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Original Articles

Analysis of combined solar photovoltaic-nanostructured thermoelectric generator system

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References

  • Amrani, A. El, A. Mahrane, F.Y. Moussa, and Y. Boukennous. (2007). Solar module fabrication. International Journal of Photoenergy 2007:1–5.
  • Antonova, E.E., and D.C. Looman. (2005). Finite elements for thermoelectric device analysis in ANSYS, Proceedings of International Thermoelectric Conference, Clemson, SC, USA, June 19-23, 24:215–218.
  • Baranowski L.L., G.J. Snyder, and E.S. Toberer. (2012). Concentrated solar thermoelectric generators. Energy & Environmental Science 5:9055–9067.
  • Chen G. (2011). Theoretical efficiency of solar thermoelectric energy generators. Journal of Applied Physics 109:1049081–1049088.
  • Chow, T. T. (2010). A review on photovoltaic/thermal hybrid solar technology. Applied Energy 87:365–379.
  • Dinçer F., and M. E. Meral. (2010). Critical factors that affecting efficiency of solar cells. Smart Grid and Renewable Energy 1:47–50.
  • Godart C., A.P. Gonclaves, E.B. Lopes, and B. Villeroy. 2009. Role of structures on thermal conductivity in thermoelectric materials. In Properties and Applications of Thermoelectric Materials, ed. V. Zlatic, and A. Hewson, Hvar, Croatia: Springer.
  • Hodes, M. (2005). On one-dimensional analysis of thermoelectric modules (TEMs). IEEE Transactions on Components and Packaging Technologies 28:218–229.
  • Khattab, N. M., and E.T. El Shenawy. (2006). Optimal operation of thermoelectric cooler driven by solar thermoelectric generator. Energy Conversion and Management 47:407–426.
  • Kraemer D., B. Poudel, H. Feng, J. C. Caylor, B. Yu, X. Yan, Y. Ma, X. Wang, D. Wang, A. Muto, K. McEnaney, M. Chiesa, Z. Ren, and G. Chen. (2011). High-performance flat-panel solar thermoelectric generators with high thermal concentration. Nature Materials 10:532–538.
  • Landau, L. D., E. M. Lifshitz, and L.P. Pitaevskii. (1984). Electrodynamics of Continuous Media. Burlington, MA: Butterworth-Heinemann.
  • Lenoir, B., A. Dauscher, P. Poinas, H. Scherrer, and L. Vikhor. (2003). Electrical performance of skutterudites solar thermoelectric generators. Applied Thermal Engineering 23:1407–1415.
  • Li P., L. Cai, P. Zhai, X. Tang, Q. Zhang, and M. Niino. (2010). Design of a concentration solar thermoelectric generator. Journal of Electronic Materials 39:1522–1530.
  • Li H., X.F. Tang, Q.J. Zhang, and C. Uher. (2009). High performance InxCeyCo4Sb12 thermoelectric materials with in situ forming nanostructured InSbphase. Applied Physics Letters 94:1021141–10211413.
  • Ma Y., R. Heijl, and A.E.C. Palmqvist. (2013). Composite thermoelectric materials with embedded nanoparticles. Journal of Material Science 48:2767–2778.
  • McEnaney K., D. Kraemer, Z. Ren, and G. Chen. (2011). Modeling of concentrating solar thermoelectric generators. Journal of Applied Physics 110:0745021–0745026.
  • Muhtaroglu A., A. Yokochi, and A. Von Jouanne. (2008). Integration of thermoelectrics and photovoltaics as auxiliary power sources in mobile computing applications. Journal of Power Sources 177:239–246.
  • Najafi, H., and K. Woodbury. (2013). Modeling and analysis of a combined photovoltaic-thermoelectric power generation system. ASME Journal of Solar Energy Engineering 135:03101301–03101308.
  • Omer, S.A., and D.G. Infield. (1998). Design optimization of thermoelectric devices for solar power generation. Solar Energy Materials and Solar Cells 53:67–82.
  • Poudel B., Q. Hao, Y. Ma, Y. Lan, A. Minnich, B. Yu, X. Yan, D. Wang, A. Muto, D. Vashaee, X. Chen, J. Liu, M.S. Dresselhaus, G. Chen, and Z. Ren. (2008). High-thermoelectric performance of nanostructured bismuth antimony telluride bulk alloys. Science 320:634–638.
  • Rockendorf G., R. Sillmann, L. Podlowski, and B. Litzenburger. (1999). PV-hybrid and thermoelectric collectors. Solar Energy 67:227–237.
  • Royne, A., C. J. Dey, and D. R. Mills. (2005). Cooling of photovoltaic cells under concentrated illumination: A critical review. Solar Energy Materials & Solar Cells 86:451–483.
  • Sahin A.Z., B.S. Yilbas, S.Z. Shuja, and O. Momin. (2011). Investigation into topping cycle: thermal efficiency with and without presence of thermoelectric generator. Energy 36:4048–4054.
  • Sarhaddi F., S. Farahat, H. Ajam, and A. Behzadmehr. (2010). Exergetic performance assessment of a solar photovoltaic thermal (PV/T) air collector. Energy and Buildings 42:2184–2199.
  • Shanmugam S., M. Eswaramoorthy, and A. R. Veerappan. (2011). Mathematical modeling of thermoelectric generator driven by solar parabolic dish collector. Applied Solar Energy 47: 31–35.
  • Skoplaki E., and J.A. Palyvos. (2009). On the temperature dependence of photovoltaic module electrical performance: a review of efficiency/power correlations. Solar Energy 83:614–624.
  • Stark W., and M. Jaunich. (2011). Investigation of ethylene/vinyl acetate copolymer (EVA) by thermal analysis DSC and DMA. Polymer Testing 30:236–242.
  • Tiwari A., M.S. Sodha, A. Chandra, and J.C. Joshi. (2006). Performance evaluation of photovoltaic thermal solar air collector for composite climate of India. Solar Energy Materials & Solar Cells 90:175–189.
  • Vatcharasathien N., J. Hirunlabh, J. Khedari, and M. Daguenet. (2005). Design and analysis of solar thermoelectric power generation system. International Journal of Sustainable Energy 24:115–127.
  • Vineis, C., A. Shakouri, A. Majumdar, and M.G. Kanatzidis. (2010). Nanostructured thermoelectrics: big efficiency gains from small features. Advanced Materials 22:3970–3980.
  • Vorobiev Y., J. González-Hernández, P. Vorobiev, and L. Bulat. (2006). Thermal-photovoltaic solar hybrid system for efficient solar energy conversion. Solar Energy 80:170–176.
  • Wong, L. T., and W. K. Chow. (2001). Solar Radiation Model. Applied Energy 69:191–224.
  • Xi, H.X., L.G. Luo, and G. Fraisse. (2007). Development and applications of solar-based thermoelectric technologies. Renewable and Sustainable Energy Reviews 11:923–936.
  • Xiao J., T. Yang, P. Li, P. Zhai, and Q. Zhang. (2012). Thermal design and management for performance optimization of solar thermoelectric generator. Applied Energy 93:33–38.

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