Araştırma Makalesi
BibTex RIS Kaynak Göster
Yıl 2023, , 921 - 941, 04.08.2023
https://doi.org/10.18186/thermal.1335894

Öz

Kaynakça

  • REFERENCES [1] Adetifa BO, Aremu AK. Computational and experimental study of solar thermal energy store for low–temperature application. J Energy Storage 2018;20:427–438. [CrossRef]
  • [2] Algifri AH, Al–Towaie HA. Efficient orientation impacts of box–type solar cooker on the cooker performance. Sol Energy 2001;70:165–170. [CrossRef]
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Performance parameters, design considerations, social adoption, and computational techniques for solar box cooker development: current status and future possibilities

Yıl 2023, , 921 - 941, 04.08.2023
https://doi.org/10.18186/thermal.1335894

Öz

Practical utility of solar cookers is on rise nowadays. However, due to certain technological challenges this is not catching very fast. Present review paper encompasses studies and future possibilities for solar box cooker research. Various aspects like thermal performance param-eters, various phases of designs improvements, social acceptability issues and computational methods of analysis have been discussed in relation to Solar box cookers so that technical difficulties may be minimized. This paper discusses about introduction to solar box cookers, advantages, disadvantages, various practical considerations that are key factors for any SBC. Further, there is a handsome discussion on the various computational techniques like Com-putational fluid dynamics, Artificial intelligence techniques, IoT etc. Introduction, review of applications till date, and future possibilities related to research using application of these computational techniques have been presented. Emphasis has been given to future possibili-ties for solar box cookers development so that it could be a well-accepted future technology.

Kaynakça

  • REFERENCES [1] Adetifa BO, Aremu AK. Computational and experimental study of solar thermal energy store for low–temperature application. J Energy Storage 2018;20:427–438. [CrossRef]
  • [2] Algifri AH, Al–Towaie HA. Efficient orientation impacts of box–type solar cooker on the cooker performance. Sol Energy 2001;70:165–170. [CrossRef]
  • [3] Amer EH. Theoretical and experimental assessment of a double exposure solar cooker. Energy Convers Manag 2003;44:2651–2663. [CrossRef]
  • [4] Aramesh M, Ghalebani M, Kasaeian A, Zamani H, Lorenzini G, Mahian O, et al. A review of recent advances in solar cooking technology. Renew Energy 2019;140:419–435. [CrossRef]
  • [5] Badran AA, Yousef IA, Joudeh NK, Al Hamad R, Halawa H, Hassouneh HK. Portable solar cooker and water heater. Energy Convers Manag 2010;51:1605–1609. [CrossRef]
  • [6] Binark AK, Türkmen N. Modelling of a hot box solar cooker. Energy Convers Manag 1996;37:303–310.
  • [7] Buddhi D, Sahoo LK. Solar cooker with latent heat storage: design and experimental testing. Energy Convers Manag 1997;38:493–498. [CrossRef]
  • [8] Caner M, Gedik E, Keçebaş A. Investigation on thermal performance calculation of two type solar air collectors using artificial neural network. Expert Syst Appl 2011;38:1668–1674. [CrossRef]
  • [9] Carballo JA, Bonilla J, Berenguel M, Fernández–Reche J, García G. New approach for solar tracking systems based on computer vision, low cost hardware and deep learning. Renew Energy 2019;133:1158–1166. [CrossRef]
  • [10] Chauhan PS, Kumar A, Tekasakul P. Applications of software in solar drying systems: A review. Renew Sustain Energy Rev 2015;51:1326–1337. [CrossRef]
  • [11] Chen CR, Sharma A, Tyagi SK, Buddhi D. Numerical heat transfer studies of PCMs used in a box–type solar cooker. Renew Energy 2008;33:1121–1129. [CrossRef]
  • [12] Chen D, Wang H, Qian H, Zhang G, Shen S. Solar cooker effect test and temperature field simulation of radio telescope subreflector. Appl Therm Eng 2016;109:147–154. [CrossRef]
  • [13] Coccia G, Di Nicola G, Pierantozzi M, Tomassetti S, Aquilanti A. Design, manufacturing, and test of a high concentration ratio solar box cooker with multiple reflectors. Sol Energy 2017;155:781–792. [CrossRef]
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  • [16] Cuce E. Improving thermal power of a cylindrical solar cooker via novel micro/nano porous absorbers: A thermodynamic analysis with experimental validation. Sol Energy 2018;176:211–219. [CrossRef]
  • [17] Cuce PM. Box type solar cookers with sensible thermal energy storage medium: A comparative experimental investigation and thermodynamic analysis. Sol Energy 2018;166:432–440. [CrossRef]
  • [18] De Escobar EM. Low budget solar cookers: an alternative to diminish the use of wood as a source of fuel. Renew Energy 1996;9:754–757. [CrossRef]
  • [19] Edmonds I. Low cost realisation of a high temperature solar cooker. Renew Energy 2018;121:94–101. [CrossRef]
  • [20] El–Sebaii AA, Ibrahim A. Experimental testing of a box–type solar cooker using the standard procedure of cooking power. Renew Energy 2005;30:1861–1871. [CrossRef]
  • [21] Elsheikh AH, Sharshir SW, Abd Elaziz M, Kabeel AE, Guilan W, Haiou Z. Modeling of solar energy systems using artificial neural network: A comprehensive review. Sol Energy 2019;180:622–639. [CrossRef]
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  • [32] Harmim A, Merzouk M, Boukar M, Amar M. Performance study of a box–type solar cooker employing an asymmetric compound parabolic concentrator. Energy 2012;47:471–480. [CrossRef]
  • [33] Harmim A, Merzouk M, Boukar M, Amar M. Solar cooking development in Algerian Sahara: Towards a socially suitable solar cooker. Renew Sustain Energy Rev 2014;37:207–214. [CrossRef]
  • [34] Hassan QF. Internet of things A to Z: technologies and applications. 1st ed. New Jersey: John Wiley and Sons; 2018. [CrossRef]
  • [35] Herez A, Ramadan M, Khaled M. Review on solar cooker systems: Economic and environmental study for different Lebanese scenarios. Renew Sustain Energy Rev 2018;81:421–432. [CrossRef]
  • [36] Heydari A, Forati M, Khatam S. Thermal performance investigation of a hybrid solar air heater applied in a solar dryer using thermodynamic modeling. J Therm Eng 2021;7:715–730. [CrossRef]
  • [37] Hussein HM, El–Ghetany HH, Nada SA. Experimental investigation of novel indirect solar cooker with indoor PCM thermal storage and cooking unit. Energy Convers Manag 2008;49:2237–2246. [CrossRef]
  • [38] Indora S, Kandpal TC. Institutional cooking with solar energy: A review. Renew Sustain Energy Rev 2018;84:131–154. [CrossRef]
  • [39] John G, König–Haagen A, King’ondu CK, Brüggemann D, Nkhonjera L. Galactitol as phase change material for latent heat storage of solar cookers: Investigating thermal behavior in bulk cycling. Sol Energy 2015;119:415–421. [CrossRef]
  • [40] Joshi SB, Jani AR. Design, development and testing of a small scale hybrid solar cooker. Sol Energy 2015;122:148–155. [CrossRef]
  • [41] Kahsay MB, Paintin J, Mustefa A, Haileselassie A, Tesfay M, Gebray B. Theoretical and experimental comparison of box solar cookers with and without internal reflector. Energy Procedia 2014;57:1613–1622. [CrossRef]
  • [42] Kumar N, Agravat S, Chavda T, Mistry HN. Design and development of efficient multipurpose domestic solar cookers/dryers. Renew Energy 2008;33:2207–2211. [CrossRef]
  • [43] Kumar N, Chavda T, Mistry HN. A truncated pyramid non–tracking type multipurpose domestic solar cooker/hot water system. Appl Energy 2010;87:471–477. [CrossRef]
  • [44] Kumar N, Vishwanath G, Gupta A. An exergy based unified test protocol for solar cookers of different geometries. Renew Energy 2012;44:457–462. [CrossRef]
  • [45] Kumar N, Vishwanath G, Gupta A. An exergy–based test protocol for truncated pyramid type solar box cooker. Energy 2011;36:5710–5715. [CrossRef]
  • [46] Kumar R, Adhikari RS, Garg HP, Kumar A. Thermal performance of a solar pressure cooker based on evacuated tube solar collector. Appl Therm Eng 2001;21:1699–1706. [CrossRef]
  • [47] Kumar S. Estimation of design parameters for thermal performance evaluation of box–type solar cooker. Renew Energy 2005;30:1117–1126. [CrossRef]
  • [48] Kumar S. Thermal performance study of box type solar cooker from heating characteristic curves. Energy Convers Manag 2004;45:127–139. [CrossRef]
  • [49] Kurt H, Atik K, Özkaymak M, Recebli Z. Thermal performance parameters estimation of hot box type solar cooker by using artificial neural network. Int J Therm Sci 2008;47:192–200. [CrossRef]
  • [50] Lahkar PJ, Samdarshi SK. A review of the thermal performance parameters of box type solar cookers and identification of their correlations. Renew Sustain Energy Rev 2010;14:1615–1621. [CrossRef]
  • [51] Mahavar S, Rajawat P, Punia RC, Sengar N, Dashora P. Evaluating the optimum load range for box–type solar cookers. Renew Energy 2015;74:187–194. [CrossRef]
  • [52] Mahavar S, Sengar N, Dashora P. Analytical model for electric back–up power estimation of solar box type cookers. Energy 2017;134:871–881. [CrossRef]
  • [53] Mahavar S, Sengar N, Rajawat P, Verma M, Dashora P. Design development and performance studies of a novel single family solar cooker. Renew Energy 2012;47:67–76. [CrossRef]
  • [54] Mawire A, Phori A, Taole S. Performance comparison of thermal energy storage oils for solar cookers during charging. Appl Therm Eng 2014;73:1323–1331. [CrossRef]
  • [55] Mirdha US, Dhariwal SR. Design optimization of solar cooker. Renew Energy 2008;33:530–544.
  • [56] Mullick SC, Kandpal TC, Saxena AK. Thermal test procedure for box–type solar cookers. Solar Energy 1987;39:353–360. [CrossRef]
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  • [58] Nahar NM, Gupta JP, Sharma P. A novel solar cooker for animal feed. Energy Convers Manag 1996;37:77–80. [CrossRef]
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Toplam 94 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Termodinamik ve İstatistiksel Fizik
Bölüm Makaleler
Yazarlar

Satish Kumar Dewangan Bu kişi benim 0000-0001-6698-3247

Yayımlanma Tarihi 4 Ağustos 2023
Gönderilme Tarihi 1 Kasım 2021
Yayımlandığı Sayı Yıl 2023

Kaynak Göster

APA Dewangan, S. K. (2023). Performance parameters, design considerations, social adoption, and computational techniques for solar box cooker development: current status and future possibilities. Journal of Thermal Engineering, 9(4), 921-941. https://doi.org/10.18186/thermal.1335894
AMA Dewangan SK. Performance parameters, design considerations, social adoption, and computational techniques for solar box cooker development: current status and future possibilities. Journal of Thermal Engineering. Ağustos 2023;9(4):921-941. doi:10.18186/thermal.1335894
Chicago Dewangan, Satish Kumar. “Performance Parameters, Design Considerations, Social Adoption, and Computational Techniques for Solar Box Cooker Development: Current Status and Future Possibilities”. Journal of Thermal Engineering 9, sy. 4 (Ağustos 2023): 921-41. https://doi.org/10.18186/thermal.1335894.
EndNote Dewangan SK (01 Ağustos 2023) Performance parameters, design considerations, social adoption, and computational techniques for solar box cooker development: current status and future possibilities. Journal of Thermal Engineering 9 4 921–941.
IEEE S. K. Dewangan, “Performance parameters, design considerations, social adoption, and computational techniques for solar box cooker development: current status and future possibilities”, Journal of Thermal Engineering, c. 9, sy. 4, ss. 921–941, 2023, doi: 10.18186/thermal.1335894.
ISNAD Dewangan, Satish Kumar. “Performance Parameters, Design Considerations, Social Adoption, and Computational Techniques for Solar Box Cooker Development: Current Status and Future Possibilities”. Journal of Thermal Engineering 9/4 (Ağustos 2023), 921-941. https://doi.org/10.18186/thermal.1335894.
JAMA Dewangan SK. Performance parameters, design considerations, social adoption, and computational techniques for solar box cooker development: current status and future possibilities. Journal of Thermal Engineering. 2023;9:921–941.
MLA Dewangan, Satish Kumar. “Performance Parameters, Design Considerations, Social Adoption, and Computational Techniques for Solar Box Cooker Development: Current Status and Future Possibilities”. Journal of Thermal Engineering, c. 9, sy. 4, 2023, ss. 921-4, doi:10.18186/thermal.1335894.
Vancouver Dewangan SK. Performance parameters, design considerations, social adoption, and computational techniques for solar box cooker development: current status and future possibilities. Journal of Thermal Engineering. 2023;9(4):921-4.

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