Research Article

Experimental study on a novel waterless solar collector

Volume: 9 Number: 6 November 30, 2023
  • Asaad H. Sayer *
  • Wed Al-graıtı
  • Hameed B. Mahood
  • Hameed B. Mahood
  • Alasdair N. Campbell
EN

Experimental study on a novel waterless solar collector

Abstract

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.

Keywords

References

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Details

Primary Language

English

Subjects

Thermodynamics and Statistical Physics

Journal Section

Research Article

Authors

Hameed B. Mahood This is me
0000-0002-0180-7127
United Kingdom

Alasdair N. Campbell This is me
0000-0002-1637-3165
United Kingdom

Publication Date

November 30, 2023

Submission Date

March 7, 2022

Acceptance Date

March 12, 2023

Published in Issue

Year 2023 Volume: 9 Number: 6

APA
H. Sayer, A., Al-graıtı, W., B. Mahood, H., B. Mahood, H., & N. Campbell, A. (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
1.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):1490-1501. doi:10.18186/thermal.1400977
Chicago
H. Sayer, Asaad, Wed Al-graıtı, Hameed B. Mahood, Hameed B. Mahood, and Alasdair N. Campbell. 2023. “Experimental Study on a Novel Waterless Solar Collector”. Journal of Thermal Engineering 9 (6): 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 (November 1, 2023) Experimental study on a novel waterless solar collector. Journal of Thermal Engineering 9 6 1490–1501.
IEEE
[1]A. H. Sayer, W. Al-graıtı, H. B. Mahood, H. B. Mahood, and A. N. Campbell, “Experimental study on a novel waterless solar collector”, Journal of Thermal Engineering, vol. 9, no. 6, pp. 1490–1501, Nov. 2023, doi: 10.18186/thermal.1400977.
ISNAD
H. Sayer, Asaad - Al-graıtı, Wed - B. Mahood, Hameed - B. Mahood, Hameed - N. Campbell, Alasdair. “Experimental Study on a Novel Waterless Solar Collector”. Journal of Thermal Engineering 9/6 (November 1, 2023): 1490-1501. https://doi.org/10.18186/thermal.1400977.
JAMA
1.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, et al. “Experimental Study on a Novel Waterless Solar Collector”. Journal of Thermal Engineering, vol. 9, no. 6, Nov. 2023, pp. 1490-01, doi:10.18186/thermal.1400977.
Vancouver
1.Asaad H. Sayer, Wed Al-graıtı, Hameed B. Mahood, Hameed B. Mahood, Alasdair N. Campbell. Experimental study on a novel waterless solar collector. Journal of Thermal Engineering. 2023 Nov. 1;9(6):1490-501. doi:10.18186/thermal.1400977

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