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Influence of Void Ratio on Phase Change in Thermal Storage Canister of Heat Pipe Receiver

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REFERENCES

  • Xiao, L., Convection Heat Loss Characteristics of the Heat Pipe Receiver in Solar Dish/AMTEC Thermal Power System, Ph.D. thesis, Chongqing University, Chongqing, China, 2012.
  • Thayer, J., Rosenfeld, J., and Galbraith, R., Thermal Energy Storage for a Dish Stirling Concentrated Solar Power System, 11th International Energy Conversion Engineering Conference, San Jose, CA, 2013.
  • Hartenstine, J.R., Walker, K.L., Tarau, C., and Anderson, W.G., Pressure Controlled Heat Pipe Solar Receiver for Regolith Oxygen Production with Multiple Reactors, 9th Annual International Energy Conversion Engineering Conference, San Diego, CA, 2011.
  • Xu, H., Zhang, H., and Zhuang, J., Numerical Study of Natural Convection Heat Loss of Heat Pipe Receiver for Dish/Stirling System, Solar World Congress of the International-Solar-Energy-Society, Beijing, China, 2007.
  • Zhang, L., Yu, Z.T., Fan, L.W., and Wang, W.J., An Experimental Investigation of the Heat Losses of a U-Type Solar Heat Pipe Receiver of a Parabolic Trough Collector-Based Natural Circulation Steam Generation System, Renewable Energy, vol. 57, pp. 262–268, 2013.
  • Laing, D., and Palsson, M., Hybrid Dish/Stirling Systems: Combustor and Heat Pipe Receiver Development, Journal of Solar Energy Engineering—Transactions of the ASME, vol. 124, no. 2, pp. 176–181, 2002.
  • Bal, G., and McCormick, G., An Investigation of Thermal Stress in a Heat Pipe Receiver Using Finite Element Analysis, Journal of Engineering Technology, vol. 14, no. 1, pp. 20–26, 1997.
  • Do, K.S., and Tamme, H., Thermal Conductivity of High-Temperature Multicomponent Materials with Phase Change, International Journal of Thermophysics, vol. 29, pp. 678–692, 2008.
  • Hoshino, T., Naito, H., Fujihara, T., and Eguchi, K., Experimental Study on Stirling Engine Generator and Solar Receiver System for Future Space Application, AIAA-2000-2842, 2000.
  • Xu, W.Q., Cui, H.T., and Yuan, X.G., Numerical Simulation and Analysis of Heat Transfer in Single-Tube of Heat Pipe Receiver, Taiyangneng Xuebao, vol. 26, pp. 338–342, 2005.
  • Namkoong, D., Jacqmin, D. and Szaniszlo, A., Effect of Microgravity on Material Undergoing Melting and Freezing-The TES Experiment, AIAA 95-0614, Lewis Research Center, Cleveland, OH, 1995.
  • Strumpf, H.J., and Coombs, M.G., Advanced Heat Receiver Conceptual Design Study, NASA-88-25977, Lewis Research Center, Cleveland, OH, 1988.
  • Cui, H.T., Wang, Z.H, Guo, Y.H., Xu, W.Q., and Yuan, X.G., Thermal Performance Analysis on Unit Tube for Heat Pipe Receiver, Solar Energy, vol. 80, no. 7, pp. 875–882, 2006.
  • Dong, K.Y., and Yuan, X.G., Two-Dimensional Transient Heat Transfer Analysis of a Phase Change Material Container, Transactions of the ASME—Journal of Solar Energy Engineering, vol. 19, pp. 41–47, 1998.
  • Kerslake, T.W., and Ibrahim, M.B., Two-Dimensional Model of Space Station Freedom Thermal Energy Storage Canister, Transactions of the ASME—Journal of Solar Energy Engineering, vol. 114, pp. 114–121, 1992.
  • Dong, K.Y., Thermal Analysis of High Temperature Solid-Liquid Phase Change Thermal Energy Storage Container, Ph.D. thesis, Beijing University of Aviation and Aerospace, Beijing, China, 1998.
  • FLUENT, Inc. FLUENT 6.2 Users Guide Manual, Lebanon, NH, 2003.
  • Voller, V.R., and Swaminathan, C.R., Generalized Source-Based Method for Solidification Phase Change, Numerical Heat Transfer B, vol. 19, pp. 175–189, 1991.
  • Zhao, Y.X., Tutorial of FLUENT, The Press for National Defense University of Science and Technology, Changsha, China, 2003.
  • Hitoshi, N., Tsutomu, F., and Takeshi, H., An Experimental Study of a Solar Receiver for JEM Experiment Program, AIAA-2000-2996, 2000.

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