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THERMAL ENERGY STORAGE USING PARAFFIN WAX

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THERMAL ENERGY STORAGE USING PARAFFIN WAX ( thermal-energy-storage-using-paraffin-wax )

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fluids: influence of stirring, sonication and surface-active agents. Heat and Mass Transfer, 52(1), 55-62. Kenisarin, M., & Mahkamov, K. (2007). Solar energy storage using phase change materials. Renewable and Sustainable Energy Reviews, 11(9), 1913-1965. Khodadadi, J. M., & Hosseinizadeh, S. F. (2007). Nanoparticle-enhanced phase change materials (NEPCM) with great potential for improved thermal energy storage. International Communications in Heat and Mass Transfer, 34(5), 534-543. Khodadadi, J. M., Fan, L., & Babaei, H. (2013). Thermal conductivity enhancement of nanostructure-based colloidal suspensions utilized as phase change materials for thermal energy storage: A review. Renewable and Sustainable Energy Reviews, 24, 418-444. Kibria, M. A., Anisur, M. R., Mahfuz, M. H., Saidur, R., & Metselaar, I. H. S. C. (2015). A review on thermophysical properties of nanoparticle dispersed phase change materials. Energy Conversion and Management, 95, 69-89. Kim, S., & Drzal, L. T. (2009). High latent heat storage and high thermal conductive phase change materials using exfoliated graphite nanoplatelets. Solar Energy Materials and Solar Cells, 93(1), 136-142. Korti, A. I. N., & Tlemsani, F. Z. (2016). Experimental investigation of latent heat storage in a coil in PCM storage unit. Journal of Energy Storage, 5, 177-186. Kumaresan, V., Velraj, R., & Das, S. K. (2012). The effect of carbon nanotubes in enhancing the thermal transport properties of PCM during solidification. Heat and Mass Transfer, 48(8), 1345-1355. Lokesh, S., Murugan, P., Sathishkumar, A., Kumaresan, V., & Velraj, R. (2015). Melting/solidification characteristics of paraffin based nanocomposite for thermal energy storage applications. Thermal Science, 21(6), 2517-2524. Michaelides, E. E. S. (2014). Nanofluidics: thermodynamic and transport properties. Springer. 80

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