.
|
2 |
VISSCHER K, VELDHUIS J B. Comparison of candidate materials for seasonal storage of solar heat through danamic simulation of building and renewable energy system[C]//Proceedings of the The 9th International Building Performance Simulation Association, Montreal, Canada, F August 15-18, 2005.
|
3 |
JARIMI Hasila, DEVRIM Aydin, ZHANG Yanan, et al. Materials characterization of innovative composite materials for solar-driven thermochemical heat storage (THS) suitable for building application[J]. International Journal of Low-Carbon Technologies, 2019, 14(3): 313-325.
|
4 |
JARIMI Hasila, AYDIN Devrim, ZHANG Yanan, et al. Review on the recent progress of thermochemical materials and processes for solar thermal energy storage and industrial waste heat recovery[J]. International Journal of Low-Carbon Technologies, 2019, 14(1): 44-69.
|
5 |
ZHANG Yannan, WANG Ruzhu. Sorption thermal energy storage: Concept, process, applications and perspectives[J]. Energy Storage Materials, 2020, 27: 352-369.
|
6 |
RAMMELBERG H U. Thermochemical heat storage materials—Performance of mixed salt hydrates[J]. Solar Energy, 2016, 136: 571-589.
|
7 |
ZHAO Qian, LIN Jianquan, HUANG Haotian, et al. Optimization of thermochemical energy storage systems based on hydrated salts: A review[J]. Energy and Buildings, 2021, 244: 111035.
|
8 |
AYDIN D, CASEY S P, CHEN X, et al. Novel “open-sorption pipe” reactor for solar thermal energy storage[J]. Energy Conversion and Management, 2016, 121: 321-334.
|
9 |
MICHEL B, MAZET N, NEVEUET P, et al. Experimental investigation of an innovative thermochemical process operating with a hydrate salt and moist air for thermal storage of solar energy: Global performance[J]. Applied Energy, 2014, 129: 177-186.
|
10 |
LI Wei, GUO Hao, ZENG Min, et al. Performance of SrBr2·6H2O based seasonal thermochemical heat storage in a novel multilayered sieve reactor[J]. Energy Conversion and Management, 2019, 198: 111843.
|
11 |
刘洪芝, 刘思琪, 叶振东, 等. 钙镁二元水合盐复合热化学储热单元的储热特性研究[J]. 流体机械, 2022, 50(7): 1-8, 28.
|
|
LIU Hongzhi, LIU Siqi, YE Zhendong, et al. Study on energy storage performance of thermochemical heat storage unit based on composite calcium-magnesium binary salt hydrates[J]. Fluid Machinery, 2022, 50(7): 1-8, 28.
|
12 |
WINTERBERG M, TSOTSAS E, KRISCHKE A. A simple and coherent set of coefficients for modelling of heat and mass transport with and without chemical reaction in tubes filled with spheres[J]. Chemical Engineering Science, 2000, 55(5): 967-979.
|
13 |
MAJUMDAR Pradip. Heat and mass transfer in composite desiccant pore structures for dehumidification[J]. Solar Energy, 1998, 62(1): 1-10.
|
14 |
ERGUN S. Fluid flow through packed columns[J]. Chemical Engineering Progress, 1952, 48: 89-94.
|
15 |
KANDULA M. On the effective thermal conductivity of porous packed beds with uniform spherical particles[J]. Journal of Porous Media, 2011, 14(10): 919-926.
|
16 |
GLUECKAUF E. Theory of chromatography. Part 10.—Formulæ for diffusion into spheres and their application to chromatography[J]. Transactions of the Faraday Society, 1955, 51: 1540-1551.
|
17 |
SUZUKI M. Adsorption engineering[M]. Japan: Kodansya Ltd., Tokyo and Elsevier Science Publishers B. V., Amsterdam, 1990.
|
18 |
KENNARD E H. Kinetic theory of gases[M]. New York: McGraw-hill, 1938.
|
19 |
SLADEK K J, GILLILAND E R, BADDOUR R F. Diffusion on surfaces. Ⅱ. correlation of diffusivities of physically and chemically adsorbed species[J]. Industrial & Engineering Chemistry Fundamentals, 1974, 13(2): 100-105.
|
20 |
XU Chao, YU Zibo, XIE Yunyun, et al. Study of the hydration behavior of zeolite-MgSO4 composites for long-term heat storage[J]. Applied Thermal Engineering, 2018, 129: 250-259.
|
21 |
GAEINI M, WIND R, DONKERS P A, et al. Development of a validated 2D model for flow, moisture and heat transport in a packed bed reactor using MRI experiment and a lab-scale reactor setup[J]. International Journal of Heat and Mass Transfer, 2017, 113: 1116-1129.
|
22 |
SHEN Yongliang, LIU Shuli, MAZHAR A R, et al. A review of solar-driven short-term low temperature heat storage systems[J]. Renewable and Sustainable Energy Reviews, 2021, 141: 110824.
|