scholarly journals Thermal Performance of a Salt Gradient Non-Convective Solar Pond in Subtropical Region Climatic Conditions

Author(s):  
Sendhil Kumar Natarajan ◽  
Susant Kumar Sahu ◽  
Arjun Singh K
2013 ◽  
Vol 2013 ◽  
pp. 1-5 ◽  
Author(s):  
Abhishek Saxena ◽  
Varun Goel

A solar pond has been fabricated to analyze the thermal behavior of it, in the climatic conditions of Moradabad, Uttar Pradesh. Sodium chloride (NaCl) has been used to form a salt gradient for better performance, and a dark-colored (blackened) rigid surface bottom with 1 mm irregularities has been considered for trapping the heat in a good amount. A solar pond with a surface area of 2.56 m2and a depth of 1 m has been filled with salty water of various densities to form three salty water zones (upper convective, nonconvective, and heat storage). A few investigations have been carried out to evaluate the thermal efficiencies of three different zones of the solar pond. An attempt is also made to improve the thermal performance of the salt gradient solar pond.


Solar Energy ◽  
2003 ◽  
Vol 74 (5) ◽  
pp. 429-436 ◽  
Author(s):  
M. Husain ◽  
P.S. Patil ◽  
S.R. Patil ◽  
S.K. Samdarshi

2020 ◽  
pp. 014459872097416
Author(s):  
Hua Wang ◽  
Ma Xiaomeng ◽  
Zhang Liugang ◽  
Xinmin Zhang ◽  
Yanyang Mei ◽  
...  

In this paper, the effect of adding the composite PCM (Phase Change Material) heat storage capsules to the heat storage layer of the salt gradient solar pond on the thermal performance of the solar pond was studied numerically and experimentally. Based on the program-controlled temperature simulation of the solar pond experimental platform, the effect of adding the composite PCM (48–50°C and 58–60°C melting point paraffin) heat storage capsules on the solar pond temperature and stability was studied, and a numerical simulation model was established to be compared by the experimental results. The results showed that the experimental temperature was consistent with the simulation results; the solar pond with PCM capsules had a smaller temperature change range than the conventional solar pond during the phase change process, but it did not have such effect in the non-phase transition process; in terms of flow, the addition of the PCM phase change units could reduce the flow rate of the heat storage zone, and the PCM with a larger latent heat had a more obvious suppression effect on the flow. Therefore, within a certain temperature range, adding PCM units to the solar pond had a positive effect on maintaining the stable temperature and stability of solar pond.


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