Numerical characterization of thermocline behaviour of combined sensible-latent heat storage tank using brick manganese rod structure impregnated with PCM capsules

Solar Energy ◽  
2019 ◽  
Vol 180 ◽  
pp. 243-256 ◽  
Author(s):  
N. Ahmed ◽  
K.E. Elfeky ◽  
Mumtaz A. Qaisrani ◽  
Q.W. Wang
2013 ◽  
Vol 116 (1135) ◽  
pp. 392-393
Author(s):  
Hideki TAKEBAYASHI ◽  
Naomichi YANO

Energies ◽  
2021 ◽  
Vol 14 (5) ◽  
pp. 1376
Author(s):  
Jesús Cerezo ◽  
Fernando Lara ◽  
Rosenberg J. Romero ◽  
Antonio Rodríguez

The energy consumption for space cooling is growing faster than for any other end-use in buildings, more than tripling between 1990 and 2016. Energy efficiency is an important topic in the drive to reduce the consumption of electricity, particularly in air conditioning. This paper presents a simulation of an absorption cooling system with a parabolic trough collector under dynamic conditions using TRaNsient SYstem Simulation (TRNSYS) software. The thermal analysis seeks to evaluate a storage tank at three different configurations: (1) sensible heat, (2) latent heat, and (3) latent heat incorporating a tempering valve. The latent heat storage tank is a rectangular heat exchanger using MgCl2·6H2O as the phase change material, programmed in EES software; in addition, water and synthetic organic fluid were analyzed as heating fluids. The process was analyzed while varying the solar collector area from 20 to 40 m2 and the storage tank volume from 0.25 to 0.75 m3. The results showed that the solar collector of configuration 1 is unable to satisfy the energy demand. Configuration 2 can satisfy the demand with water and a storage tank volume above 0.50 m3 and 30 m2, while configuration 3 can satisfy the demand above 0.50 m3 and 20 m2 with water.


2009 ◽  
Vol 131 (4) ◽  
Author(s):  
N. Nallusamy ◽  
R. Velraj

The present work investigates, theoretically and experimentally, the thermal performance of a packed bed combined sensible and latent heat storage unit, integrated with the solar water heating system. A one-dimensional porous medium approach with the finite difference technique is used to develop the numerical model to obtain the temperature profiles of both the phase change material (PCM) and heat transfer fluid (HTF), and the molten mass fraction of the PCM at any axial location of the cylindrical storage tank during the charging process. The model also incorporates the effect of the varying fluid inlet temperature to accommodate the actual conditions that prevails in the solar collector. Experimental apparatus utilizing paraffin as PCM, which is filled in high-density polyethylene spherical capsules, is constructed and integrated with a solar flat plate collector to conduct the experiments. The water used as HTF to transfer heat from the solar collector to the storage tank also acts as a sensible heat storage (SHS) material. The results of the numerical model are compared into the experimental results of the temperature profile for various porosities and HTF flow rates. It is found that the results of the numerical model are in good agreement with the experimental results. The performance parameters, such as instantaneous heat stored, cumulative heat stored, and charging rate are also studied in detail.


Chemosphere ◽  
2019 ◽  
Vol 236 ◽  
pp. 124269 ◽  
Author(s):  
Jisoo Jeon ◽  
Ji Hun Park ◽  
Seunghwan Wi ◽  
Sungwoong Yang ◽  
Yong Sik Ok ◽  
...  

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