Research article Special Issues

Estimation of clear sky global solar radiation in Algeria

  • Received: 29 May 2019 Accepted: 17 September 2019 Published: 11 November 2019
  • The paper presents the evaluation of performance of three models at three sites for estimating instantaneous clear-sky global solar radiation on a horizontal surface in Algeria. Additionally, recommend it to be used for estimating solar radiation at many locations in similar climates where radiometric measurements are not available and which might be helpful in the selection of the most suitable locations for solar power installations. The results in general exhibit that for global radiation, the daily correlation coefficient is higher than 0.99, whereas the mean absolute percentage error is less than 5%. The daily mean bias error ranges between -3 and +3%. The daily root mean square error is less than 7%. These results represent a precision that indicates that Atwater & Ball and Bird & Hulstrom models can be used successfully to predict solar radiation over three stations in the studied sites.

    Citation: Djelloul Benatiallah, Ali Benatiallah, Kada Bouchouicha, Bahous Nasri. Estimation of clear sky global solar radiation in Algeria[J]. AIMS Energy, 2019, 7(6): 710-727. doi: 10.3934/energy.2019.6.710

    Related Papers:

  • The paper presents the evaluation of performance of three models at three sites for estimating instantaneous clear-sky global solar radiation on a horizontal surface in Algeria. Additionally, recommend it to be used for estimating solar radiation at many locations in similar climates where radiometric measurements are not available and which might be helpful in the selection of the most suitable locations for solar power installations. The results in general exhibit that for global radiation, the daily correlation coefficient is higher than 0.99, whereas the mean absolute percentage error is less than 5%. The daily mean bias error ranges between -3 and +3%. The daily root mean square error is less than 7%. These results represent a precision that indicates that Atwater & Ball and Bird & Hulstrom models can be used successfully to predict solar radiation over three stations in the studied sites.


    加载中


    [1] Sawin J (2013) Global Status Report. Renewables. REN21 Secretariat, Paris, France.
    [2] Shukl K, Sudhakar K, Rangneker S (2015) Estimation and validation of solar radiation incident on horizontal and tilted surface at Bhopal, Madhya Pradesh, India. Am-Eurasian J Agric Environ Sci 15: 129-139.
    [3] Benatiallah D, Benatiallah A, Bouchouicha K, et al. (2016) Development and modeling of a geographic information system solar flux in Adrar, Algeria. Int J Sys Model Simul 1: 15-19.
    [4] Kumar BS, Sudhakar K (2015) Performance evaluation of 10 MW grid connected solar photovoltaic power plant in India. Energy Rep 1: 184-192. doi: 10.1016/j.egyr.2015.10.001
    [5] Besarati SM, Padilla RV, Goswami DY, et al. (2013) The potential of harnessing solar radiation in Iran: generating solar maps and viability study of PV power plants. Renewable Energy 53: 193-199. doi: 10.1016/j.renene.2012.11.012
    [6] Elhodeiby AS, Metwally HMB, Farahat MA (2011) Performance analysis of 3.6 kW Rooftop grid connected photovoltaic system Egypt. International Conference on Energy Systems and Technologies, Cairo, Egypt, CEST 2011.
    [7] Kambezidis HD, Psiloglou BE, Karagiannis D, et al. (2016) Recent improvements of the Meteorological Radiation Model for solar irradiance estimates under all-sky conditions. Renewable Energy 93: 142-158. doi: 10.1016/j.renene.2016.02.060
    [8] Mejdou L, Taqi R, Belouaggadian N (2011) Estimation of solar radiation in the Casablanca area. International Congress on Renewable Energies and Energy Efficiency, Fès Morocco.
    [9] Mesri M (2015) Numerical methods to calculate solar radiation, validation through a new Graphic User Interface design. Energy Convers Manage 90: 436-445.
    [10] Zaatri A, Azzizi N (2016) Evaluation of some mathematical models of solar radiation received by a ground collector. World J Eng 13: 376-380.
    [11] Lealea T, Tchinda R (2013) Estimation of diffuse solar radiation in the north and far north of Cameroon. Eur Sci J 9.
    [12] Mesri-Merad M (2012) Estimation of solar radiation on the ground by semi-empirical models. Rev Renewable Energies 15: 451-463.
    [13] El-mghouchi Y, Bouardi A, Choulli Z, et al. (2014) Estimate of the direct, diffuse and global solar radiations. Int J Sci Res 3: 1449-1457.
    [14] Yettou F, Malek A, Haddadi M, et al. (2009) Comparative study of two models of solar radiation calculation in Algeria. Renewable Energies Rev 12: 331-346.
    [15] Yaïche M, Bekkouche S (2010) Estimation of global solar radiation in Algeria for different types of sky. Rev Renewable Energies 13: 683-695.
    [16] Gueymard CA (2014) The sun's total and spectral irradiance for solar energy applications and solar radiation models. Sol Energy 76: 423-453.
    [17] Otunla TA (2019) Estimates of clear-sky solar irradiances over Nigeria. Renewable Energy 131: 778-787. doi: 10.1016/j.renene.2018.07.053
    [18] Ruiz-Arias JA, Gueymard CA (2018) Worldwide inter-comparison of clear-sky solar radiation models: Consensus-based review of direct and global irradiance components simulated at the earth surface. Sol Energy 168: 10-29. doi: 10.1016/j.solener.2018.02.008
    [19] Scarpa F, Bianco V, Tagliafico LA (2018) A clear sky physical based solar radiation decomposition model. Therm Sci Eng Prog 6: 323-329. doi: 10.1016/j.tsep.2017.11.004
    [20] Kambezidis HD, Psiloglou BE, Karagiannis D, et al. (2017) Meteorological Radiation Model (MRM v6.1): improvements in diffuse radiation estimates and new approach for implementation of cloud products. Renewable Sustainable Energy Rev 74: 616-637.
    [21] Bilbao J, Miguel A (2010) Estimation of UV-B irradiation from total global solar meteorological data in central Spain. J Geophys Res 115: D00I09.
    [22] De Miguel A, Román R, Bilbao J, et al. (2011) Evolution of erythemal and total shortwave solar radiation in Valladolid, Spain: Effects of atmospheric factors. J Atmos Sol-Terr Phys 73: 578-586. doi: 10.1016/j.jastp.2010.11.021
    [23] Bilbao J, Román R, Miguel A (2014) Turbidity coefficients from normal direct solar irradiance in Central Spain. Atmos Res 143: 73-84. doi: 10.1016/j.atmosres.2014.02.007
    [24] Yamasoe MA, do Rosário NME, Barros KM (2016) Downward solar global irradiance at the surface in São Paulo city-The climatological effects of aerosol and clouds. J Geophys Res 122.
    [25] Sanchez-Lorenzo A, Calbó J, Brunetti M, et al. (2009) Dimming/brightening over the Iberian Peninsula: trends in sunshine duration and cloud cover and their relations with atmospheric circulation. J Geophys Res 114: D00D09.
    [26] Hinkelman LM, Stackhouse PW, Wielicki BA, et al. (2009) Surface insolation trends from satellite and ground measurements: comparisons and challenges. J Geophys Res 114: D00D20.
    [27] Hatzianastassiou N, Papadimas CD, Matsoukas C, et al. (2012) Recent regional surface solar radiation dimming and brightening patterns: inter-hemispherical asymmetry and a dimming in the Southern Hemisphere. Atmos Sci Lett 13: 43-48. doi: 10.1002/asl.361
    [28] Berk A, Bernstein L, Robertson D (1989) MODTRAN: A moderate resolution model for LOWTRAN7, Rep. GL-TR-89-0122. Air Force Geophys. Lab., Bedford, MA.
    [29] Bird RE, Riordan C (1986) Simple solar spectral model for direct and diffuse irradiance on horizontal and tilted planes at the earth's surface for cloudless atmospheres. J Clim Appl Meteorol 25: 87-97. doi: 10.1175/1520-0450(1986)025<0087:SSSMFD>2.0.CO;2
    [30] Gueymard C (1995) A simple model of the atmospheric radiative transfer of sunshine: algorithms and performance assessment. Florida Solar Energy Center.
    [31] ASHRAE (1985) Handbook of fundamentals. Atlanta, Georgia: American Society of Heating, Refrigeration, and Air-Conditioning Engineers.
    [32] Campbell GS, Norman JM (1989) An Introduction to Environmental Biophysics. 2nd ed., New York Springer, ISBN 0-387-94937-2.
    [33] Atwater MA, Ball JT (1978) A numerical solar radiation model based on standard meteorological observations. Sol Energy 21: 163-70.
    [34] Davies JA (1988) Validation of models for estimating solar radiation on horizontal surface. Atmospheric Environment Service, Downsview (Ont.), IEA Task IX Final Report.
    [35] Ineichen P (2006) Comparison of eight clear sky broadband models against 16 independent data banks Sol Energy 80: 468-478.
    [36] Bouchouicha K, Razagui A, Bachari N, et al. (2016) Hourly global solar radiation estimation from MSG-SEVIRI images-case study: Algeria. World J Eng 13: 266-274.
    [37] Bouchouicha K, Razagui A, Bachari N, et al. (2015) Mapping and Geospatial Analysis of Solar Resource in Algeria. Int J Energy, Environ Econ 23: 735-751.
    [38] Bailek N, Bouchouicha K, Al-Mostafa Z, et al. (2018) A new empirical model for forecasting the diffuse solar radiation over Sahara in the Algerian Big South. Renewable Energy 117: 117-530.
    [39] Journée M, Bertrand C (2011) Quality control of solar radiation data within the RMIB solar measurements network. Sol Energy 85: 72-86. doi: 10.1016/j.solener.2010.10.021
    [40] Pandey CK, Katiyar AK (2013) Solar radiation: Models and measurement techniques. J Energy.
    [41] Bird RE, Hulstrom R (1981) A simplified clear sky model for directand diffuse insulation on horizontal surfaces, Seri/Tr. 642-761.
    [42] El-mghouchi Y, El-bouardi A, Sadouk A, et al. (2016) Comparison of three solar radiation models and their validation under all sky conditions-case study: Tetuan city in northern of Morocco. Renewable Sustainable Energy Rev 58: 1432-1444.
    [43] El-mghouchi Y, El-bouardi A, Choulli Z, et al. (2016) Models for obtaining the daily direct, diffuse and global solar radiations. Renewable Sustainable Energy Rev 56: 87-99.
    [44] Bird RE, Huldstrom R (1980) Direct insolation models. Trans ASME J Solar Energy Eng 103: 182-192.
    [45] Stone RJ (1993) Improved statistical procedure for the evaluation of solar radiation estimation models. Sol Energy 51: 289-291.
    [46] National Centers For Environmental Information. Available from: www.ncdc.noaa.gov.
    [47] Hussain M (1984) Estimation of global and diffuse irradiation from sunshine duration and atmospheric water vapour contents. Sol Energy 33: 217-220.
    [48] Van Heuklon TK (1979) Estimating atmospheric ozone for solar radiation models. Sol Energy 22: 63-68.
    [49] Mefti A (2007) Contribution to the solar deposit determination by solar soil data processing and meteosat images. Doctoral Thesis, University of USTHB Algiers.
  • Reader Comments
  • © 2019 the Author(s), licensee AIMS Press. This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0)
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Metrics

Article views(4942) PDF downloads(817) Cited by(5)

Article outline

Figures and Tables

Figures(11)  /  Tables(6)

/

DownLoad:  Full-Size Img  PowerPoint
Return
Return

Catalog