Pulse Energy Utilization in Space

우주에서의 펄스 에너지 활용

  • 최수진 (서울대학교 기계항공공학부) ;
  • 한태희 (서울대학교 기계항공공학부) ;
  • 이현희 (서울대학교 기계항공공학부) ;
  • 이경철 (서울대학교 기계항공공학부) ;
  • 여재익 (서울대학교 기계항공공학부)
  • Published : 2009.02.28

Abstract

The blast wave released during the initiation of energetic materials gives rise to pulse energy generation, characterized by a sudden increase of potential energy. A highly efficient energy source, sought from pulse-type lasers, may be utilized in various space propulsion and power applications. This paper introduces a scheme of utilizing the laser energy in 1) attitude control of a satellite requiring of a low thrust, 2) innovative laser-induced drug delivery, 3) implosion-based micro piston development, 4) deflecting and zapping of space debris for laser kill purpose, and 5) finally lunar detection using laser induced breakdown spectroscopy.

레이저는 도구의 개념을 넘어서 추력 및 동력을 발생시키는 새로운 에너지원으로 사용되고 있다. 본 논문에서는 위성의 자세제어 시 필요한 추력을 레이저 추진 방식으로 구축하는 방안과 마이크로 추진기술을 활용한 약물전달 연구를 소개한다. 또한 레이저를 새로운 에너지원으로 적용하여 친환경 그린 에너지를 획득하고, 고에너지 물질을 점화 가열하며, 나아가서는 우주에서의 파편 제거 등 레이저 킬무기체계 구축과 행성 위성 탐사 시 구성 물질의 성분을 분석할 수 있는 효과적인 방법에 대하여 논하였다.

Keywords

References

  1. A. R. Kantrowitz, 1972 'Propulsion of orbit by ground based lasers,' Aeronautics and Aestronautics, Vol. 9, No. 3, pp.40-42
  2. J. Sinko and A.V. 2008 Pakhomov, 'Laser propulsion with liquid propellants Part Ⅰ: an overview,' AIP Conference Proceedings 997, pp.195-208 https://doi.org/10.1063/1.2931891
  3. J. Sinko and A.V. Pakhomov, 2008 'Laser propulsion with liquid propellants Part Ⅱ: thin films,' AIP Conference Proceedings 997, pp.209-221 https://doi.org/10.1063/1.2931892
  4. J. Sinko and D.A. Gregory, 2007 'Vaporization - Driven impulse generation for laser propulsion,' AIAA Paper 2007-5601
  5. T. Yabe, C. Phipps, K. Aoki, M. Yamaguchi, R. Nakagawa, C. Baasandash, Y. Ogata, M. Shiho, G. Inoue, M. Onda, K. Horioka, I. Kajiwara, and K. Yoshida, 2003 'Laser driven vehicle-from inner-space to outer-space,' Appl. Phys. A77, pp.243-249 https://doi.org/10.1007/s00339-003-2125-5
  6. T. Yabe, H. Ohzono, T. Ohkubo, C. Baasandash, M. Yamaguchi, T. Oku, K.Taniguchi, S. Miyazaki, R. Akoh, Y. Ogata, B. Rosenberg, and M. Yoshida, 2004 'Proposal of liquid cannon target driven by fiber laser for micto-thruster in satellite,' AIP Conference Proceedings 702, pp. 503-512 https://doi.org/10.1063/1.1721027
  7. T. Ohkubo, T. Yabe, S. Miyazaki, C. Baasandash, K. Taniguchi, A. Mabuchi, D.Tomita, Y. Ogata, J. Hasegawa, and K. Horioka, 2005 'Laser propulsion usingmetal-free water cannon target,' AIP Conference Proceedings 766, pp.394-405 https://doi.org/10.1063/1.1925160
  8. J. J. Yoh et al, H. H. Lee, J. H. Choi, K. C. Lee, and K. H. Kim, 2008 'Ablation induced explosion of metal using high power Nd:YAG laser,' J. Appl. Phys. Vol. 103, No.5 https://doi.org/10.1063/1.2884532
  9. V. Menezes, K. Takayama, T. Ohki, and J. Gopalan, "Laser ablation assisted micro particle acceleration for drug delivery," Appl. Phys. Lett., Vol. 87, No. 163504, 2005 https://doi.org/10.1063/1.2093930
  10. J. H. Choi, A. B. Gojani, H. H. Lee, and J. J. Yoh, 'Development of bio-ballistic device for laser ablation induced drug delivery,' Int. J. Precision Engineering and Manufacturing, 9(3), 2008
  11. C. D. Boley, A. M. Rubenchik, 'Modeling of high-energy pulsed laser interactions with coupons,' LLNL Technical Report, 2003, UCRL-ID-151857
  12. A. N. Ali, S. F. Son, B. W. Asay, M. E. Decroix, 'High-irradiance laser ignition of explosives,' Combustion Science and Technology, 175, 1551-1571, 2003 https://doi.org/10.1080/00102200302358
  13. J. J. Yoh, M. A. McClelland, J. L. Maienschein, J. F. Wardell, and C. M. Tarver, 'Simulating thermal explosion of RDX-based explosives: model comparison with experiment,' Journal of Applied Physics, 97, 083504, 2005 https://doi.org/10.1063/1.1863429
  14. 이경철, 김기홍, 여재익, '고출력 레이저에 의한 가열과 폭약의 점화 모델링,' 한국추진 공학회지, 제12권 3호, 2008, pp.1-8
  15. C. M. Tarver, 'Chemical kinetic modeling of HMX and TATB laser ignition tests,' Journal of Energetic Materials, 22, 93-107, 2004 https://doi.org/10.1080/07370650490492842
  16. J. J. Yoh, M. A. McClelland, J. L. Maienschein, A. L. Nichols, and C. M. Tarver, 'Simulating thermal explosion of HMX-based explosives: model comparison with experiment,' Journal of Applied Physics, 100, 073515, 2006 https://doi.org/10.1063/1.2357418
  17. K. C. Lee, K. H. Kim and J. J. Yoh, 'Modeling of high energy laser ignition of energetic materials,' Journal of Applied Physics. Vol. 97, No.083536, 2008 https://doi.org/10.1063/1.2909271
  18. H. Kogelnik and T. Li, 'Laser beams and resonators,' Applied Optics Vol. 5, No.10, 1966 https://doi.org/10.1364/AO.5.001550
  19. D. C. Smith, 'High-power laser propagation: thermal blooming,' Proc. of the IEEE, Vol. 65, No.12, 1977
  20. USCFC: Robotic U.S.Mission to the Moon. http://nssdc.gsfc.nasa.gov/nmc/masterCatalog.do?sc=1966-045A, December 14, 2007
  21. Allton, Judy: 'Catalog of Apollo Lunar Surface Geological Sampling Tools and Containers,' NASA Johnson Space Center Document JSC-23454, 1989
  22. The National Space Data Center(NSSDC): http://nssdc.gsfc.nasa.gov/nmc/masterCatalog.do?sc=1966-116A' The Luna 13. October 15, 2007
  23. The National Space Data Center(NSSDC):Chronology of Mars Exploration. http://nssdc.gsfc.nasa.gov/nmc/spacecraftDisplay.do?id=1975-075C, December 12, 2007
  24. NASA JPL: Mars Exploration Rover Mission's Science web site. - http://marsrovers.jpl.nasa.gov/science/, December 12, 2008
  25. Concept Evaluation of Mars Drilling and Sampling Instrument. by Matti Anttila, book, March, 2005