Experimental investigation of tailoring functionalized carbon-based nano additives infused phase change material for enhanced thermal energy storage

The advancement of phase change materials (PCMs) as potential thermal energy storage (TES) materials for building envelopes holds promise for efficient energy utilization. However, the PCMs have a major drawback during energy storage, which is lower thermal conductivity, leading to inadequate heat t...

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Main Authors: Rajamony R.K., Sofiah A.G.N., Kalidasan B., Samykano M., Pandey A.K., Suraparaju S.K., Paw J.K.S., Paranthaman V., Fouad Y., Noor M.M., Kalam M.A.
Other Authors: 57218845246
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Published: Institution of Chemical Engineers 2025
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spelling my.uniten.dspace-362872025-03-03T15:41:48Z Experimental investigation of tailoring functionalized carbon-based nano additives infused phase change material for enhanced thermal energy storage Rajamony R.K. Sofiah A.G.N. Kalidasan B. Samykano M. Pandey A.K. Suraparaju S.K. Paw J.K.S. Paranthaman V. Fouad Y. Noor M.M. Kalam M.A. 57218845246 57197805797 57221543258 57192878324 36139061100 57210569066 58168727000 56742208000 6603123645 55196353400 58810084600 Additives Chemical stability Cooling systems Electronic cooling Energy utilization Heat storage Multiwalled carbon nanotubes (MWCN) Nanocomposites Nanoparticles Phase change materials Storage (materials) Thermal conductivity Thermodynamic stability Building envelopes Carbon-based Energy storage materials Experimental investigations Functionalized Functionalized multi-walled carbon nanotubes Heat transfer performance Low thermal conductivity Nano additives Thermal energy storage Thermal energy The advancement of phase change materials (PCMs) as potential thermal energy storage (TES) materials for building envelopes holds promise for efficient energy utilization. However, the PCMs have a major drawback during energy storage, which is lower thermal conductivity, leading to inadequate heat transfer performance and energy storage density. The foremost objective is to formulate a nanocomposite by dispersing functionalized multi-walled carbon nanotubes in salt hydrate PCM with the presence of surfactant. A two-step technique is employed to formulate the nanocomposites with different weight concentrations (0.2, 0.4, 0.6 and 0.8 %) of carbon-based nanoparticles and these nanocomposites are thoroughly characterized to explore the thermophysical properties. Resulting the nanocomposite demonstrates a significant improvement in thermal conductivity, increasing by 91.45 %, which can be attributed to the well-developed thermal networks with the PCM matrix. The nanocomposite samples exhibit extreme thermal stability up to 477 �C with a slight enhancement of 4.6 %. Optical investigations further confirmed that the transmissibility of PCM decreased to 8.3 % from 62.8 %, indicating an enhanced absorption capability due to the dark color nature of the nanoparticles. Moreover, the formulated nanocomposite demonstrated both chemical and thermal stability, with negligible changes in melting enthalpy even after 300 cycles of heating and cooling operations. Additionally, a numerical simulation analysis of 2D heat transfer was performed using Energy 2D software to demonstrate the efficacy of thermal conductivity in heat transfer. The thermally energized nanocomposite is suitable for medium-temperature TES applications such as photovoltaic thermal systems, building applications, textiles, electronic cooling, and desalination systems. ? 2024 The Institution of Chemical Engineers Final 2025-03-03T07:41:48Z 2025-03-03T07:41:48Z 2024 Article 10.1016/j.psep.2024.07.093 2-s2.0-85199885312 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85199885312&doi=10.1016%2fj.psep.2024.07.093&partnerID=40&md5=10f7f88b1e413f857a62ea271a113c29 https://irepository.uniten.edu.my/handle/123456789/36287 190 944 961 Institution of Chemical Engineers Scopus
institution Universiti Tenaga Nasional
building UNITEN Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Tenaga Nasional
content_source UNITEN Institutional Repository
url_provider http://dspace.uniten.edu.my/
topic Additives
Chemical stability
Cooling systems
Electronic cooling
Energy utilization
Heat storage
Multiwalled carbon nanotubes (MWCN)
Nanocomposites
Nanoparticles
Phase change materials
Storage (materials)
Thermal conductivity
Thermodynamic stability
Building envelopes
Carbon-based
Energy storage materials
Experimental investigations
Functionalized
Functionalized multi-walled carbon nanotubes
Heat transfer performance
Low thermal conductivity
Nano additives
Thermal energy storage
Thermal energy
spellingShingle Additives
Chemical stability
Cooling systems
Electronic cooling
Energy utilization
Heat storage
Multiwalled carbon nanotubes (MWCN)
Nanocomposites
Nanoparticles
Phase change materials
Storage (materials)
Thermal conductivity
Thermodynamic stability
Building envelopes
Carbon-based
Energy storage materials
Experimental investigations
Functionalized
Functionalized multi-walled carbon nanotubes
Heat transfer performance
Low thermal conductivity
Nano additives
Thermal energy storage
Thermal energy
Rajamony R.K.
Sofiah A.G.N.
Kalidasan B.
Samykano M.
Pandey A.K.
Suraparaju S.K.
Paw J.K.S.
Paranthaman V.
Fouad Y.
Noor M.M.
Kalam M.A.
Experimental investigation of tailoring functionalized carbon-based nano additives infused phase change material for enhanced thermal energy storage
description The advancement of phase change materials (PCMs) as potential thermal energy storage (TES) materials for building envelopes holds promise for efficient energy utilization. However, the PCMs have a major drawback during energy storage, which is lower thermal conductivity, leading to inadequate heat transfer performance and energy storage density. The foremost objective is to formulate a nanocomposite by dispersing functionalized multi-walled carbon nanotubes in salt hydrate PCM with the presence of surfactant. A two-step technique is employed to formulate the nanocomposites with different weight concentrations (0.2, 0.4, 0.6 and 0.8 %) of carbon-based nanoparticles and these nanocomposites are thoroughly characterized to explore the thermophysical properties. Resulting the nanocomposite demonstrates a significant improvement in thermal conductivity, increasing by 91.45 %, which can be attributed to the well-developed thermal networks with the PCM matrix. The nanocomposite samples exhibit extreme thermal stability up to 477 �C with a slight enhancement of 4.6 %. Optical investigations further confirmed that the transmissibility of PCM decreased to 8.3 % from 62.8 %, indicating an enhanced absorption capability due to the dark color nature of the nanoparticles. Moreover, the formulated nanocomposite demonstrated both chemical and thermal stability, with negligible changes in melting enthalpy even after 300 cycles of heating and cooling operations. Additionally, a numerical simulation analysis of 2D heat transfer was performed using Energy 2D software to demonstrate the efficacy of thermal conductivity in heat transfer. The thermally energized nanocomposite is suitable for medium-temperature TES applications such as photovoltaic thermal systems, building applications, textiles, electronic cooling, and desalination systems. ? 2024 The Institution of Chemical Engineers
author2 57218845246
author_facet 57218845246
Rajamony R.K.
Sofiah A.G.N.
Kalidasan B.
Samykano M.
Pandey A.K.
Suraparaju S.K.
Paw J.K.S.
Paranthaman V.
Fouad Y.
Noor M.M.
Kalam M.A.
format Article
author Rajamony R.K.
Sofiah A.G.N.
Kalidasan B.
Samykano M.
Pandey A.K.
Suraparaju S.K.
Paw J.K.S.
Paranthaman V.
Fouad Y.
Noor M.M.
Kalam M.A.
author_sort Rajamony R.K.
title Experimental investigation of tailoring functionalized carbon-based nano additives infused phase change material for enhanced thermal energy storage
title_short Experimental investigation of tailoring functionalized carbon-based nano additives infused phase change material for enhanced thermal energy storage
title_full Experimental investigation of tailoring functionalized carbon-based nano additives infused phase change material for enhanced thermal energy storage
title_fullStr Experimental investigation of tailoring functionalized carbon-based nano additives infused phase change material for enhanced thermal energy storage
title_full_unstemmed Experimental investigation of tailoring functionalized carbon-based nano additives infused phase change material for enhanced thermal energy storage
title_sort experimental investigation of tailoring functionalized carbon-based nano additives infused phase change material for enhanced thermal energy storage
publisher Institution of Chemical Engineers
publishDate 2025
_version_ 1825816268216729600
score 13.244413