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J. Renewable Sustainable Energy 1, 052701 (2009); doi:10.1063/1.3212675 (23 pages)

Recent advances in direct solar thermal power generation

Yue-Guang Deng and Jing Liu

Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing 100190, People’s Republic of China

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(Received 14 April 2009; accepted 29 July 2009; published online 2 October 2009)

The recent energy crisis and environmental burden are becoming increasingly urgent and drawing enormous attention to solar-energy utilization. Direct solar thermal power generation technologies, such as thermoelectric, thermionic, magnetohydrodynamic, and alkali-metal thermoelectric methods, are among the most attractive ways to provide electric energy from solar heat. On the one hand, these methods have the potential to be more efficient than traditional ways since they can convert heat to electricity directly without experiencing the conventional intermediate mechanical energy conversion process; on the other hand, these electricity generators are generally silent, reliable, and scalable, making them very suitable to serve as a distributed power generation system for certain specialized fields, such as military and space applications. A lot of effort has been devoted to investigate the energy conversion theory and practical applications thus far. This paper is intended to present a thorough review on recent advances in developing the thermoelectric, thermionic, magnetohydrodynamic, and alkali-metal thermoelectric technologies for direct solar thermal power generation. Both the fundamental issues and latest application research are illustrated and critical issues are discussed. The paper concludes with a description of future developments expected in the subjects covered.

© 2009 American Institute of Physics

Article Outline

  1. INTRODUCTION
    1. Thermoelectric technology
    2. Thermionic technology
    3. Magnetohydrodynamic technology
    4. Alkali-metal thermoelectric technology
  2. ADVANCES IN DIRECT SOLAR THERMAL POWER GENERATION
    1. Solar thermoelectric power generation
    2. Solar thermionic power generation
    3. Magnetohydrodynamic and AMTEC technology
    4. Cascade system
  3. REMARKS AND FUTURE DEVELOPMENTS
  4. CONCLUSION

KEYWORDS and PACS

PACS

  • 88.40.-j

    Solar energy

  • 07.87.+v

    Spaceborne and space research instruments, apparatus, and components (satellites, space vehicles, etc.)

  • 88.05.-b

    Energy analysis

  • 84.60.Rb

    Thermoelectric, electrogasdynamic and other direct energy conversion

  • 84.60.Lw

    Magnetohydrodynamic conversion

  • 84.60.Ny

    Thermionic conversion

PUBLICATION DATA

ISSN:

1941-7012 (print)  
1941-7012 (online)

  1. Q. Y. Ni, Science & Technology Review 5, 63 (1996).
  2. G. J. Snyder and E. S. Toberer, Nature Mater. 7, 105 (2008). [MEDLINE]
  3. I. B. Cadoff and E. Miller, Thermoelectric Materials and Devices (Reinhold, New York, 1960).
  4. S. B. Riffat and X. L. Ma, Appl. Therm. Eng. 23, 913 (2003). [Inspec] [ISI]
  5. T. Caillat, J. P. Fleurial, G. J. Snyder, and A. Borshchevsky, 20th International Conference on Thermoelectrics (IEEE, Beijing, 2001), p. 282.
  6. L. E. Bell, Science 321, 1457 (2008). [MEDLINE]
  7. H. X. Xi, L. G. Luo, and G. Fraisse, Renewable Sustainable Energy Rev. 11, 923 (2007). [Inspec]
  8. V. I. Babanin, A. Y. Ender, I. N. Kolyshkin, V. I. Kuznetsov, V. I. Sitnov, and D. V. Paramonov, Proceedings of the 32nd Intersociety Energy Conversion Engineering Conference (American Institute of Chemical Engineers, Honolulu, 1997), p. 427.
  9. T. F. Zeng, Appl. Phys. Lett. 88, 153104 (2006)APPLAB000088000015153104000001.
  10. G. N. Hatsopoulos and E. P. Gyftopoulos, Thermionic Energy Conversion (MIT Press, Cambridge, 1973).
  11. Y. V. Nikolaev, A. S. Gontar, S. A. Eriomin, O. L. Izhvanov, S. S. Kalmykov, Y. D. Karpechenko, V. S. Kolesov, V. U. Koroliev, R. Y. Kucherov, N. V. Lapochkin, T. Lechtenberg, and L. Begg, Space Technology and Applications International Forum (American Institute of Physics, Albuquerque, 1999), p. 1581.
  12. H. Yamaguchi, X. R. Zhang, S. Higashi, and M. J. Li, J. Magn. Magn. Mater. 320, 1406 (2008).
  13. S. C. Kaushik, S. S. Verma, and A. Chandra, Heat Recovery Syst. CHP 15, 675 (1995). [Inspec]
  14. C. X. Ju, Y. C. Lv, and B. H. Jing, Open Cycle MHD Power Generation (Beijing University of Technology Press, Beijing, 1998) (in Chinese).
  15. H. Branover, A. Yakhot, and A. EI-Boher, Seventh International Conference on MHD Electrical Power Generation (Massachusetts Institute of Technology (MIT) & Symposia on the Engineering Aspects of Magnetohydrodynamics (SEAM) Inc., Boston, 1980), p. 165.
  16. N. Kayukawa, Prog. Energy Combust. Sci. 30, 33 (2004).
  17. N. Kayukawa, Energy Convers. Manage. 41, 1953 (2000). [Inspec]
  18. M. A. K. Lodhi and A. Mustafa, J. Power Sources 158, 740 (2006). [Inspec]
  19. M. A. K. Lodhi and J. B. Briggs, J. Power Sources 168, 537 (2007). [Inspec]
  20. M. S. El-Genk and J. M. P. Tournier, Energy Convers. Manage. 45, 511 (2004). [Inspec]
  21. M. A. K. Lodhi, P. Vijayaraghavan, and A. Daloglu, J. Power Sources 96, 343 (2001). [Inspec]
  22. L. F. Zhang and B. Li, Energy Technology 25, 114 (2004) (in Chinese).
  23. M. S. El-Genk and J. -M. Tournier, Energy Convers. Manage. 43, 1931 (2002). [Inspec]
  24. N. Hiroyuki and N. Akira, Japan Patent No. JP2001153470-A (June 8, 2001).
  25. S. A. Omer and D. G. Infield, Energy Convers. Manage. 41, 737 (2000). [Inspec] [ISI]
  26. J. C. Chen, J. Appl. Phys. 79, 2717 (1996)JAPIAU000079000005002717000001.
  27. B. Lenoir, A. Dauscher, P. Poinas, H. Scherrer, and L. Vikhor, Appl. Therm. Eng. 23, 1407 (2003) (ScienceDirect). [Inspec]
  28. S. Maneewan, J. Hirunlabh, J. Khedari, B. Zeghmati, and S. Teekasap, Sol. Energy 78, 495 (2005). [Inspec]
  29. S. Maneewan, J. Khedari, B. Zeghmati, J. Hirunlabh, and J. Eakburanawat, Renewable Energy 29, 743 (2004). [Inspec]
  30. N. M. Khattab and E. T. El Shenawy, Energy Convers. Manage. 47, 407 (2006). [Inspec]
  31. J. A. Micallef, U.S. Patent No. US2008053514-A1 (March 6, 2008).
  32. H. Berke and R. Gaudiana, U.S. Patent No. US2006225782-A1 (October 12, 2006).
  33. R. D. Hunt, Patent No. WO2004004016-A1 (January 8, 2004).
  34. D. H. Hecht, U.S. Patent No. US2007289622-A1 (December 20, 2007).
  35. S. Masayuki, K. Katsuhito, F. Kazuhisa, and S. Kazuyuki, Japan Patent No. JP2005093449-A (April 7, 2005).
  36. R. Robert, S. Romer, A. Reller, and A. Weidenkaff, Adv. Eng. Mater. 7, 303 (2005). [Inspec]
  37. R. Robert, L. Bocher, B. Sipos, M. Dobeli, and A. Weidenkaff, Prog. Solid State Chem. 35, 447 (2007). [Inspec]
  38. S. F. Adams, Space Technology and Applications International Forum (American Institute of Physics, Albuquerque, 2006), p. 590.
  39. B. G. Ogloblin, E. Y. Kirillov, A. V. Klimov, A. I. Shalaev, D. P. Shumov, A. Y. Ender, V. I. Kuznetsov, and V. I. Sitnov, Space Technology and Applications International Forum (STAIF-96) (American Institute of Physics, Albuquerque, 1996), p. 1459.
  40. H. H. Streckert, L. L. Begg, Y. V. Nikolaev, D. L. Tsetskhladse, S. A. Eriomin, O. L. Izhvanov, and N. V. Lapochkin, Space Technology and Applications International Forum (American Institute of Physics, Albuquerque, 2000), p. 1302.
  41. M. R. Martinez, O. Izhvanov, B. Robertson, P. N. Clark, H. H. Streckert, and J. L. Desplat, Space Technology and Applications International Forum (American Institute of Physics, Albuquerque, 2005), p. 926.
  42. H. Streckert, D. Peltier, L. Begg, and J. Watson, Space Technology and Applications International Forum (American Institute of Physics, Albuquerque, 2002), p. 1028.
  43. W. Zheng, A. Ogino, and H. Kando, Jpn. J. Appl. Phys., Part 1 39, 2816 (2000).
  44. S. Masashi, Japan Patent No. JP2002078364-A (March 15, 2002).
  45. P. N. Clark, J. L. Desplat, H. H. Streckert, S. F. Adams, and J. W. Smith, Space Technology and Applications International Forum (American Institute of Physics, Albuquerque, 2006), p. 598.
  46. A. Y. Ender, V. I. Kuznetsov, V. I. Sitnov, E. M. Kushner, E. P. Malamed, and D. V. Paramonov, Space Technology and Applications International Forum (American Institute of Physics, Albuquerque, 1999), p. 1408.
  47. H. Fowler and A. Israel, U.S. Patent No. US4168716-A (September 25, 1979).
  48. P. Satyamurthy, N. Venkatramani, A. M. Quraishi, and A. Mushtaq, Energy Convers. Manage. 40, 913 (1999). [Inspec]
  49. V. S. Slavin, G. C. Bakos, T. A. Milovidova, and K. A. Finnikov, IEEE Trans. Energy Convers. 21, 491 (2006). [Inspec]
  50. E. P. Chivington, T. L. Hershey, and M. Schuller, 29th Intersociety Energy Conversion Engineering Conference (American Institute of Aeronautics and Astronautics, Monterey, 1994), p. 300.
  51. G. Johnson, M. E. Hunt, W. R. Determan, P. A. HoSang, J. Ivanenok, and M. Schuller, IEEE Aerosp. Electron. Syst. Mag. 12, 33 (1997). [Inspec]
  52. T. J. Hendricks and C. D. Huang, J. Sol. Energy Eng. 122, 49 (2000)JSEEDO000122000002000049000001. [ISI]
  53. T. H. VanHagan, J. N. Smith, and M. Schuller, IEEE Aerosp. Electron. Syst. Mag. 12, 10 (1997). [Inspec]
  54. A. Y. Ender, I. N. Kolyshkin, V. I. Kuznetsov, E. V. Yakovlev, and D. V. Paramonov, Space Technology and Applications International Forum (American Institute of Physics, Albuquerque, 1998), p. 1565.
  55. E. Newman, U.S. Patent No. US5518554-A (May 21, 1996).
  56. S. Bevilacqua and R. Gislon, U.S. Patent No. US4257823-A (March 24, 1981).
  57. R. McConnell, Refocus 6, 35 (2005).
  58. L. Jia, Ph.D. thesis, University of Science and Technology of China, 2006.
  59. M. Kocoloski, C. Eger, R. McCarty, K. Hallinan, and K. Kissock, ACEEE Summer Study on Energy Efficiency in Industry (ACEEE, New York, 2007), p. 55.
  60. G. Min and D. M. Rowe, IEEE Trans. Energy Convers. 22, 528 (2007).
  61. S. A. Whalen, C. A. Apblett, and T. L. Aselage, J. Power Sources 180, 657 (2008). [Inspec]


Figures (click on thumbnails to view enlargements)

FIG.1
The schematic view of (a) thermoelectric device and (b) thermoelectric couple. Reprinted with permission from G. J. Snyder and E. S. Toberer, Nature Mater. 7, 105 (2008). Copyright © 2008, Nature Publishing Group.

FIG.1 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.2
The schematic view of a thermionic converter.

FIG.2 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.3
The schematic view of MHD power generation. Reprinted with permission from H. Yamaguchi, X. R. Zhang, S. Higashi, and M. J. Li, J. Magn. Magn. Mater. 320, 1406 (2008). Copyright © 2008, North-Holland.

FIG.3 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.4
Schematic of a typical solar-assisted liquid metal MHD power generation system (Ref. 15).

FIG.4 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.5
Schematic view of AMTEC. Reprinted with permission from M. S. El-Genk and J. M. P. Tournier, Energy Convers. Manage. 45, 511 (2004). Copyright © 2004, Pergamon.

FIG.5 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.6
Schematic view of (a) two-stage concentrator and (b) receiver system. Reprinted with permission from S. A. Omer and D. G. Infield, Energy Convers. Manage. 41, 737 (2000). Copyright © 2000, Pergamon.

FIG.6 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.7
Schematic of the TE-RSC power generator. Reprinted with permission from S. Maneewan, J. Khedari, B. Zeghmati, J. Hirunlabh, and J. Eakburanawat, Renewable Energy 29, 743 (2004). Copyright © 2004, Pergamon.

FIG.7 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.8
Schematic of the TEG-TEC system with solar reflectors. Reprinted with permission from N. M. Khattab and E. T. El Shenawy, Energy Covers. Manage. 47, 407 (2006). Copyright © 2006, Pergamon.

FIG.8 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.9
Simple structure combining PV and thermoelectric conversion (Ref. 33).

FIG.9 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.10
Separated structure combining PV and thermoelectric conversion (Ref. 34).

FIG.10 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.11
Combined system utilizing wavelength band divider (Ref. 35).

FIG.11 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.12
Schematic of thermionic-based solar bimodal SEPS. Reprinted with permission from B. G. Ogloblin, E. Y. Kirillov, A. V. Klimov, A. I. Shalaev, D. P. Shumov, A. Y. Ender, V. I. Kuznetsov, and V. I. Sitnov, Space Technology and Application International Forum (Albuquerque, 1996). Copyright © 1996, American Institute of Physics.

FIG.12 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.13
Schematic of HPALM solar space power system, Reprinted with permission from M. R. Martinez, O. Izhvanov, B. Robertson, P. N. Clark, H. H. Streckert, and J. L. Desplat, Space Technology and Application International Forum (Albuquerque, 2005). Copyright © 2005, American Institute of Physics.

FIG.13 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.14
Single cell cylindrical inverted converter. Reprinted with permission from P. N. Clark, J. L. Desplat, H. H. Streckert, S. F. Adams, and J. W. Smith, Space Technology and Application International Forum (Albuquerque, 2006). Copyright © 2006, American Institute of Physics.

FIG.14 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.15
The schematic of experimental platform. Reprinted with permission from P. N. Clark, J. L. Desplat, H. H. Streckert, S. F. Adams, and J. W. Smith, Space Technology and Application International Forum (Albuquerque, 2006). Copyright © 2006, American Institute of Physics.

FIG.15 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.16
The schematic of cascade solar cogeneration system. Reprinted with permission from A. Y. Ender, V. I. Kuznetsov, V. I. Sitnov, E. M. Kushner, E. P. Malamed, and D. V. Paramonov, Space Technology and Application International Forum (Albuquerque, 1999). Copyright © 1999, American Institute of Physics.(Ref. 46).

FIG.16 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.17
Schematic of liquid metal MHD power system for solar and waste heat. Reprinted with permission from P. Satyamurthy, N. Venkatramani, A. M. Quraishi, and A. Mushtaq, Energy Convers. Manage. 40, 913 (1999). Copyright © 1999, Pergamon.

FIG.17 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.18
Schematic of solar MHD power plant. Reprinted with permission from E. P. Chivington, T. L. Hershey, and M. Schuller, IEEE Trans. Energy Convers. 21, 491 (2006). Copyright © 2006, Institute of Electrical and Electronics Engineers.

FIG.18 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.19
Schematic of solar heated AMTEC spacecraft power system (Ref. 50).

FIG.19 Download High Resolution Image (.zip file) | Export Figure to PowerPoint

FIG.20
Schematic of solar AMTEC power system. Reprinted with permission from G. Hohnson, M. E. Hunt, W. R. Deteman, P. A. HoSang, J. Ivanenok, and M. Schuller, IEEE Aerosp. Electron. Syst. Mag. 12, 33 (1997). Copyright © 1997, Institute of Electrical and Electronics Engineers.

FIG.20 Download High Resolution Image (.zip file) | Export Figure to PowerPoint



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