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Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 65, 2014 - Issue 9
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Original Articles

Numerical Optimization and Power Output Control of a Hot Thermal Battery with Phase Change Material

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Pages 825-843 | Received 05 Feb 2013, Accepted 10 Aug 2013, Published online: 04 Mar 2014

REFERENCES

  • B. Zalba , J. M. Marin , L. F. Cabeza , and H. Mehling , Review on Thermal Energy Storage with Phase Change: Materials, Heat Transfer Analysis and Applications , Appl. Therm. Eng. , vol. 23 , pp. 251 – 283 , 2003 .
  • M. Lacroix , Numerical Simulation of a Shell-and-Tube Latent Heat Thermal Energy Storage Unit , Sol. Energy , vol. 50 , no. 4 , pp. 357 – 367 , 1993 .
  • Y. Zhang and A. Faghri , Analytical Solution of Thermal Energy Storage System with Conjugate Laminar Forced Convection , Int. J. Heat Mass Transfer , vol. 39 , pp. 717 – 724 , 1996 .
  • A. Sarı , Thermal Characteristics of a Eutectic Mixture of Myristic and Palmitic Acids as Phase Change Material for Heating Applications , Appl. Therm. Eng. , vol. 23 , no. 8 , pp. 1005 – 1017 , 2003 .
  • A. Trp , An Experimental and Numerical Investigation of Heat Transfer during Technical Grade Paraffin Melting and Solidification in a Shell-and-Tube Latent Thermal Energy Storage Unit , Sol. Energy , vol. 79 , pp. 648 – 660 , 2005 .
  • A. Erek and M. A. Ezan , Experimental and Numerical Study on Charging Processes of an Ice-on-Coil Thermal Energy Storage System, Int. J. Energy Res. , vol. 31, pp. 158–176, 2007.
  • N. H. S. Tay , F. Bruno , and M. Belusko , Experimental Validation of a CFD and an ε-NTU Model for a Large Tube-in-Tank PCM System , Int. J. Heat Mass Transfer , vol. 55 , pp. 5931 – 5940 , 2012 .
  • L. F. Cabeza , H. Mehling , S. Hiebler , and F. Ziegler , Heat Transfer Enhancement in Water When Used as PCM in Thermal Energy Storage , Appl. Therm. Eng. , vol. 22 , pp. 1141 – 1151 , 2002 .
  • S. Pincemin , R. Olives , X. Py , and M. Christ , Highly Conductive Composites Made of Phase Change Materials and Graphite for Thermal Storage , Sol. Energy Mat. and Sol. Cells , vol. 92 , pp. 603 – 613 , 2008 .
  • F. Yavari , H. R. Fard , K. Pashayi , M. A. Rafiee , A. Zamiri , Z. Yu , R. Ozisik , T. B. Tasciuc , and N. Koratkar , Enhanced Thermal Conductivity in a Nanostructured Phase Change Composite due to Low Concentration Graphene Additives , J. Phys. Chem. C , vol. 115 , pp. 8753 – 8758 , 2011 .
  • L. Xia , P. Zhang , and R. Z. Wang , Preparation and Thermal Characterization of Expanded Graphite/Paraffin Composite Phase Change Material , Carbon , vol. 48 , no. 9 , pp. 2538 – 2548 , 2010 .
  • H. X. Ji , L. L. Zhang , M. T. Pettes , H. F. Li , S. S. Chen , L. Shi , R. Piner , and R. S. Ruoff , Ultra-Thin Graphite Foam: A Three-Dimensional Conductive Network for Battery Electrodes , Nano Letters , vol. 12 , no. 5 , pp. 2446 – 2451 , 2012 .
  • M. T. Pettes , H. X. Ji , R. S. Ruoff , and L. Shi , Thermal Transport in Three-Dimensional Foam Architectures of Few-Layer Graphene and Ultrathin Graphite , Nano Letters , vol. 12 , no. 6 , pp. 2959 – 2964 , 2012 .
  • E. B. S. Mettawee and G. M. R. Assassa , Thermal Conductivity Enhancement in a Latent Heat Storage System , Solar Energy , vol. 81 , no. 7 , pp. 839 – 845 , 2007 .
  • J. M. Khodadadi and S. F. Hosseinizadeh , Nanoparticle-Enhanced Phase Change Materials (NEPCM) with Great Potential for Improved Thermal Energy Storage , Int. Commun. Heat Mass Transfer , vol. 34 , no. 5 , pp. 534 – 543 , 2007 .
  • R. V. Seeniraj , R. Velraj , and N. L. Narasimhan , Heat Transfer Enhancement Study of a LHTS Unit Containing Dispersed High Conductivity Particles , J. Sol. Energy Eng. , vol. 124 , pp. 243 – 249 , 2002 .
  • A. Sciacovelli , F. Colella , and V. Verda , Melting of PCM in a Thermal Energy Storage Unit: Numerical Investigation and Effect of Nanoparticle Enhancement , Int. J. Energy Res. , vol. 37 , no. 13 , pp. 1610 – 1623 .
  • I. Gur , K. Sawyer , and R. Prasher , Searching for a Better Thermal Battery , Science , vol. 335 , pp. 1454 – 1455 , 2012 .
  • Heat Transfer Module, COMSOL MULTIPHYSICS, 2008.
  • E. Fleming , S. Wen , L. Shi , and A. K. da Silva , Thermodynamic Model of a Thermal Storage Air Conditioning System with Dynamic Behavior , Appl. Energy , vol. 112 , pp. 160 – 169 , 2013 .
  • D. D. Stine , Advanced Research Projects Agency—Energy (ARPA-E): Background, Status, and Selected Issues for Congress. CRS Report for Congress, Washington, DC, Congressional Research Service, April 29, 2009.
  • F. Agyenim , M. Rhodes , and I. Knight , The Use of Phase Change Material (PCM) to Improve the Coefficient of Performance of a Chiller for Meeting Domestic Cooling in Wales, 2nd PALENC Conference and 28th AIVC Conference on Building Low Energy Cooling and Advanced Ventilation Technologies in the 21st Century, Crete Island, Greece, September 2007.
  • User Guide, COMSOL MULTIPHYSICS, 2008.
  • Color versions of one or more of the figures in the article can be found online at www.tandfonline.com/unht.

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