11.07.2015 Views

Review on thermal energy storage with phase change: materials ...

Review on thermal energy storage with phase change: materials ...

Review on thermal energy storage with phase change: materials ...

SHOW MORE
SHOW LESS
  • No tags were found...

Create successful ePaper yourself

Turn your PDF publications into a flip-book with our unique Google optimized e-Paper software.

B. Zalba et al. / Applied Thermal Engineering 23 (2003) 251–283 279[122] H. Rieger, U. Projahn, M. Bareiss, H. Beer, Heat transfer during melting inside a horiz<strong>on</strong>tal tube, J. HeatTransfer 105 (1983) 226–234.[123] M.N. € Ozisik, Phase-Change Problems, in: Heat C<strong>on</strong>ducti<strong>on</strong>, Wiley–Interscience, 1993.[124] L.S. Yao, J. Prusa, Melting and freezing, Adv. Heat Transfer 19 (1989) 1–95.[125] K.A.R. Ismail, R. Stuginsky, A parametric study <strong>on</strong> possible fixed bed models for PCM and sensible heat <strong>storage</strong>,Appl. Thermal Eng. 19 (1999) 757–788.[126] K.A.R. Ismail, A. Batista de Jesus, Modeling and soluti<strong>on</strong> of the solidificati<strong>on</strong> problem of PCM around a coldcylinder, Numer. Heat Transfer, Part A 36 (1999) 95–114.[127] R.M. Furzerland, A comparative study of numerical methods for moving boundary problems, J. Inst. Math.Appl. 26 (1980) 411–429.[128] M. Lacroix, Computati<strong>on</strong> of heat transfer during melting of a pure substance from an iso<strong>thermal</strong> wall, Numer.Heat Transfer, Part B 15 (1989) 191–210.[129] M. Lacroix, C<strong>on</strong>tact melting of a <strong>phase</strong> <strong>change</strong> material inside a heated parallelepedic capsule, Energy C<strong>on</strong>vers.Mgmt. 42 (2001) 35–47.[130] M. Lacroix, V.R. Voller, Finite different soluti<strong>on</strong>s of solidificati<strong>on</strong> <strong>phase</strong> <strong>change</strong> problems: transformed versusfixed grids, Numer. Heat Transfer, Part B 17 (1990) 25–41.[131] N. Shamsundar, E. Rooz, Numerical Methods For Moving Boundary Problems, in: Handbook of NumericalHeat Transfer, Wiley–Interscience, 1988.[132] N. Shamsundar, Comparis<strong>on</strong> of numerical methods for diffusi<strong>on</strong> problems <strong>with</strong> moving boundaries, in: O.G.Wils<strong>on</strong>, A.D. Solom<strong>on</strong>, T.T. Boggs (Eds.), Moving Boundary Problems, Academic Press, New York, 1978.[133] M. Costa, A. Oliva, C.D. Perez Segarra, R. Alba, Numerical simulati<strong>on</strong> of solid–liquid <strong>phase</strong> <strong>change</strong> phenomena,Comput. Meth. Appl. Mech. Eng. 91 (1991) 1123–1134.[134] M. Costa, A. Oliva, C.D. Perez-Segarra, Three-dimensi<strong>on</strong>al numerical study of melting inside an iso<strong>thermal</strong>horiz<strong>on</strong>tal cylinder, Numer. Heat Transfer, Part A 32 (1997) 531–553.[135] C.W. Carey, J.W. Mitchell, W.A. Beckman, The c<strong>on</strong>trol of ice <strong>storage</strong> systems, ASHRAE Trans. 101 (1) (1995)1345–1352.[136] P. Brousseau, M. Lacroix, Study of the <strong>thermal</strong> performance of a multi-layer PCM <strong>storage</strong> unit, Energy C<strong>on</strong>vers.Mgmt. 37 (1996) 599–609.[137] P. Brousseau, M. Lacroix, Numerical simulati<strong>on</strong> of a multi-layer latent heat <strong>thermal</strong> <strong>energy</strong> <strong>storage</strong> system, Int. J.Energy Res. 22 (1998) 1–15.[138] B. Binet, M. Lacroix, Numerical study of natural-c<strong>on</strong>vecti<strong>on</strong> dominated melting inside uniformly and discretelyheated rectangular cavities, J. Numer. Heat Transfer, Part A 33 (1998) 207–224.[139] B. Binet, M. Lacroix, Etude numerique de la fusi<strong>on</strong> dans des enceintes rectangulaires chauffees uniformement oudiscretement par les parois laterales c<strong>on</strong>ductrices, Int. J. Thermal Sci. 37 (1998) 607–620.[140] A. Abhat, S. Aboul-Enein, N. Malatidis, Heat of fusi<strong>on</strong> <strong>storage</strong> systems for solar heating applicati<strong>on</strong>s, in: C. DenQuden (Ed.), Thermal Storage of Solar Energy, Martinus Nijhoff, 1981.[141] V.H. Morcos, Investigati<strong>on</strong> of a latent heat <strong>thermal</strong> <strong>energy</strong> <strong>storage</strong> system, Solar Wind Technol. 7 (2/3) (1990)197–202.[142] M. Costa, D. Buddhi, A. Oliva, Numerical Simulati<strong>on</strong> of a latent heat <strong>thermal</strong> <strong>energy</strong> <strong>storage</strong> system <strong>with</strong>enhanced heat c<strong>on</strong>ducti<strong>on</strong>, Energy C<strong>on</strong>vers. Mgmt. 39 (3/4) (1998) 319–330.[143] P.V. Padmanabhan, M.V. Krishna Murthy, Outward <strong>phase</strong> <strong>change</strong> in a cylindrical annulus <strong>with</strong> axial fins <strong>on</strong> theinner tube, Int. J. Heat Mass Transfer 29 (1986) 1855–1868.[144] R. Velraj, R.V. Seeniraj, B. Hafner, C. Faber, K. Schwarzer, Experimental analysis and numerical modellingof inward solidificati<strong>on</strong> <strong>on</strong> a finned vertical tube for a latent heat <strong>storage</strong> unit, Solar Energy 60 (1997) 281–290.[145] R. Velraj, R.V. Seeniraj, B. Hafner, C. Faber, K. Schwarzer, Heat transfer enhancement in a latent heat <strong>storage</strong>system, Solar Energy 65 (1999) 171–180.[146] K.A.R. Ismail, C.L.F. Alves, M.S. Modesto, Numerical and experimental study <strong>on</strong> the solidificati<strong>on</strong> of PCMaround a vertical axially finned iso<strong>thermal</strong> cylinder, Appl. Thermal Eng. 21 (2001) 53–77.[147] R. Siegel, Solidificati<strong>on</strong> of low c<strong>on</strong>ductivity material c<strong>on</strong>taining dispersed high c<strong>on</strong>ductivity particles, Int. HeatMass Transfer 20 (1977) 1087–1089.

Hooray! Your file is uploaded and ready to be published.

Saved successfully!

Ooh no, something went wrong!