DOI QR코드

DOI QR Code

미세파편 및 입자를 활용한 극초음속 비행체 요격 연구

A Study on the Interception using Fine Fragments and Particles to Hypersonic Vehicles

  • 김인수 (국방과학연구소 군전력연구센터) ;
  • 강봉주 (국방과학연구소 군전력연구센터) ;
  • 김성표 (국방과학연구소 군전력연구센터) ;
  • 윤종원 (풍산 방산기술연구원) ;
  • 김성훈 (풍산 방산기술연구원)
  • Insoo Kim (Military Force Research Center, Agency for Defense Development) ;
  • Bongjoo Kang (Military Force Research Center, Agency for Defense Development) ;
  • Seongpyo Kim (Military Force Research Center, Agency for Defense Development) ;
  • Jongwon Yoon (Defense R&D Institute, Poongsan) ;
  • Sunghoon Kim (Defense R&D Institute, Poongsan)
  • 투고 : 2023.12.06
  • 심사 : 2024.02.08
  • 발행 : 2024.04.05

초록

This paper describes the interception using fine fragments and particles to hypersonic vehicles which have a vulnerability in thermal and pressure during glide-phase flight. This interception concept is based on the fast relative velocity and the flight vulnerability of hypersonic vehicles. For the density calculation of fragmentation and particle in interception, error analysis of end-phase was performed including radar, intercept missile and target maneuvering errors. In relation to the vulnerability and error analysis, the penetration characteristics of fine fragments in high temperature were analyzed. Presented the interception in glide-phase could be applied to the concept of horizontal multi-layer defense to hypersonic vehicles.

키워드

참고문헌

  1. Tom Karako, Masao Dahlgren, "Complex Air Defense Countering the Hypersonic Missile Threat," Center for Strategic & International Studies, 2022. 
  2. "Hypersonic missiles," Post-note, number 696, Jun. 2023. 
  3. I. S. Kim, et al., "A Study on Alternative Interceptions to Hypersonic Vehicles," KIMST Annual Conference Proceedings, pp. 1204-1205, 2023. 
  4. H. S. Son, et al., "Hypersonic Weapons and National Secutity," Journal of Aerospace System Engineering, Vol. 16, pp. 56-69, 2022.  https://doi.org/10.20910/JASE.2022.16.1.56
  5. Kyoung-haing Lee, "A Study on the Defense System of the Hypersonic Missile Systems," Journal of Aerospace System Engineering, Vol. 16, No. 5, pp. 43-48, 2022. 
  6. Dipl.-Lng. Hans-Ludwig Besser, "Hypersonic vehicles," The journal of the JAPCC, edition 24, 2017. 
  7. "Air-launched ballistic missile kh-47M2 "Kinzhal"," https://www.redstar.gr 
  8. Andreas Schmidt, et al., "Hypersonic threats," Joint air power competence centre, The journal of the JAPCC, edition 31, 2021. 
  9. Jun Hwang, et al., "Deriving a control-oriented model for an axisymmetric vehicle with the power-law revolution nose," Journal of aerospace technology and management, 2020. 09. 
  10. Jill Hruby, "Russia's new nuclear weapon delivery systems_An open source technical review," Nuclear Threat Initiative, 2019.11. 
  11. I. S. Kim, "Technical Analysis of Aero-operation Hypersonic Missile," KIMST Annual Conference Proceedings, pp. 1503-1504, 2021. 
  12. K. Y. Hwang and H. N. Huh, "Research and Development Trends of a Hypersonic Glide Vehicle (HGV)," JKSAS, Vol. 48, No. 9, pp. 731-743, 2020.  https://doi.org/10.5139/JKSAS.2020.48.9.731
  13. J. H. Park, et al., "A study on IR signal properties in the flight profile of a hypersonic glide vehicle," Agency for Defense Development Report, 2022. 
  14. H. S. Oh, et al., "Modeling and Simulation of Hypersonic Glide Vehicle Using Trajectory Shaping,"  KSAS Spring Conference Proceedings, pp. 314-315, 2022. 
  15. Bruce Emerson Moylan, "Raindrop demise in a high-speed projectile flowfield," UAH Electronic Theses and Dissertations, University of Alabama in Huntsville, 2010. 
  16. A. P. T. M. J. Lamberts, "Numerical simulation of ballistic impacts on ceramic material," PDE Automotive, pp. 1-66, 2007. 
  17. Y. Dong, Y. Ren, S. Fan, Y. Wang and S. Zhao, "Investigation of Notch-Induced Precise Splitting of Different Bar Materials under High-Speed Load," Materials, p. 13:2461, 2022. 
  18. W. S. Lee, C. F. Lin, "High-temperature deformation behavior of Ti6Al4V alloy evaluated by high strain-rate compression tests," Journal of Materials Processing Technology, Vol. 75, pp. 127-136, 1998.  https://doi.org/10.1016/S0924-0136(97)00302-6
  19. Y. Zhang, J. C. Outeiro, T. Mabrouki, "On the selection of Johnson-Cook constitutive model parameters for Ti-6AL-4V using three types of numerical models of orthogonal cutting," 15th Conference on Modelling of Machining Operations, pp. 112-117, 2015. 
  20. G. C. Soares, M. C. M. Rodrigues, Leandro, "Influence of Temperature on Mechanical Properties, Fracture Morphology and Strain Hardening Behavior of a 304 Stainless Steel," 15th Conference on Modelling of Machining Operations, Materials Research, Vol. 20, pp. 141-151, 2017. 
  21. "High-Temperature Characteristics of Stainless Steels," A Designers' Handbook Series No. 9004.