232
A. Bhattacharya
References
Abishek S, King AJC, Mead-Hunter R, Golkarfard V, Heikamp W, Mullins BJ (2017) Generation
and validation of virtual nonwoven, foam and knitted filter (separator/coalescer) geometries for
CFD simulations. Sep Purif Technol 188:493–507
Abishek S, King AJC, Nadim N, Mullins BJ (2018) Effect of microstructure on melting in metalfoam/paraffin composite phase change materials. Int J Heat Mass Transf 127:135–144
Agyenim F, Hewitt N, Eames P, Smyth M (2010) A review of materials, heat transfer and phase
change problem formulation for latent heat thermal energy storage systems (LHTESS). Renew
Sustain Energy Rev 14(2):615–628
Bhattacharya A, Dutta P (2013) An enthalpy-based model of dendritic growth in a convecting binary
alloy melt. Int J Numer Methods Heat Fluid Flow 23(7):1121–1135
Boomsma K, Poulikakos D, Ventikos Y (2003) Simulations of flow through open cell metal foams
using an idealized periodic cell structure. Int J Heat Fluid Flow 24(6):825–834
Chen Z, Gao D, Shi J (2014) Experimental and numerical study on melting of phase change materials
in metal foams at pore scale. Int J Heat Mass Transf 72:646–655
Deng Z, Liu X, Zhang C, Huang Y, Chen Y (2017) Melting behaviors of PCM in porous metal foam
characterized by fractal geometry. Int J Heat Mass Transf 113:1031–1042
Dinesh BVS, Bhattacharya A (2019) Effect of foam geometry on heat absorption characteristics of
PCM-metal foam composite thermal energy storage systems. Int J Heat Mass Transf 134:866–883
Fan L, Khodadadi JM (2011) Thermal conductivity enhancement of phase change materials for
thermal energy storage: a review. Renew Sustain Energy Rev 15(1):24–46
Farid MM, Khudhair AM, Razack SAK, Al-Hallaj S (2004) A review on phase change energy
storage: materials and applications. Energy Convers Manag 45(9–10):1597–1615
Hong ST, Herling DR (2006) Open-cell aluminum foams filled with phase change materials as
compact heat sinks. Scripta Mater 55(10):887–890
Ibrahim NI, Al-Sulaiman FA, Rahman S, Yilbas BS, Sahin AZ (2017) Heat transfer enhancement of
phase change materials for thermal energy storage applications: a critical review. Renew Sustain
Energy Rev 74:26–50
Ji H, Sellan DP, Pettes MT, Kong X, Ji J, Shi L, Ruoff RS (2014) Enhanced thermal conductivity of
phase change materials with ultrathin-graphite foams for thermal energy storage. Energy Environ
Sci 7(3):1185–1192
Kenisarin M, Mahkamov K (2007) Solar energy storage using phase change materials. Renew
Sustain Energy Rev 11(9):1913–1965
Kumar A, Saha SK (2018) Latent heat thermal storage with variable porosity metal matrix: a
numerical study. Renew Energy 125:962–973
Lafdi K, Mesalhy O, Shaikh S (2007) Experimental study on the influence of foam porosity and
pore size on the melting of phase change materials. J Appl Phys 102(8):083549
Lafdi K, Mesalhy O, Elgafy A (2008) Graphite foams infiltrated with phase change materials
as alternative materials for space and terrestrial thermal energy storage applications. Carbon
46(1):159–168
Lin Y, Jia Y, Alva G, Fang G (2018) Review on thermal conductivity enhancement, thermal properties and applications of phase change materials in thermal energy storage. Renew Sustain Energy
Rev 82:2730–2742
Liu L, Su D, Tang Y, Fang G (2016) Thermal conductivity enhancement of phase change materials
for thermal energy storage: a review. Renew Sustain Energy Rev 62:305–317
Mancin S, Diani A, Doretti L, Hooman K, Rossetto L (2015) Experimental analysis of phase change
phenomenon of paraffin waxes embedded in copper foams. Int J Therm Sci 90:79–89
Mesalhy O, Lafdi K, Elgafy A, Bowman K (2005) Numerical study for enhancing the thermal
conductivity of phase change material (PCM) storage using high thermal conductivity porous
matrix. Energy Convers Manag 46(6):847–867
A. Bhattacharya
References
Abishek S, King AJC, Mead-Hunter R, Golkarfard V, Heikamp W, Mullins BJ (2017) Generation
and validation of virtual nonwoven, foam and knitted filter (separator/coalescer) geometries for
CFD simulations. Sep Purif Technol 188:493–507
Abishek S, King AJC, Nadim N, Mullins BJ (2018) Effect of microstructure on melting in metalfoam/paraffin composite phase change materials. Int J Heat Mass Transf 127:135–144
Agyenim F, Hewitt N, Eames P, Smyth M (2010) A review of materials, heat transfer and phase
change problem formulation for latent heat thermal energy storage systems (LHTESS). Renew
Sustain Energy Rev 14(2):615–628
Bhattacharya A, Dutta P (2013) An enthalpy-based model of dendritic growth in a convecting binary
alloy melt. Int J Numer Methods Heat Fluid Flow 23(7):1121–1135
Boomsma K, Poulikakos D, Ventikos Y (2003) Simulations of flow through open cell metal foams
using an idealized periodic cell structure. Int J Heat Fluid Flow 24(6):825–834
Chen Z, Gao D, Shi J (2014) Experimental and numerical study on melting of phase change materials
in metal foams at pore scale. Int J Heat Mass Transf 72:646–655
Deng Z, Liu X, Zhang C, Huang Y, Chen Y (2017) Melting behaviors of PCM in porous metal foam
characterized by fractal geometry. Int J Heat Mass Transf 113:1031–1042
Dinesh BVS, Bhattacharya A (2019) Effect of foam geometry on heat absorption characteristics of
PCM-metal foam composite thermal energy storage systems. Int J Heat Mass Transf 134:866–883
Fan L, Khodadadi JM (2011) Thermal conductivity enhancement of phase change materials for
thermal energy storage: a review. Renew Sustain Energy Rev 15(1):24–46
Farid MM, Khudhair AM, Razack SAK, Al-Hallaj S (2004) A review on phase change energy
storage: materials and applications. Energy Convers Manag 45(9–10):1597–1615
Hong ST, Herling DR (2006) Open-cell aluminum foams filled with phase change materials as
compact heat sinks. Scripta Mater 55(10):887–890
Ibrahim NI, Al-Sulaiman FA, Rahman S, Yilbas BS, Sahin AZ (2017) Heat transfer enhancement of
phase change materials for thermal energy storage applications: a critical review. Renew Sustain
Energy Rev 74:26–50
Ji H, Sellan DP, Pettes MT, Kong X, Ji J, Shi L, Ruoff RS (2014) Enhanced thermal conductivity of
phase change materials with ultrathin-graphite foams for thermal energy storage. Energy Environ
Sci 7(3):1185–1192
Kenisarin M, Mahkamov K (2007) Solar energy storage using phase change materials. Renew
Sustain Energy Rev 11(9):1913–1965
Kumar A, Saha SK (2018) Latent heat thermal storage with variable porosity metal matrix: a
numerical study. Renew Energy 125:962–973
Lafdi K, Mesalhy O, Shaikh S (2007) Experimental study on the influence of foam porosity and
pore size on the melting of phase change materials. J Appl Phys 102(8):083549
Lafdi K, Mesalhy O, Elgafy A (2008) Graphite foams infiltrated with phase change materials
as alternative materials for space and terrestrial thermal energy storage applications. Carbon
46(1):159–168
Lin Y, Jia Y, Alva G, Fang G (2018) Review on thermal conductivity enhancement, thermal properties and applications of phase change materials in thermal energy storage. Renew Sustain Energy
Rev 82:2730–2742
Liu L, Su D, Tang Y, Fang G (2016) Thermal conductivity enhancement of phase change materials
for thermal energy storage: a review. Renew Sustain Energy Rev 62:305–317
Mancin S, Diani A, Doretti L, Hooman K, Rossetto L (2015) Experimental analysis of phase change
phenomenon of paraffin waxes embedded in copper foams. Int J Therm Sci 90:79–89
Mesalhy O, Lafdi K, Elgafy A, Bowman K (2005) Numerical study for enhancing the thermal
conductivity of phase change material (PCM) storage using high thermal conductivity porous
matrix. Energy Convers Manag 46(6):847–867
