Performance evaluation on solar still integrated with nano-composite phase change materials

被引:53
作者
Rajasekhar G. [1 ]
Eswaramoorthy M. [2 ]
机构
[1] BTL Institute of Technology, Bengaluru, Karnataka
[2] ACS College of Engineering, Bengaluru, Karnataka
关键词
Phase Change Material; Thermal Energy Storage; Apply Solar Energy; Thermal Storage; Phase Change Material;
D O I
10.3103/S0003701X15010119
中图分类号
学科分类号
摘要
This paper communicates the performance evaluation of single slope solar still integrated with nano-composite phase change materials and compare with the experimental results of with and without phase change materials. A solar still with 1 m2 surface area is developed with non-selective coating of absorber sheet with the provision of thermal energy storage materials. The solar still is tested on typical days with and without thermal energy storage materials. It is found that from the experimental studies that nano-materails (Al2O3) dispersed in paraffin wax is giving better cumulative yield of distillate than paraffin wax alone and without paraffin wax thermal storage. The daily efficiency of the solar still is computed for solar still with nano-composite phase change materials is 45% and solar still paraffin wax alone thermal storage is 40% and solar still without any thermal storage is 38%. It is concluded from the experimental studies; solar still integrated with nano-composite phase change materials gives better performance than with and without phase change material alone. © 2015, Allerton Press, Inc.
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页码:15 / 21
页数:6
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共 18 条
  • [1] Radhwan A.M., Transient performance of a stepped solar still with built-in latent heat thermal energy storage, Desalination, 171, pp. 61-79, (2004)
  • [2] Abdallah S., Abu-Khader M.M., Badran O., Performance evaluation of solar distillation using vacuum tube coupled with photovoltaic system, Appl. Solar Energy, 45, 3, pp. 176-180, (2009)
  • [3] Al-Garni A.Z., Enhancing the solar still using immersion type water heater productivity and the effect of external cooling fan in winter, Appl. Solar Energy, 48, 3, pp. 193-200, (2012)
  • [4] Anburaj P.R., Samuel Hansen K., Kalidasa M., Performance of an inclined solar still with rectangular grooves and ridges, Appl. Solar Energy, 49, 1, pp. 22-26, (2013)
  • [5] Sharma A., Tyagi V.V., Chen C.R., Buddi D., Review on thermal energy storage with phase change materials and applications, Renew. Sust. Energy Rev., 13, pp. 318-345, (2009)
  • [6] El-Sebaii A., Al-Ghamdi A.A., Et al., Thermal performance of a single basin solar still with PCM as a storage medium, Appl. Energy, 86, pp. 1187-1195, (2009)
  • [7] El-Sebaii A., Yaghmour S.J., Al-Hazmi F.S., Et al., Active single basin solar still with a sensible storage medium, Desalination, pp. 699-706, (2009)
  • [8] Farshad F.T., Ashkan Z.S., Experimental study of an integrated basin solar still with a sandy heat reservoir, Desalination, pp. 195-199, (2010)
  • [9] Hitesh N., Panchal Shah P.K., Performance analysis of double basin solar still with evacuated tubes, Appl. Solar Energy, 49, 3, pp. 174-179, (2013)
  • [10] Dashtban M., Tabrizi F.F., Thermal analysis of a weir-type cascade solar still integrated with PCM storage, Desalination, pp. 415-422, (2011)