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Melting process investigation of phase change materials in a shell and tube heat exchanger enhanced with heat pipe

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  • Ebrahimi, A.
  • Hosseini, M.J.
  • Ranjbar, A.A.
  • Rahimi, M.
  • Bahrampoury, R.

Abstract

In this study, latent heat storage enhanced with heat pipes is examined. The hot fluid carrying tubes are U shaped to improve heat transfer specifications. The effect of the number of the tubes as well as the angle of the tubes’ plates are analyzed which necessitates the examination of at least thirteen models. RT-35 is applied as the phase change material and water as the hot heat transfer fluid (HTF) flows through the U-shaped tube. The enthalpy-porosity is applied to consider phase change within the model. Liquid fraction, phase change material temperature, heat flux, the heat input of the heat pipe and the temperature differences between the HTF inlet and outlet are described for the studied cases. Results indicate that by locating the heat pipe around the single pipe heat storage system, the melting time reduces up to 91%. It is also observed that for the tube plant angle of 30°, by increasing the number of HTF tubes to two and three, the melting time reduces up to 12%. While the melting times for the double-tube and triple-tube cases are almost the same. This reduction for double-pipe of 90° plate angle is 17% and for the triple-pipe of the same case is 24%. As the angle of the HTF plate rises the melting time reduces.

Suggested Citation

  • Ebrahimi, A. & Hosseini, M.J. & Ranjbar, A.A. & Rahimi, M. & Bahrampoury, R., 2019. "Melting process investigation of phase change materials in a shell and tube heat exchanger enhanced with heat pipe," Renewable Energy, Elsevier, vol. 138(C), pages 378-394.
  • Handle: RePEc:eee:renene:v:138:y:2019:i:c:p:378-394
    DOI: 10.1016/j.renene.2019.01.110
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    References listed on IDEAS

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    3. Anish., R & Joybari, Mahmood Mastani & Seddegh, Saeid & Mariappan, V. & Haghighat, Fariborz & Yuan, Yanping, 2021. "Sensitivity analysis of design parameters for erythritol melting in a horizontal shell and multi-finned tube system: Numerical investigation," Renewable Energy, Elsevier, vol. 163(C), pages 423-436.
    4. Ling, Yun-Zhi & Zhang, Xiao-Song & Wang, Feng & She, Xiao-Hui, 2020. "Performance study of phase change materials coupled with three-dimensional oscillating heat pipes with different structures for electronic cooling," Renewable Energy, Elsevier, vol. 154(C), pages 636-649.
    5. Li, Zhi & Yu, Xiaoli & Wang, Lei & Lu, Yiji & Huang, Rui & Chang, Jinwei & Jiang, Ruicheng, 2020. "Effects of fluctuating thermal sources on a shell-and-tube latent thermal energy storage during charging process," Energy, Elsevier, vol. 199(C).
    6. Rahimi, M. & Ardahaie, S. Saedi & Hosseini, M.J. & Gorzin, M., 2020. "Energy and exergy analysis of an experimentally examined latent heat thermal energy storage system," Renewable Energy, Elsevier, vol. 147(P1), pages 1845-1860.
    7. Ewelina Radomska & Lukasz Mika & Karol Sztekler & Lukasz Lis, 2020. "The Impact of Heat Exchangers’ Constructions on the Melting and Solidification Time of Phase Change Materials," Energies, MDPI, vol. 13(18), pages 1-44, September.
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