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In-situ performance evaluation of photovoltaic solar water pumping system in the rural region

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The Photovoltaic solar cells convert the radiant energy from the Sun directly to electricity. Solar photovoltaic systems can help to fulfil the entire energy demands in rural areas by harnessing all the opportunities and potentials. The water is an important element in the life of plants, animals and human being. In this paper, it has been studied that solar energy could be used for water pumping applications such as providing water to rural and remote areas. It is being practiced in south Libya. The data is being collected over two years by measuring the water flow on daily basis at pumping head of (35m). In addition, this presents an evaluation of PV system in water pumping and piping systems and estimation of pumping energy cost. The solar pumping systems depend on water flow rate, pumping head and solar irradiance. The system components contain inverter, pump and PV generator. Besides, the effects of the climate and operating conditions on the performance of PV pumping systems has been discussed.
Rocznik
Strony
69--76
Opis fizyczny
Bibliogr. 24 poz., rys., tab., wykr.
Twórcy
  • Arab Centre for Research and Development of Saharian Communities - Mourzuq, Libya
  • Mechanical Engineering Department, University of Engineering & Technology Lahore (RCET, Gujranwala)
  • Arab Centre for Research and Development of Saharian Communities - Mourzuq, Libya
autor
  • Arab Centre for Research and Development of Saharian Communities - Mourzuq, Libya
Bibliografia
  • 1. Reza, K.M., S. Das, and Z.H.J.D.U.J.o.S. Mahmood, Performance Analysis of a PV Pump Harvesting Rain Water in the Drought Prone Area of Bangladesh. 2012. 60(1): p. 37-41.
  • 2. Roy, R.B.J.C.J.o.E. and E. Engineering, Design and performance analysis of the solar PV DC water pumping system. 2012. 3(7): p. 403-412.
  • 3. Mousa, M., I.S. Ibrahim, and I.J.R.e. Molokhia, Comparative study in supplying electrical energy to small remote loads in Libya. 1998. 14(1-4): p. 135-140.
  • 4. Al-Jadi, I.S.I., M. EKhlat, and N. Krema. Photovoltaic in Libya applications, and evaluation. in Proceedings of the International Conference on Renewable Energy for Developing Countries. 2005.
  • 5. Shebani, M.M. and T.J.J.o.R.E. Iqbal, Dynamic Modeling, Control, and Analysis of a Solar Water Pumping System for Libya. 2017. 2017.
  • 6. Tiwari, A.K. and V.R.J.R.E. Kalamkar, Effects of total head and solar radiation on the performance of solar water pumping system. 2018. 118: p. 919-927.
  • 7. Khalil, A. and A. Asheibe. The chances and challenges for renewable energy in Libya. in the Proceedings of the Renewable Energy Conference. 2015.
  • 8. Green, M.A.J.P.P., MA Green, K. Emery, Y. Hishikawa, W. Warta, and ED Dunlop, Solar cell efficiency tables (Version 45), Prog. Photovoltaics 23, 1 (2015). 2015. 23: p. 1.
  • 9. Khatib, T.J.J.o.a.s., Deign of Photovoltaic Water Pumping Systems at Minimum. 2010. 10(22): p. 27732784.
  • 10. Kumar, M., F. Ansari, and A. Jha, Efficient Generation of Electricity by Photovoltic Systems for Water Pumping in Rural Areas.
  • 11. Ramelli, R., et al. International Symposium on Solar Physics and Solar Eclipses. in Solar Physics and Solar Eclipses (SPSE 2006). 2006.
  • 12. Marsh, L.S., Pumping water from remote locations for livestock watering. 2009.
  • 13. S. Chandel, M.N.N., and R. Chandel, , Review of solar photovoltaic water pumping system technology for irrigation and community drinking water supplies. Renewable and Sustainable Energy Reviews, 2015. 49: p. 1084-1099.
  • 14. Treephak, K., et al., An economic evaluation comparison of solar water pumping system with engine pumping system for rice cultivation. 2015. 54(8S1): p. 08KH01.
  • 15. Odeh, I., Y. Yohanis, and B.J.S.e. Norton, Influence of pumping head, insolation and PV array size on PV water pumping system performance. 2006. 80(1): p. 51-64.
  • 16. Hamza, A.A. and A.Z.J.R.e. Taha, Performance of submersible PV solar pumping systems under conditions in the Sudan. 1995. 6(5-6): p. 491-495.
  • 17. Ghoneim, A.J.E.c. and management, Design optimization of photovoltaic powered water pumping systems. 2006. 47(11-12): p. 1449-1463.
  • 18. Chilundo, R.J., et al., Design and Performance of Photovoltaic Water Pumping Systems: Comprehensive Review towards a Renewable Strategy for Mozambique. 2018. 6(07): p. 32.
  • 19. Kyaing, N.S.Y. and W. Swe, Design Considerations of PV Water Pumping and Rural Electricity System (2011) in Lower Myanmar.
  • 20. Mohamed, A.O., A.J.J.o.B. Hasan, and a.s. Research, Effect of dust accumulation on performance of photovoltaic solar modules in Sahara environment. 2012. 2(11): p. 11030-11036.
  • 21. Gouws, R. and T. Lukhwareni, Factors influencing the performance and efficiency of solar water pumping systems: A review. 2012.
  • 22. Mohamed, A.M., A. Al-Habaibeh, and H.J.R.e. Abdo, An investigation into the current utilisation and prospective of renewable energy resources and technologies in Libya. 2013. 50: p. 732-740.
  • 23. Ibrahim, I.S. and N. Kreama, PERFORMANCE AND EXPERIENCE OF STAND ALONE PV SYSTEMS USED TO ELECTRIFY AN ISOLATED VILLAGE IN LIBYA.
  • 24. Jenkins, T., Solar-powered Water Pump Design Spreadsheet Version II: User Manual. 2014: New Mexico State University, Cooperative Extension Service, Engineering New
Uwagi
PL
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-632992f8-c79b-4c09-82b1-47efaa2296d6
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