Araştırma Makalesi
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Yıl 2023, Cilt: 9 Sayı: 6, 1490 - 1501, 30.11.2023
https://doi.org/10.18186/thermal.1400977

Öz

Kaynakça

  • REFERENCES
  • [1] Gude VG. Energy storage for desalination processes powered by renewable energy and waste heat sources. Appl Energy 2015;137:877–898.
  • [2] Antipova E, Boer D, Cabeza LF, Gosalbez GG, Jimenez L. Multi-objective design of reverse osmosis plants integrated with solar Rankine cycles and thermal energy storage. Appl Energy 2013;102:1137–47.
  • [3] Salata F, Coppi M. A first approach study on the desalination of sea water using heat transformers powered by solar ponds. Appl Energy 2014;136:611–618.
  • [4] Sayer A, Al-Hussaini H, Campbell AN. New theoretical modelling of heat transfer in solar ponds. Sol Energy 2016;125:207–218.
  • [5] Ghaffour N, Lattemann S, Missimer T, Kim CN, Sinha S, Amy G. Renewable energy-driven innovative energy-efficient desalination technologies. Appl Energy 2014;136:1155–1165.
  • [6] Ganguly S, Date A, Akbarzadeh A. Heat recovery from ground below the solar pond. Sol Energy 2017;155:1254–1260.
  • [7] Goswami R, Das R. Investigation of thermal and electrical performance in a salt gradient solar pond. J Phys Conf Ser 2019;1240:012111.
  • [8] Goswami R, Das R. Experimental analysis of a novel solar pond driven thermoelectric energy system. J Energy Resour Technol 2020;142:121302.
  • [9] Kumar A, Das R. Effect of peripheral heat conduction in salt-gradient solar ponds. J Energy Storage 2020;33:102084.
  • [10] Rghif Y, Zeghmati B, Bahraoui F. Soret and Dufour effects on thermosolutal convection developed in a salt gradient solar pond. Int J Therm Sci 2021;161:106760.
  • [11] Sayer A, Mahood H. Improved thermal efficiency of salinity gradient solar pond by suppressing surface evaporation using an air layer. Energy Eng 2020;117:367–379.
  • [12] Faqeha H, Bawahab M, Vet QL, Faghih A, Date A, Akbarzadah A. An experimental study to establish a salt gradient solar pond (SGSP). Energy Procedia 2019;160:239–245.
  • [13] Rawa MJH, Al-Turki YA, Abu-Hamdeh NH, Khoshvaght‐Aliabadi M, Alimoradi A. Enhancement of heat extraction from solar ponds by using twisted coil‐tubes. Environ Prog Sustain Energy 2021;40:13604.
  • [14] Lu H, Swift AH, Hein HD, Walton JC. Advancements in salinity gradient solar pond technology based on sixteen years of operational experience. J Sol Energy Eng 2004;126:759–767.
  • [15] Andrews J, Akbarzadeh A. Enhancing the thermal efficiency of solar ponds by extracting heat from the gradient layer. Sol Energy 2005;78:704–716.
  • [16] Date A, Yaakob Y, Date A, Krishnapillai S, Akbarzadeh A. Heat extraction from Non-Convective and Lower Convective Zones of the solar pond: A transient study. Sol Energy 2013;97:517–528.
  • [17] Sayer A, Monjezi A, Al-Hussaini H, Campbell A. Experimental and theoretical investigation of the temperature and concentration distributions of the upper and lower convective zones of a small salinity gradient solar pond covered with a thin liquid layer. Conference paper; IAPE '19, Oxford, United Kingdom. 2019.
  • [18] Sayer A, Al-Hussaini H, Campbell A. The utilisation of statistics to estimate evaporation from the surface of solar ponds. Univ Thi-Qar J Sci 2021;8:161–169.
  • [19] Kumar A, Singh K, Verma S, Das R. Inverse prediction and optimization analysis of a solar pond powering a thermoelectric generator. Sol Energy 2021;169:658–672.
  • [20] Montalà M, Cortina JL, Akbarzadeh A, Valderrama C. Stability analysis of an industrial salinity gradient solar pond. Sol Energy 2019;180:216–225.
  • [21] Sayer A, Al-Hussaini H, Campbell A. Experimental analysis of the temperature and concentration profiles in a salinity gradient solar pond with, and without a liquid cover to suppress evaporation. Sol Energy 2017;155:1354–1365.
  • [22] Suarez F, Ruskowitz J, Childress A, Tyler S W. Understanding the expected performance of large–scale solar ponds from laboratory– scale observations and numerical modelling. Appl Energy 2014;117:1–10.
  • [23] Ruskowitz J, Suarez F, Tyler SW, Childress AE. Evaporation suppression and solar energy collection in a salt-gradient solar pond. Sol Energy 2014;99:36–46.
  • [24] Sayer A, Al-Dokheily ME, Mahood HB, Khadem HM, Campbell AN. The effect of a liquid cover on the thermal performance of a salinity gradient solar pond: An experimental study. Energ Eng 2022;119:17–34.
  • [25] The Engineering ToolBox. Free tools and information for engineering and design of technical applications. 2001. Available at: www.engineeringtoolbox.com. Accessed Nov 14, 2023.
  • [26] NASA EarthData ASDC. Surface meteorology and solar energy, a renewable energy resource. Available at: https://eosweb.larc.nasa.gov. Accessed Nov 14, 2023.

Experimental study on a novel waterless solar collector

Yıl 2023, Cilt: 9 Sayı: 6, 1490 - 1501, 30.11.2023
https://doi.org/10.18186/thermal.1400977

Öz

This study is an endeavour to introduce a novel approach to enhance the performance of solar collectors. The sun emits sufficient power of solar radiation to meet the demand of en-ergy. Harvesting the renewable solar energy needs advanced technologies and requirements. Solar ponds including salinity gradient solar ponds (SGSPs) are common solar collectors. These ponds are one of the solar energy applications used for many industrial and domestic purposes. However, challenges of the conventional SGSPs such as evaporation, salt diffusion, temperature discrepancy, and layer mixing profoundly and significantly affected their expan-sion globally. A novel experimental solar collector configuration to overcome the challenges of the conventional solar ponds (solar collectors) is investigated, there is no water body and no salinity gradient to build; it is entirely a collector with no water body. The experimental unit was constructed in an arid area. It is basically a cylindrical tank with a total depth of 1.4 m with three zones or layers to store heat namely, paraffin wax layer (10 cm thickness). The paraffin layer was covered with a layer of coal with a thickness of 30 cm. On the top of coal layer, an air gap with a thickness of 80 cm was left. A clear plastic cover with a thickness of 0.2 cm was utilized to cover the constructed layers and making the air gap. The experimental unit was monitored, and temperature measurements were collected for the period of 17/7/2021- 30/9/2021. The results demonstrated that temperature of the paraffin wax layer reached more than 48 °C in a short period and with a small day and night discrepancy (1 °C). Temperature of the paraffin layer remained constant around 43 °C even in night-time during the period of the study. Furthermore, the results showed that temperatures of coal layer and air gap reached the maximum at the daytime of 53 °C and 71 °C respectively with a clear discrepancy between day and night. The results of the present study are encouraging for more investigations in this new direction of solar collectors.

Kaynakça

  • REFERENCES
  • [1] Gude VG. Energy storage for desalination processes powered by renewable energy and waste heat sources. Appl Energy 2015;137:877–898.
  • [2] Antipova E, Boer D, Cabeza LF, Gosalbez GG, Jimenez L. Multi-objective design of reverse osmosis plants integrated with solar Rankine cycles and thermal energy storage. Appl Energy 2013;102:1137–47.
  • [3] Salata F, Coppi M. A first approach study on the desalination of sea water using heat transformers powered by solar ponds. Appl Energy 2014;136:611–618.
  • [4] Sayer A, Al-Hussaini H, Campbell AN. New theoretical modelling of heat transfer in solar ponds. Sol Energy 2016;125:207–218.
  • [5] Ghaffour N, Lattemann S, Missimer T, Kim CN, Sinha S, Amy G. Renewable energy-driven innovative energy-efficient desalination technologies. Appl Energy 2014;136:1155–1165.
  • [6] Ganguly S, Date A, Akbarzadeh A. Heat recovery from ground below the solar pond. Sol Energy 2017;155:1254–1260.
  • [7] Goswami R, Das R. Investigation of thermal and electrical performance in a salt gradient solar pond. J Phys Conf Ser 2019;1240:012111.
  • [8] Goswami R, Das R. Experimental analysis of a novel solar pond driven thermoelectric energy system. J Energy Resour Technol 2020;142:121302.
  • [9] Kumar A, Das R. Effect of peripheral heat conduction in salt-gradient solar ponds. J Energy Storage 2020;33:102084.
  • [10] Rghif Y, Zeghmati B, Bahraoui F. Soret and Dufour effects on thermosolutal convection developed in a salt gradient solar pond. Int J Therm Sci 2021;161:106760.
  • [11] Sayer A, Mahood H. Improved thermal efficiency of salinity gradient solar pond by suppressing surface evaporation using an air layer. Energy Eng 2020;117:367–379.
  • [12] Faqeha H, Bawahab M, Vet QL, Faghih A, Date A, Akbarzadah A. An experimental study to establish a salt gradient solar pond (SGSP). Energy Procedia 2019;160:239–245.
  • [13] Rawa MJH, Al-Turki YA, Abu-Hamdeh NH, Khoshvaght‐Aliabadi M, Alimoradi A. Enhancement of heat extraction from solar ponds by using twisted coil‐tubes. Environ Prog Sustain Energy 2021;40:13604.
  • [14] Lu H, Swift AH, Hein HD, Walton JC. Advancements in salinity gradient solar pond technology based on sixteen years of operational experience. J Sol Energy Eng 2004;126:759–767.
  • [15] Andrews J, Akbarzadeh A. Enhancing the thermal efficiency of solar ponds by extracting heat from the gradient layer. Sol Energy 2005;78:704–716.
  • [16] Date A, Yaakob Y, Date A, Krishnapillai S, Akbarzadeh A. Heat extraction from Non-Convective and Lower Convective Zones of the solar pond: A transient study. Sol Energy 2013;97:517–528.
  • [17] Sayer A, Monjezi A, Al-Hussaini H, Campbell A. Experimental and theoretical investigation of the temperature and concentration distributions of the upper and lower convective zones of a small salinity gradient solar pond covered with a thin liquid layer. Conference paper; IAPE '19, Oxford, United Kingdom. 2019.
  • [18] Sayer A, Al-Hussaini H, Campbell A. The utilisation of statistics to estimate evaporation from the surface of solar ponds. Univ Thi-Qar J Sci 2021;8:161–169.
  • [19] Kumar A, Singh K, Verma S, Das R. Inverse prediction and optimization analysis of a solar pond powering a thermoelectric generator. Sol Energy 2021;169:658–672.
  • [20] Montalà M, Cortina JL, Akbarzadeh A, Valderrama C. Stability analysis of an industrial salinity gradient solar pond. Sol Energy 2019;180:216–225.
  • [21] Sayer A, Al-Hussaini H, Campbell A. Experimental analysis of the temperature and concentration profiles in a salinity gradient solar pond with, and without a liquid cover to suppress evaporation. Sol Energy 2017;155:1354–1365.
  • [22] Suarez F, Ruskowitz J, Childress A, Tyler S W. Understanding the expected performance of large–scale solar ponds from laboratory– scale observations and numerical modelling. Appl Energy 2014;117:1–10.
  • [23] Ruskowitz J, Suarez F, Tyler SW, Childress AE. Evaporation suppression and solar energy collection in a salt-gradient solar pond. Sol Energy 2014;99:36–46.
  • [24] Sayer A, Al-Dokheily ME, Mahood HB, Khadem HM, Campbell AN. The effect of a liquid cover on the thermal performance of a salinity gradient solar pond: An experimental study. Energ Eng 2022;119:17–34.
  • [25] The Engineering ToolBox. Free tools and information for engineering and design of technical applications. 2001. Available at: www.engineeringtoolbox.com. Accessed Nov 14, 2023.
  • [26] NASA EarthData ASDC. Surface meteorology and solar energy, a renewable energy resource. Available at: https://eosweb.larc.nasa.gov. Accessed Nov 14, 2023.
Toplam 27 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Termodinamik ve İstatistiksel Fizik
Bölüm Makaleler
Yazarlar

Asaad H. Sayer Bu kişi benim 0000-0002-8904-3378

Wed Al-graıtı Bu kişi benim 0000-0001-9531-7155

Hameed B. Mahood Bu kişi benim 0000-0002-4266-1312

Hameed B. Mahood Bu kişi benim 0000-0002-0180-7127

Alasdair N. Campbell Bu kişi benim 0000-0002-1637-3165

Yayımlanma Tarihi 30 Kasım 2023
Gönderilme Tarihi 7 Mart 2022
Yayımlandığı Sayı Yıl 2023 Cilt: 9 Sayı: 6

Kaynak Göster

APA H. Sayer, A., Al-graıtı, W., B. Mahood, H., B. Mahood, H., vd. (2023). Experimental study on a novel waterless solar collector. Journal of Thermal Engineering, 9(6), 1490-1501. https://doi.org/10.18186/thermal.1400977
AMA H. Sayer A, Al-graıtı W, B. Mahood H, B. Mahood H, N. Campbell A. Experimental study on a novel waterless solar collector. Journal of Thermal Engineering. Kasım 2023;9(6):1490-1501. doi:10.18186/thermal.1400977
Chicago H. Sayer, Asaad, Wed Al-graıtı, Hameed B. Mahood, Hameed B. Mahood, ve Alasdair N. Campbell. “Experimental Study on a Novel Waterless Solar Collector”. Journal of Thermal Engineering 9, sy. 6 (Kasım 2023): 1490-1501. https://doi.org/10.18186/thermal.1400977.
EndNote H. Sayer A, Al-graıtı W, B. Mahood H, B. Mahood H, N. Campbell A (01 Kasım 2023) Experimental study on a novel waterless solar collector. Journal of Thermal Engineering 9 6 1490–1501.
IEEE A. H. Sayer, W. Al-graıtı, H. B. Mahood, H. B. Mahood, ve A. N. Campbell, “Experimental study on a novel waterless solar collector”, Journal of Thermal Engineering, c. 9, sy. 6, ss. 1490–1501, 2023, doi: 10.18186/thermal.1400977.
ISNAD H. Sayer, Asaad vd. “Experimental Study on a Novel Waterless Solar Collector”. Journal of Thermal Engineering 9/6 (Kasım 2023), 1490-1501. https://doi.org/10.18186/thermal.1400977.
JAMA H. Sayer A, Al-graıtı W, B. Mahood H, B. Mahood H, N. Campbell A. Experimental study on a novel waterless solar collector. Journal of Thermal Engineering. 2023;9:1490–1501.
MLA H. Sayer, Asaad vd. “Experimental Study on a Novel Waterless Solar Collector”. Journal of Thermal Engineering, c. 9, sy. 6, 2023, ss. 1490-01, doi:10.18186/thermal.1400977.
Vancouver H. Sayer A, Al-graıtı W, B. Mahood H, B. Mahood H, N. Campbell A. Experimental study on a novel waterless solar collector. Journal of Thermal Engineering. 2023;9(6):1490-501.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK http://eds.yildiz.edu.tr/journal-of-thermal-engineering