Araştırma Makalesi

Modeling of a solar air collector heat transfer coefficient with regression algorithms

Cilt: 1 Sayı: 1 24 Şubat 2022
  • Ebru Kavak Akpınar *
  • Mehmet Daş
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EN

Modeling of a solar air collector heat transfer coefficient with regression algorithms

Öz

Solar air collectors (SAC) are thermodynamic systems that convert solar energy into useful fluid energy. SACs are very common in heating, cooling, food drying, and many other low-temperature applications. In this study, the heat transfer coefficient in the SAC was calculated according to Newton's cooling law. The obtained values and the thermal performance of the SAC were examined during the sunshine period. At the same time, SAC heat transfer coefficient models were made with the help of regression algorithms (multiple linear regression, simple linear regression) using SAC temperature data obtained by experimental measurements (inlet fluid, outlet fluid, and absorber plate) and solar radiation data on the SAC. As a result of the modeling, linear mathematical equations expressing the heat transfer coefficient for SACs were obtained. Obtained experimental and model data were compared. SAC heat transfer coefficient values were modeled with a mean absolute error of 0.6.

Anahtar Kelimeler

Destekleyen Kurum

Firat University Scientific Research Foundation

Proje Numarası

MF.17.11 and MF. 16.54

Teşekkür

This study was supported by Firat University Scientific Research Foundation

Kaynakça

  1. [1] Huang MY, Wang MLi, Keovisar V, Li X, Kong D, Yu Q. "Comparative study on energy and exergy properties of solar photovoltaic/thermal air collector based on amorphous silicon cells". Applied Thermal Engineering, 185, 116376, 2021.
  2. [2] Arslan E, Aktaş M. "4E analysis of infrared-convective dryer powered solar photovoltaic thermal collector". Solar Energy, 208, 46–57, 2020.
  3. [3] Tagnamas Z, Lamsyehe H, Moussaoui H, Bahammou Y, Kouhila M, Idlimam A, Lamharrar A. "Energy and exergy analyses of carob pulp drying system based on a solar collector". Renewable Energy, 163, 495–503, 2021.
  4. [4] Ceylan I, Gürel AE. "Solar-assisted fluidized bed dryer integrated with a heat pump for mint leaves". Applied Thermal Engineering, 106, 899–905, 2016.
  5. [5] Akpinar EK, Koçyiĝit F. "Energy and exergy analysis of a new flat-plate solar air heater having different obstacles on absorber plates". Applied Energy, 87, 3438–3450, 2010.
  6. [6] Tuncer AD, Khanlari A, Sözen A, Gürbüz EY, Şirin C, Gungor A. "Energy-exergy and enviro-economic survey of solar air heaters with various air channel modifications". Renewable Energy, 160, 67–85, 2020.
  7. [7] Komolafe CA, Oluwaleye IO, Awogbemi O, Osueke CO. "Experimental investigation and thermal analysis of solar air heater having rectangular rib roughness on the absorber plate". Case Studies in Thermal Engineering, 14, 100442, 2019.
  8. [8] Sudhakar P, Cheralathan M. "Thermal performance enhancement of solar air collector using a novel V-groove absorber plate with pin-fins for drying agricultural products: an experimental study". Journal of Thermal Analysis and Calorimetry, 140, 2397–2408, 2020.

Ayrıntılar

Birincil Dil

İngilizce

Konular

Makine Mühendisliği

Bölüm

Araştırma Makalesi

Yazarlar

Ebru Kavak Akpınar * Bu kişi benim
0000-0003-0666-9189
Türkiye

Yayımlanma Tarihi

24 Şubat 2022

Gönderilme Tarihi

31 Aralık 2021

Kabul Tarihi

7 Şubat 2022

Yayımlandığı Sayı

Yıl 2022 Cilt: 1 Sayı: 1

Kaynak Göster

APA
Akpınar, E. K., & Daş, M. (2022). Modeling of a solar air collector heat transfer coefficient with regression algorithms. Firat University Journal of Experimental and Computational Engineering, 1(1), 14-23. https://doi.org/10.5505/fujece.2022.43153
AMA
1.Akpınar EK, Daş M. Modeling of a solar air collector heat transfer coefficient with regression algorithms. Firat University Journal of Experimental and Computational Engineering. 2022;1(1):14-23. doi:10.5505/fujece.2022.43153
Chicago
Akpınar, Ebru Kavak, ve Mehmet Daş. 2022. “Modeling of a solar air collector heat transfer coefficient with regression algorithms”. Firat University Journal of Experimental and Computational Engineering 1 (1): 14-23. https://doi.org/10.5505/fujece.2022.43153.
EndNote
Akpınar EK, Daş M (01 Şubat 2022) Modeling of a solar air collector heat transfer coefficient with regression algorithms. Firat University Journal of Experimental and Computational Engineering 1 1 14–23.
IEEE
[1]E. K. Akpınar ve M. Daş, “Modeling of a solar air collector heat transfer coefficient with regression algorithms”, Firat University Journal of Experimental and Computational Engineering, c. 1, sy 1, ss. 14–23, Şub. 2022, doi: 10.5505/fujece.2022.43153.
ISNAD
Akpınar, Ebru Kavak - Daş, Mehmet. “Modeling of a solar air collector heat transfer coefficient with regression algorithms”. Firat University Journal of Experimental and Computational Engineering 1/1 (01 Şubat 2022): 14-23. https://doi.org/10.5505/fujece.2022.43153.
JAMA
1.Akpınar EK, Daş M. Modeling of a solar air collector heat transfer coefficient with regression algorithms. Firat University Journal of Experimental and Computational Engineering. 2022;1:14–23.
MLA
Akpınar, Ebru Kavak, ve Mehmet Daş. “Modeling of a solar air collector heat transfer coefficient with regression algorithms”. Firat University Journal of Experimental and Computational Engineering, c. 1, sy 1, Şubat 2022, ss. 14-23, doi:10.5505/fujece.2022.43153.
Vancouver
1.Ebru Kavak Akpınar, Mehmet Daş. Modeling of a solar air collector heat transfer coefficient with regression algorithms. Firat University Journal of Experimental and Computational Engineering. 01 Şubat 2022;1(1):14-23. doi:10.5505/fujece.2022.43153

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