Comparative energy storage study on solar pond with PCM coupled with different Nano particles

被引:10
作者
Poyyamozhi, N. [1 ]
Karthikeyan, A. [2 ]
机构
[1] Sathyabama Inst Sci & Technol, Dept Mech Engn, Chennai, Tamil Nadu, India
[2] Sathyabama Inst Sci & Technol, Sch Mech Engn, Chennai 600119, Tamil Nadu, India
关键词
Solar pond; heat loss; carbon nano tubes; paraffin wax; convection; salinity; PHASE-CHANGE MATERIAL; THERMAL-PROPERTIES; TRANSIENT MODEL; HEAT-TRANSFER; PERFORMANCE; COMPOSITE; PREDICTION; BEHAVIOR; PARAFFIN;
D O I
10.1177/09544062221114789
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Non-conventional energy is one of the clean energy resources. In this, solar energy is plentiful and contains high exergy among non-conventional energy sources. Thermal energy storage is a method of storing thermal energy by heating a storage material that may subsequently be used for heating or power generating. This study focused on the development of solar ponds for effective solar energy storage. The study depicts the heat fluctuation in a solar pond with phase change material and Nanomaterial. Paraffin wax was used as a phase change material and the performance has been investigated and compared with the addition of nanomaterials such as carbon nanotubes and silver-titanium oxide. The experiment was conducted out on the solar pond without and with phase change material, as well as with carbon nanotubes and silver-titanium oxide inclusion. The experimental results exhibit that the phase change material used to store the majority of solar energy, the temperature difference measured at night for the solar pond with nanoparticle-infused phase change material was minimal. The energy storage capacity of the solar pond increases by 7.8%, 21.8%, and 25% when it is coupled with paraffin wax, silver-titanium oxide/paraffin wax, and carbon nanotubes/paraffin wax. The average temperature variation of the solar pond was observed on the weekly basis by 3 degrees C, 5 degrees C, and 7.5 degrees C when it is coupled with paraffin wax, silver-titanium oxide/paraffin wax, and carbon nanotubes /paraffin wax respectively. It is concluded that compared to simple phase change material, the silver-titanium oxide, and carbon nanotubes have better performance in the storage of thermal energy.
引用
收藏
页码:11564 / 11570
页数:7
相关论文
共 22 条
[1]   COMPUTER-SIMULATION OF THE PERFORMANCE OF A SOLAR POND IN THE SOUTHERN PART OF IRAN [J].
AKBARZADEH, A ;
AHMADI, G .
SOLAR ENERGY, 1980, 24 (02) :143-151
[2]   Thermal performance of a combined packed bed solar pond system - a numerical study [J].
Al-Juwayhel, F ;
El-Refaee, MM .
APPLIED THERMAL ENGINEERING, 1998, 18 (12) :1207-1223
[3]  
AL-Musawi Osamah A. H., 2020, Renewable Energy and Environmental Sustainability, V5, DOI 10.1051/rees/2019008
[4]   Performance of solar pond integrated with photovoltaic/thermal collectors [J].
Ali, Manar M. ;
Ahmed, Omer K. ;
Abbas, Ehsan F. .
ENERGY REPORTS, 2020, 6 :3200-3211
[5]   A transient model for temperature prediction in a salt-gradient solar pond and the ground beneath it [J].
Amigo, Jose ;
Meza, Francisco ;
Suarez, Francisco .
ENERGY, 2017, 132 :257-268
[6]   Transient heat extraction modeling method for a rectangular type salt gradient solar pond [J].
Aramesh, Mohamad ;
Pourfayaz, Fathollah ;
Kasaeian, Alibakhsh .
ENERGY CONVERSION AND MANAGEMENT, 2017, 132 :316-326
[7]   Experiment and optimization of mixed medium effect on small-scale salt gradient solar pond [J].
Assari, Mohammad Reza ;
Tabrizi, Hassan Basirat ;
Parvar, Mohsen ;
Nejad, Ali Kavoosi ;
Beik, Alireza Jafar Gholi .
SOLAR ENERGY, 2017, 151 :102-109
[8]   Heat recovery from ground below the solar pond [J].
Ganguly, Sayantan ;
Date, Abhijit ;
Akbarzadeh, Aliakbar .
SOLAR ENERGY, 2017, 155 :1254-1260
[9]   Numerical Modeling of Solar Ponds [J].
Giestas, M. C. ;
Milhazes, J. P. ;
Pina, H. L. .
2013 ISES SOLAR WORLD CONGRESS, 2014, 57 :2416-+
[10]   Thermal energy storage behavior of composite using hybrid nanomaterials as PCM for solar heating systems [J].
Harikrishnan, S. ;
Deepak, K. ;
Kalaiselvam, S. .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2014, 115 (02) :1563-1571