Synthesis and Characterization of the Paraffin/Expanded Perlite Loaded With Graphene Nanoparticles as a Thermal Energy Storage Material in Buildings

Author:

Rathore Pushpendra Kumar Singh1,Shukla Shailendra Kumar1,Gupta Naveen Kumar2

Affiliation:

1. Department of Mechanical Engineering, Center for Energy and Resources Development (CERD), Indian Institute of Technology (BHU), Varanasi 221005, India

2. Department of Mechanical Engineering, GLA University, Mathura 281406, India

Abstract

Abstract Various properties of the paraffin have made them compatible to be incorporated in the building materials for improving the latent heat storage capacity of the building envelope. However, the poor thermal conductivity of the paraffin reduces their thermal performance and hence limits their direct application/incorporation in the buildings. In this study, composite mixtures of paraffin and expanded perlite (EP) with an equal weight percent of 49.5 and 47.5, loaded with 1% and 5% of graphene nano-platelets, respectively, were synthesized. The developed samples were characterized uncycled and after 2000 thermal cycles. The results indicate that phase change material (PCM)/expanded perlite/graphene nano-platelets composite shows a significant increment in the thermal conductivity, reduction in the latent heat storage capacity, and a small weight loss. The heat storage/release test depicts that the phase change material/expanded perlite/graphene nano-platelets-5 shows 1.66 and 2.5 times faster heat storage/release rate than phase change material/expanded perlite/graphene nano-platelets-1 and paraffin, respectively. There is no significant change noted after 2000 thermal cycles in phase change material/expanded perlite/graphene nano-platelets-5 and phase change material/expanded perlite/graphene nano-platelets-1 samples, suggesting long-term reliability of the composite PCM. Additionally, thermogravimetric analysis (TGA) and Fourier-transform infrared spectroscopy (FTIR) testing were also conducted and the results suggest high thermal reliability and good chemical compatibility. These analyses suggest that the phase change material/expanded perlite/graphene nano-platelets composite can become a potential candidate for thermal energy storage.

Publisher

ASME International

Subject

Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment

Reference50 articles.

1. International Energy Agency , 2017, “Energy Efficiency: Buildings the global Exchange for Energy Efficiency Policies, Data and Analysis,” https://www.iea.org/topics/energyefficiency/buildings/, Accessed January 10, 2019.

2. International Energy Agency , 2017, “Towards a Zero-Emission, Efficient, and Resilient Buildings and Construction Sector,” GLOBAL STATUS REPORT 2017, https://www.worldgbc.org/sites/default/files/UNEP 188_GABC_en (web).pdf, Accessed January 6, 2019.

3. Review on Thermal Energy Storage With Phase Change Materials (PCMs) in Building Applications;Zhou;Appl. Energy,2012

4. Phase Change Materials and Products for Building Applications: A State-of-the-Art Review and Future Research Opportunities;Kalnæs;Energy Build.,2015

5. An Experimental Evaluation of Thermal Behavior of the Building Envelope Using Macroencapsulated PCM for Energy Savings;Rathore;Renew. Energy,2019

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