NUMERICAL INVESTIGATION OF ENTROPY GENERATION DURING THE DISCHARGE OF ENCAPSULATED PHASE CHANGE MATERIAL-BASED THERMAL ENERGY STORAGE

2020 ◽  
Vol 51 (6) ◽  
pp. 517-535
Author(s):  
Kunal Bhagat ◽  
Sandip Kumar Saha
Author(s):  
Benkadour Ayman ◽  
Mustapha Faraji

Abstract Sensible thermal energy storage systems can reduce energy environmental fluctuation dependency with the nocturnal energy needs usage in maintaining the building's comfort levels. In the present paper, Phase Change Material (PCM) is introduced to improve the thermal energy storage capacity of a solar collector integrating a novel composite Phase Change Material (PCM)/concrete wall. A mathematical model based upon the conservation and heat transfer equations has been developed using the enthalpy method. The Numerical investigation has been implemented into a personal FORTRAN code. Many series of simulation runs were executed. The position of the PCM layer within the wall and the PCM melting temperature are varied in the range 0 cm ≤ xm ≤ 7.5 cm and 15 °C ≤ Tm ≤ 35 °C, respectively. The objective is to let inner temperature Tin swing close to a comfort threshold. The position of PCM close to the absorber improves the efficiency of the room heating with good nocturnal use of latent heat stored during the day. PCM melting temperature affects deeply the composite PCM/concrete wall/solar collector behavior. Lastly, PCM gained the system an important benefit which is the solar collector high-Temperature isolation as to not reach the room and disturb the inside comfort zone by melting and solidifying. Those parameters can be considered as the primary pointers for PCM/wall integrated solar collector design. Also, a Daily Heating Potential, Qh, and Thermal Load Leveling, TLL, are introduced to evaluate the system performance.


2021 ◽  
pp. 1-11
Author(s):  
Verena Sulzgruber ◽  
Miriam Unterlass ◽  
Tobia Cavalli ◽  
Heimo Walter

Abstract The pursuit of CO2 reduction targets has increased the need of storage capacities for renewable energy or thermal energy to enhance the efficiency of industrial processes. To combine the benefits of latent and sensible thermal energy storage systems the concept of micro encapsulated phase change material is presented. The microparticles are designed to work in an high temperature thermal energy storage system considering economic and technical points of view. Therefore, particles of sodium nitrate are physio-mechanical coated with polyimide by using spray-drying in a fluidized bed reactor. To evaluate the influence of the process conditions several coating experiments with different process settings are performed. Afterwards the samples are analyzed to determine their properties. Besides a microscopic and a sieving analysis they are tested in the laboratory to define their mechanical and thermal limits. Finally, a rough layout of a thermal energy storage system using the produced particles is presented and compared to a common sensible thermal energy storage.


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