Research Article
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Year 2025, Volume: 38 Issue: 3, 1346 - 1357
https://doi.org/10.35378/gujs.1609655

Abstract

References

  • [1] Faghri, A., Heat Pipe Science and Technology, Taylor and Francis, London, (1995).
  • [2] Reay, D., Kew, P., McGlen, R., Heat Pipes-Theory, design and applications. 6th edition, Elsevier, Oxford, (2014).
  • [3] Zohuri, B. Heat Pipe Design and Technology. Modern Applications for Practical Thermal Management, 2th Edition, Springer, (2016).
  • [4] Fehliner, F.P., and Ortabasi, U., “Solar heat pipe”, U.S. Patent, Patent Number: 4.067.315, (1978).
  • [5] McConnell, R.D., and Vansant J.H., “Glass heat pipe evacuated tube solar collector”, U.S. Patent, Patent Number: 4.474.170, (1984).
  • [6] Yin, Z., Yan, X., Niu, C., and Li, V., “Glass vacuum heat pipe type solar heat collection pipe”, European Patent, Patent Number: 1.752.720.B1, (2017).
  • [7] Fiaschi, D., and Manfrida G., “Model to predict design parameters and performance curves of vacuum glass heat pipe solar collectors”, Energy, 58: 28-35, (2013). DOI: https://doi.org/10.1016/j.energy.2012.12.028
  • [8] Ribot, J., and McConnell, R.D., “Testing and analysis of a heat-pipe solar collector”, Journal of Solar Energy Engineering, 105: 440-445, (1983). DOI: https://doi.org/10.1115/1.3266405
  • [9] Gong, J., Sun, Z., Wang, J., and Lund, P.D., “Performance studies of novel all-glass heat pipe evacuated collector tube integrating numerical simulation and experiment method”, Solar Energy, 253: 491-500, (2023). DOI: https://doi.org/10.1016/j.solener.2023.02.028
  • [10] Özsoy, A., and Çimen, M. “Experimental investigation of the effect of fluid charge amount on the glass heat pipe solar collector efficiency”, 22. Congress on Thermal Science and Technology, Kocaeli, 1: 546-550, (2019).
  • [11] Özsoy, A., and Çimen, M. “Experimental investigation of the use of binary mixtures as a work fluid in vacuum tube glass heat pipe solar collectors”, 22. Congress on Thermal Science and Technology, Kocaeli, 1: 541-545, (2019).
  • [12] Çimen, M., Colakoglu, M., and Güngör, A., “Overheating limitation of thermosiphon solar collectors by controlling heat pipe fluid in all glass evacuated tubes”, Solar Energy, 230: 515-527, (2021). DOI: https://doi.org/10.1016/j.solener.2021.10.066
  • [13] Özsoy, A., and Kolay, P. “Experimental investigation of surface temperature and thermal resistance of all glass heat pipe under different operating conditions”, 23. Congress on Thermal Science and Technology, Kocaeli, 1: 659-666, (2021).
  • [14] Zhang, C., Zhang, X., Zhu, J., and Chen, F., “Non-imaging concentrator coupled with all-glass solar superconducting heat pipe and its photothermal conversion characterization studies”, Energy Conversion and Management, 325: 119367, (2025). DOI: https://doi.org/10.1016/j.enconman.2024.119367
  • [15] Chen, J., Huang, W., Cen, J., Cao, W., Li, Z., Li, F., and Jiang, F., “Heat extraction from hot dry rock by super-long gravity heat pipe: Selection of working fluid”, Energy, 255: 124531, (2022). DOI: https://doi.org/10.1016/j.energy.2022.124531.
  • [16] Zhang, P., Wang, B., Shi, W., and Li, X., “Experimental investigation on two-phase thermosyphon loop with partially liquid-filled downcomer”, Applied Energy, 160: 10-17, (2015). DOI: https://doi.org/10.1016/j.apenergy.2015.09.033
  • [17] Ye, C., Zheng, M.G., Wang, M.L., Zhang, R.H., and Xiong, Z.Q., “The design and simulation of a new spent fuel pool passive cooling system”, Annals of Nuclear Energy, 58: 124-131, (2013). DOI: https://doi.org/10.1016/j.anucene.2013.03.007
  • [18] Kuang, Y.W., Wang, W., Zhuan, R., and Yi, C.C., “Simulation of boiling flow in evaporator of separate type heat pipe with low heat flux”, Annals of Nuclear Energy, 75: 158-167, (2015). DOI: https://doi.org/10.1016/j.anucene.2014.08.008
  • [19] Kuang, Y.W, Yi, C.C., and Wang, W., “Modeling and simulation of large-scale separated heat pipe with low heat flux for spent fuel pool cooling”, Applied Thermal Engineering, 147: 747-755, (2019). DOI: https://doi.org/10.1016/j.applthermaleng.2018.10.124
  • [20] Said, S., Mellouli, S., Alqahtani, T., Algarni, S., Ajjel, R., Ghachem, K., and Kolsi, L., “An Experimental Comparison of the Performance of Various Evacuated Tube Solar Collector Designs”. Sustainability, 15, 6: 5533, (2023). DOI: https://doi.org/10.3390/su15065533
  • [21] Mathew, A.A., and Thangavel, V., “A novel thermal energy storage integrated evacuated tube heat pipe solar dryer for agricultural products: Performance and economic evaluation”, Renewable Energy, 179: 1674-1693, (2021). DOI: https://doi.org/10.1016/j.renene.2021.07.029.
  • [22] Bouadila, S., Rehman, T., Baig, M.A.A., Skouri, S., and Baddadi, S., “Energy, Exergy and Economic (3E) analysis of evacuated tube heat pipe solar collector to promote storage energy under North African climate”, Sustainable Energy Technologies and Assessments, 55: 102959, (2023). DOI: https://doi.org/10.1016/j.seta.2022.102959.
  • [23] Nithyanandhan, K., Suganeswaran, K., and Murugan, P.C., “Experimental study on heat pipe evacuated tube solar collector for residential use with various condenser configurations”, Energy Conversion and Management, 312: 118583, (2024). DOI: https://doi.org/10.1016/j.enconman.2024.118583.
  • [24] Alshukri, M.J., Hussein, A.K., Eidan, A.A., and Alsabery, A.I., “A review on applications and techniques of improving the performance of heat pipe-solar collector systems”, Solar Energy, 236: 417-433, (2022). DOI: https://doi.org/10.1016/j.solener.2022.03.022.
  • [25] Henein, S.M., and Abdel-Rehim, A.A., “The performance response of a heat pipe evacuated tube solar collector using MgO/MWCNT hybrid nanofluid as a working fluid”, Case Studies in Thermal Engineering, 33: 101957, (2022). DOI: https://doi.org/10.1016/j.csite.2022.101957.

Experimental Investigation of Circumferential Temperature Variation in Large-Diameter Wickless Glass Heat Pipes

Year 2025, Volume: 38 Issue: 3, 1346 - 1357
https://doi.org/10.35378/gujs.1609655

Abstract

This study investigates the circumferential temperature distribution in large-diameter wickless glass heat pipes under different inclination angles and heat loads. The experimental analysis was carried out on borosilicate glass heat pipes using ethanol as the working fluid. Surface temperatures were recorded at several axial and circumferential positions under heat loads ranging from 25 W to 100 W and inclination angles of 30°, 60°, and 90°. The results showed that heat transfer efficiency and thermal resistance varied significantly with inclination angle. The system showed optimum performance with lower thermal resistance and higher heat transfer efficiency at 30° and 60° inclination angles. However, increased surface temperatures and dry-out zones at 90° inclination negatively affected the heat transfer efficiency. The results highlight the importance of the use of wicks in the design of glass heat pipes for solar energy applications.

Thanks

We would like to express our gratitude to Sistem Enerji (Nazilli/Aydın) for their assistance in providing glass heat pipes, which were utilized in the course of this study.

References

  • [1] Faghri, A., Heat Pipe Science and Technology, Taylor and Francis, London, (1995).
  • [2] Reay, D., Kew, P., McGlen, R., Heat Pipes-Theory, design and applications. 6th edition, Elsevier, Oxford, (2014).
  • [3] Zohuri, B. Heat Pipe Design and Technology. Modern Applications for Practical Thermal Management, 2th Edition, Springer, (2016).
  • [4] Fehliner, F.P., and Ortabasi, U., “Solar heat pipe”, U.S. Patent, Patent Number: 4.067.315, (1978).
  • [5] McConnell, R.D., and Vansant J.H., “Glass heat pipe evacuated tube solar collector”, U.S. Patent, Patent Number: 4.474.170, (1984).
  • [6] Yin, Z., Yan, X., Niu, C., and Li, V., “Glass vacuum heat pipe type solar heat collection pipe”, European Patent, Patent Number: 1.752.720.B1, (2017).
  • [7] Fiaschi, D., and Manfrida G., “Model to predict design parameters and performance curves of vacuum glass heat pipe solar collectors”, Energy, 58: 28-35, (2013). DOI: https://doi.org/10.1016/j.energy.2012.12.028
  • [8] Ribot, J., and McConnell, R.D., “Testing and analysis of a heat-pipe solar collector”, Journal of Solar Energy Engineering, 105: 440-445, (1983). DOI: https://doi.org/10.1115/1.3266405
  • [9] Gong, J., Sun, Z., Wang, J., and Lund, P.D., “Performance studies of novel all-glass heat pipe evacuated collector tube integrating numerical simulation and experiment method”, Solar Energy, 253: 491-500, (2023). DOI: https://doi.org/10.1016/j.solener.2023.02.028
  • [10] Özsoy, A., and Çimen, M. “Experimental investigation of the effect of fluid charge amount on the glass heat pipe solar collector efficiency”, 22. Congress on Thermal Science and Technology, Kocaeli, 1: 546-550, (2019).
  • [11] Özsoy, A., and Çimen, M. “Experimental investigation of the use of binary mixtures as a work fluid in vacuum tube glass heat pipe solar collectors”, 22. Congress on Thermal Science and Technology, Kocaeli, 1: 541-545, (2019).
  • [12] Çimen, M., Colakoglu, M., and Güngör, A., “Overheating limitation of thermosiphon solar collectors by controlling heat pipe fluid in all glass evacuated tubes”, Solar Energy, 230: 515-527, (2021). DOI: https://doi.org/10.1016/j.solener.2021.10.066
  • [13] Özsoy, A., and Kolay, P. “Experimental investigation of surface temperature and thermal resistance of all glass heat pipe under different operating conditions”, 23. Congress on Thermal Science and Technology, Kocaeli, 1: 659-666, (2021).
  • [14] Zhang, C., Zhang, X., Zhu, J., and Chen, F., “Non-imaging concentrator coupled with all-glass solar superconducting heat pipe and its photothermal conversion characterization studies”, Energy Conversion and Management, 325: 119367, (2025). DOI: https://doi.org/10.1016/j.enconman.2024.119367
  • [15] Chen, J., Huang, W., Cen, J., Cao, W., Li, Z., Li, F., and Jiang, F., “Heat extraction from hot dry rock by super-long gravity heat pipe: Selection of working fluid”, Energy, 255: 124531, (2022). DOI: https://doi.org/10.1016/j.energy.2022.124531.
  • [16] Zhang, P., Wang, B., Shi, W., and Li, X., “Experimental investigation on two-phase thermosyphon loop with partially liquid-filled downcomer”, Applied Energy, 160: 10-17, (2015). DOI: https://doi.org/10.1016/j.apenergy.2015.09.033
  • [17] Ye, C., Zheng, M.G., Wang, M.L., Zhang, R.H., and Xiong, Z.Q., “The design and simulation of a new spent fuel pool passive cooling system”, Annals of Nuclear Energy, 58: 124-131, (2013). DOI: https://doi.org/10.1016/j.anucene.2013.03.007
  • [18] Kuang, Y.W., Wang, W., Zhuan, R., and Yi, C.C., “Simulation of boiling flow in evaporator of separate type heat pipe with low heat flux”, Annals of Nuclear Energy, 75: 158-167, (2015). DOI: https://doi.org/10.1016/j.anucene.2014.08.008
  • [19] Kuang, Y.W, Yi, C.C., and Wang, W., “Modeling and simulation of large-scale separated heat pipe with low heat flux for spent fuel pool cooling”, Applied Thermal Engineering, 147: 747-755, (2019). DOI: https://doi.org/10.1016/j.applthermaleng.2018.10.124
  • [20] Said, S., Mellouli, S., Alqahtani, T., Algarni, S., Ajjel, R., Ghachem, K., and Kolsi, L., “An Experimental Comparison of the Performance of Various Evacuated Tube Solar Collector Designs”. Sustainability, 15, 6: 5533, (2023). DOI: https://doi.org/10.3390/su15065533
  • [21] Mathew, A.A., and Thangavel, V., “A novel thermal energy storage integrated evacuated tube heat pipe solar dryer for agricultural products: Performance and economic evaluation”, Renewable Energy, 179: 1674-1693, (2021). DOI: https://doi.org/10.1016/j.renene.2021.07.029.
  • [22] Bouadila, S., Rehman, T., Baig, M.A.A., Skouri, S., and Baddadi, S., “Energy, Exergy and Economic (3E) analysis of evacuated tube heat pipe solar collector to promote storage energy under North African climate”, Sustainable Energy Technologies and Assessments, 55: 102959, (2023). DOI: https://doi.org/10.1016/j.seta.2022.102959.
  • [23] Nithyanandhan, K., Suganeswaran, K., and Murugan, P.C., “Experimental study on heat pipe evacuated tube solar collector for residential use with various condenser configurations”, Energy Conversion and Management, 312: 118583, (2024). DOI: https://doi.org/10.1016/j.enconman.2024.118583.
  • [24] Alshukri, M.J., Hussein, A.K., Eidan, A.A., and Alsabery, A.I., “A review on applications and techniques of improving the performance of heat pipe-solar collector systems”, Solar Energy, 236: 417-433, (2022). DOI: https://doi.org/10.1016/j.solener.2022.03.022.
  • [25] Henein, S.M., and Abdel-Rehim, A.A., “The performance response of a heat pipe evacuated tube solar collector using MgO/MWCNT hybrid nanofluid as a working fluid”, Case Studies in Thermal Engineering, 33: 101957, (2022). DOI: https://doi.org/10.1016/j.csite.2022.101957.
There are 25 citations in total.

Details

Primary Language English
Subjects Solar Energy Systems
Journal Section Energy Systems Engineering
Authors

Ahmet Özsoy 0000-0003-0911-9799

Ayşe Kayacan This is me 0009-0006-3288-3348

Early Pub Date May 18, 2025
Publication Date
Submission Date December 30, 2024
Acceptance Date March 18, 2025
Published in Issue Year 2025 Volume: 38 Issue: 3

Cite

APA Özsoy, A., & Kayacan, A. (n.d.). Experimental Investigation of Circumferential Temperature Variation in Large-Diameter Wickless Glass Heat Pipes. Gazi University Journal of Science, 38(3), 1346-1357. https://doi.org/10.35378/gujs.1609655
AMA Özsoy A, Kayacan A. Experimental Investigation of Circumferential Temperature Variation in Large-Diameter Wickless Glass Heat Pipes. Gazi University Journal of Science. 38(3):1346-1357. doi:10.35378/gujs.1609655
Chicago Özsoy, Ahmet, and Ayşe Kayacan. “Experimental Investigation of Circumferential Temperature Variation in Large-Diameter Wickless Glass Heat Pipes”. Gazi University Journal of Science 38, no. 3 n.d.: 1346-57. https://doi.org/10.35378/gujs.1609655.
EndNote Özsoy A, Kayacan A Experimental Investigation of Circumferential Temperature Variation in Large-Diameter Wickless Glass Heat Pipes. Gazi University Journal of Science 38 3 1346–1357.
IEEE A. Özsoy and A. Kayacan, “Experimental Investigation of Circumferential Temperature Variation in Large-Diameter Wickless Glass Heat Pipes”, Gazi University Journal of Science, vol. 38, no. 3, pp. 1346–1357, doi: 10.35378/gujs.1609655.
ISNAD Özsoy, Ahmet - Kayacan, Ayşe. “Experimental Investigation of Circumferential Temperature Variation in Large-Diameter Wickless Glass Heat Pipes”. Gazi University Journal of Science 38/3 (n.d.), 1346-1357. https://doi.org/10.35378/gujs.1609655.
JAMA Özsoy A, Kayacan A. Experimental Investigation of Circumferential Temperature Variation in Large-Diameter Wickless Glass Heat Pipes. Gazi University Journal of Science.;38:1346–1357.
MLA Özsoy, Ahmet and Ayşe Kayacan. “Experimental Investigation of Circumferential Temperature Variation in Large-Diameter Wickless Glass Heat Pipes”. Gazi University Journal of Science, vol. 38, no. 3, pp. 1346-57, doi:10.35378/gujs.1609655.
Vancouver Özsoy A, Kayacan A. Experimental Investigation of Circumferential Temperature Variation in Large-Diameter Wickless Glass Heat Pipes. Gazi University Journal of Science. 38(3):1346-57.