Alcohols as a Phase Change Material with Excellent Thermal Storage Properties in Buildings
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32807
Alcohols as a Phase Change Material with Excellent Thermal Storage Properties in Buildings

Authors: Dehong Li, Yuchen Chen, Alireza Kaboorani, Denis Rodrigue, Xiaodong (Alice) Wang

Abstract:

Utilizing solar energy for thermal energy storage has emerged as an appealing option for lowering the amount of energy that is consumed by buildings. Due to their high heat storage density, non-corrosive and non-polluting properties, alcohols can be a good alternative to petroleum-derived paraffin phase change materials (PCMs). In this paper, ternary eutectic PCMs with suitable phase change temperatures were designed and prepared using lauryl alcohol (LA), cetyl alcohol (CA), stearyl alcohol (SA) and xylitol (X). The Differential Scanning Calorimetry (DSC) results revealed that the phase change temperatures of LA-CA-SA, LA-CA-X, and LA-SA-X were 20.52 °C, 20.37 °C, and 22.18 °C, respectively. The latent heat of phase change of the ternary eutectic PCMs were all stronger than that of the paraffinic PCMs at roughly the same temperature. The highest latent heat was 195 J/g. It had good thermal energy storage capacity. The preparation mechanism was investigated using Fourier-transform Infrared Spectroscopy (FTIR), and it was found that the ternary eutectic PCMs were only physically mixed among the components. Ternary eutectic PCMs had a simple preparation process, suitable phase change temperature, and high energy storage density. They are suitable for low-temperature architectural packaging applications.

Keywords: Thermal energy storage, buildings, phase change materials, alcohols.

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 87

References:


[1] M. Nazari, M. Jebrane, and N. Terziev, “Bio-based phase change materials incorporated in lignocellulose matrix for energy storage in buildings-a review,” Energies, vol. 13, no. 12, pp. 1-25, 2020.
[2] A. Pasupathy, L. Athanasius, R. Velraj, and R. V. Seeniraj, “Experimental investigation and numerical simulation analysis on the thermal performance of a building roof incorporating phase change material (PCM) for thermal management,” Applied Thermal Engineering, vol. 28, no. 5-6, pp. 556-565, 2008.
[3] K. A. R. Ismail, and F. A. M. Lino, “Fins and turbulence promoters for heat transfer enhancement in latent heat storage systems,” Experimental Thermal and Fluid Science, vol. 35, no. 6, pp. 1010-1018, 2011.
[4] D. Li, B. Zhuang, Y. Chen, B. Li, V. Landry, A. Kaboorani, and X. A. Wang, “Incorporation technology of bio-based phase change materials for building envelope: A review,” Energy and Buildings, pp. 1-17, 2022.
[5] A. Kumar, and S. K. Shukla, “A Review on Thermal Energy Storage Unit for Solar Thermal Power Plant Application,” Energy Procedia, pp. 462-469, 2015.
[6] A. Fallahi, G. Guldentops, M. Tao, S. Granados-Focil, and S. Van Dessel, “Review on solid-solid phase change materials for thermal energy storage: Molecular structure and thermal properties,” Applied Thermal Engineering, vol. 127, pp. 1427-1441, 2017.
[7] H. Nazir, M. Batool, F. J.B. Osorio, M. Isaza-Ruiz, X. Xu, K. Vignarooban, and A. M. Kannan, “Recent developments in phase change materials for energy storage applications: A review,” International Journal of Heat and Mass Transfer, vol. 129, pp. 491-523, 2019.
[8] R. K. Sharma, P. Ganesan, V. V. Tyagi, H. S. C. Metselaar, and S. C. Sandaran, “Developments in organic solid-liquid phase change materials and their applications in thermal energy storage,” Energy Conversion and Management, vol. 95, pp. 193-228, 2015.
[9] M. Vivekananthan, and V. A. Amirtham, “Characterisation and thermophysical properties of graphene nanoparticles dispersed erythritol PCM for medium temperature thermal energy storage applications,” Thermochimical Acta, vol. 676, pp. 94-103, 2019.
[10] H. Zhou, L. Lv, Y. Zhang, M. Ji, and K. Cen, “Preparation and characterization of a shape-stable xylitol/expanded graphite composite phase change material for thermal energy storage,” Solar Energy Materials and Solar Cells, vol. 230, pp. 1-13, 2021.
[11] J. Hu, Y. He, X. Hao, N. Li, Y. Su, and H. Qu, “Optimal temperature ranges considering gender differences in thermal comfort, work performance, and sick building syndrome: A winter field study in university classrooms,” Energy and Buildings, vol. 254, pp. 111554, 2022.
[12] N. Soares, J. J. Costa, A. R. Gaspar, and P. Santos, “Review of passive PCM latent heat thermal energy storage systems towards buildings’ energy efficiency,” Energy and Buildings, vol. 59, pp. 82-103, 2013.
[13] L. He, S. Mo, P. Lin, Y. Chen, and Z. Cheng, “D-mannitol@silica/graphene oxide nanoencapsulated phase change material with high phase change properties and thermal reliability,” Applied Energy, vol. 268, pp. 1-8, 2020.
[14] S. M. Hasnain, “Review on sustainable thermal energy storage technologies, Part I: Heat storage materials,” Energy Conversion and Management, vol. 39, no. 11, pp. 1127-1138, 1998.
[15] A. Paul, L. Shi, and C. W. Bielawski, “A eutectic mixture of galactitol and mannitol as a phase change material for latent heat storage,” Energy Conversion and Management, vol. 103, pp. 139-146, 2015.
[16] R. Dinesh, S. I. Hussain, A. A. Roseline and S. Kalaiselvam, “Experimental investigation on heat transfer behavior of the novel ternary eutectic PCM embedded with MWCNT for thermal energy storage systems,” Journal of Thermal Analysis and Calorimetry, vol. 145, pp. 2935-2949, 2021.
[17] D. Su, Y. Jia, G. Alva, F. Tang, and G. Fang, “Preparation and thermal properties of n–octadecane/stearic acid eutectic mixtures with hexagonal boron nitride as phase change materials for thermal energy storage,” Energy and Buildings, vol. 131, pp. 35-41, 2016.
[18] Y. P. Zhang, K. P. Lin, R. Yang, H. F. Di, and Y. Jiang, “Preparation, thermal performance and application of shape-stabilized PCM in energy efficient buildings,” Energy and Buildings, vol. 13, no. 12, pp. 1-25, 2020.
[19] V. Dengle-Pulate, P. Chandorkar, S. Bhagwat, and A. A. Prabhune, “Antimicrobial and SEM studies of sophorolipids synthesized using lauryl alcohol,” Journal of Surfactants and Detergents, vol. 17, pp. 543-552, 2014.
[20] Y. Yang, W. Kong, and X. Cai, “Solvent-free preparation and performance of novel xylitol based solid-solid phase change materials for thermal energy storage,” Energy and Buildings, vol. 158, pp. 37-42, 2018.