Performance Analysis of SCPP
DOI:
https://doi.org/10.24113/ijoscience.v4i2.119Abstract
The solar lift tower, also known as solar chimney, is a system that allows zero emission of greenhouse gases and promotes green energy technology. It is one of the technologies for renewable energy. The objective of this project is to use the convective flow induced by the solar radiation generated by the ascending pipe. Solar chimneys are ideal for remote communities where solar energy is used as an energy source for residential and industrial purposes, depending on reliability, price and operational factors. This aims to evaluate the overall performance of the solar cell plant (SCPP) in India. The simulated model is analyzed with different parameters to optimize the overall efficiency. The height and diameter of the solar chimney are respectively 792 m and 44 m, and the diameter of the solar collector is 1289 m. This is considered an optimized value because the goal is to increase the power. Due to the high direct solar radiation and the desert lands available in India, are factors that favor the full development of solar power plants, such as solar power plants for the production of thermal and electrical energy for various uses. The different regions are India such as Bihar, Pradesh, Rajasthan, Madhya Pradesh, Tamil Naidu, Maharashtra, etc. India, where solar radiation and global insulation are much better than in other regions. However, to assess the performance of SCPP and energy production throughout India.
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References
Saeed Dehghani, Amir H. Mohammadi, “Optimum dimension of geometric parameters of solar chimney power plants – A multi-objective optimization approach”, Solar Energy 105 (2014) 603–612.
Babkir Ali, “The cost of conserved water for power generation from renewable energy technologies in Alberta, Canada”, Energy Conversion and Management 138 (2017) 461–471.
Aiman Al Alawin, Omar Badran, Ahmad Awad, Yaser Abdelhadi, and Anwar Al-Mofleh, “Feasibility Study of a Solar Chimney Power Plant in Jordan”, Applied Solar Energy, 2012, Vol. 48, No. 4, pp. 260–265.
Asnaghi, S.M. Ladjevardi (2012), “Solar chimney power plant performance in Iran”, Renewable and Sustainable Energy Reviews 16(2012) 3383–3390.
A. Asnaghi, S. M. Ladjevardi, A.Haghparast Kashani, “Solar Chimney Power Plant Performance Analysis in the Central Regions of Iran”, Journal of Solar Energy Engineering (2013), Vol. 135 / 011011/01-07.
Marco Aurelio dos Santos Bernardes, Theodor W. von Backstroml,“Analysis of some available heat transfer coefficients applicable of solar chimney power plant collector”, Solar Energy 83 (2009) 264– 275.
M.A. dos S. Bernardes, A. Voß, G. Weinrebe, “Thermal and technical analyses of solar chimneys”, Solar Energy 75 (2003) pp. 511–524.
Y.J. Dai , H.B. Huang , R.Z. Wang , “Case study of solar chimney power plants in Northwestern regions of China”, Renewable Energy 28 (2003)1295–1304.
Kalyanmoy Deb,Santosh Tiwari, “Omni-optimizer: A generic evolutionary algorithm for single and multi-objective optimization”, European Journal of Operational Research 185 (2008)1062–1087.
T.P. Fluri T.W. von Backstrom.,“Comparison of modelling approaches and layouts for solar chimney turbines”, Solar Energy 82 (2008)239–246.
T.P. Fluri, T.W. Von Backstrom, “Performance analysis of the power conversion unit of a solar chimney power plant”, Solar Energy 82 (2008)999– 1008.
Fluri J.P. Pretorius , C. Van Dyk , T.W. Von Backstrom, D.G. Kroger , G.P.A.G. Van Zijl, “ Cost analysis of solar chimney power plants”, Solar Energy 83 (2009)246–256.
Anthony J. Ganno, Theodor W. von Backstrom, “Solar Chimney Cycle Analysis with System Loss and Solar Collector Performance”, Journal of Solar Energy Engineering (2000), Vol. 122 - 133.
E. Gholamalizadeh, S.H. Mansouri, “A comprehensive approach to design and improve a solar chimney power plant: A special case – Kerman project”, Applied Energy 102(2013), 975–982.
W. Haaf, K. Friedrich , G. Mayr & J. Schlaich, “Solar Chimneys Part I: Principle and Construction of the Pilot Plant in Manzanares” , International Journal of Solar Energy(2007), 2:1, 3-20
Hamdan, M.O., “Analysis of a solar chimney power plant in the Arabian Gulf region”. Renew. Energy 36(2011), 2593–2598.
Clever Ketlogetswea, Jerzy K. Fiszdonb, Omphemetse O. Seabe, “Solar chimney power generation project—The case for Botswana”, Renewable and Sustainable Energy Reviews 12 (2008) pp. 2005–2012.
Konak A., Coit D.W., Smith, A.E., “Multi-objective optimization using genetic algorithms: a tutorial”. Reliab. Eng. Syst. Saf. 91(2006), 992–1007.
Koonsrisuk A., Chitsomboon T., “Partial geometric similarity for solar chimney power plant modeling”,Sol. Energy 83(2009), 1611–1618.
Koonsrisuk A., Chitsomboon T., “A single dimensionless variable for solar chimney power plant modeling”, Sol. Energy 83(2009), 2136–2143.
Koonsrisuk A., Chitsomboon T., “Mathematical modeling of solar chimney power plants”, Energy 51(2013), 314–322.
Nizetic S., Klarin B., “A simplified analytical approach for evaluation of the optimal ratio of pressure drop across the turbine in solar chimney power plants”, Appl. Energy 87(2010), 587–591.
Nizetic, S., Ninic, N., Klarin, B., “Analysis and feasibility of implementing solar chimney power plants in the Mediterranean region”, Energy 33(2008), 1680–1690.
Onyango F., Ochieng R., “The potential of solar chimney for application in rural areas of developing countries”. Fuel 85(2006), 2561–2566.
Petela R., “Thermodynamic study of a simplified model of the solar chimney power plant.” Sol. Energy 83(2009), 94–107.
Pretorius J.P., Kroger D.G., “Critical evaluation of solar chimney power plant performance.” Sol. Energy 80(2006), 535–544.
Pretorius J.P., Kroger D.G. “Thermoeconomic optimization of a solar chimney power plant.” J. Sol. Energy Eng. 130(2008), 021015/1-8.
Sangi R., “Performance evaluation of solar chimney power plants in Iran.” Renew. Sust. Energy Rev. 16(2012), 704–710.
Sangi R., Amidpour M., Hosseinizadeh B., “Modeling and numerical simulation of solar chimney power plants.” Sol. Energy 85(2011), 829– 838.
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