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The Development of Impact Force Model of Large Commercial Aircraft Considering the Fuel Mass Effect

항공연료 질량을 고려한 대형항공기 충돌하중모델의 개발

  • Received : 2014.04.01
  • Accepted : 2014.06.19
  • Published : 2014.08.30

Abstract

In this paper, the aircraft impact force models of large commercial B747 aircraft were developed by using so called Missile-Target Interaction Method. The Lagrangian meshfree SPH concept was adopted to the fuel mass for impact force calculation. 240ton, 320ton, 420ton of aircraft mass were considered to meet with the previously proposed aircraft impact force model by OECE/NEA(2002) and Arros & Doumbalski(2007). The model of present studies are based on the model of OECE/NEA originally, and extended to the model of Arros & Doumbalski. To calculate and evaluate the aircraft impact force, the impact analyses were simulated by using commercial Hydrocde AUTODYN considering the fuel mass effect. The resultant reaction force of symmetric rigid wall is considered as the impact force of aircraft. The preparation of refined FE mesh and impact simulation were done by using AUTODYN. The aircraft and fuel debris and secondary trajectory effects were considered by the eroding effect on the FE shell element and the explicitly modeled fuel mass. To evaluate and verify the impact force of aircraft, the Riera approach were used for the reference impact time history graph. The rigid wall impact test shows that the finite element model of a B747 which considering the explicit fuel mass effect is good agreement with reference values and the applicability of fuel modelling approaches of this study.

Keywords

Acknowledgement

Supported by : National Research Foundation of Korea (NRF)

References

  1. 이경수, 신상섭, 박대효, 인장불안정이 제거된 SPH을 이용한 고체의 동적 탄소성해석, 대한토목학회 논문집, 31권, 2A호, p.p.71-77, 2011.
  2. 이경수, 김효진, 한상을, 미사일-타깃 상호작용해석법에 의한 대형항공기 충돌해석을 위한 항공기 유한요소모델의 개발 및 검증, 대한건축학회 논문집 구조계, 29권, 11호, p.p.37-44, 2013
  3. 이상진, 항공기 충돌에 대한 쉘 격납건물의 동적 비선형해석, 한국전산구조공학회논문집, 한국전산구조공학회, 제15권, 제4호, p.p. 567-578. 2002.
  4. 전세진, 이윤석, 정철헌, 정연석, 대형 민항기 충돌 하중에 대한 국내 원전 격납건물의 동적 비선형 응답, 대한토목학회논문집, 25권, 1호, p.p.1-10, 2005
  5. Abbas, H., Paul, D. K., Godbole, P. N., and Nayak, G. C., Aircraft Crash upon outer Containment of Nuclear Power Plant, Nuclear Engineering and Design, Vol.160, No.1, p.p.13-50, 1996 https://doi.org/10.1016/0029-5493(95)01049-1
  6. Arros, J., and Doumbalski, N., Analysis of Aircraft Impact to Concrete Structures, Nuclear Engineering and Design, Vol.237, No.12, p.p.1241-1249, 2007 https://doi.org/10.1016/j.nucengdes.2006.09.044
  7. Dritter, K., and Gruner, P., Calculation of the Total Force Acting upon a Rigid Wall by Projectiles, Nuclear Engineering and Design, Vol.37, No.2, p.p.231-244, 1976 https://doi.org/10.1016/0029-5493(76)90018-2
  8. Dritter, K., and Gruner, P., The Force Resulting from Impact of Fast-flying Military Aircraft upon a Rigid Wall, Nuclear Engineering and Design, Vol.37, No.2, p.p.245-248, 1976 https://doi.org/10.1016/0029-5493(76)90019-4
  9. DOE, Accident Analysis for Aircraft Crashing to Hazardous Facilities, U.S. Department of Energy, DOE Standard DOE-STD-3014-2006, Washington, D.C., 2006
  10. Frano, R. L., and Forasassi, G., Preliminary Evaluation of Aircraft Impact on a Near Term Nuclear Power Plant, Nuclear Engineering and Design, Vol.241, No.12, p.p.5245-5250, 2011 https://doi.org/10.1016/j.nucengdes.2011.08.079
  11. Gingold, R.A., Monaghan, J.J., 1977, Smoothed particle hydrodynamics: theory and application to non-spherical stars. Monthly Notices Royal Astronomical Society, 181, 375-389, https://doi.org/10.1093/mnras/181.3.375
  12. Hollquist, John, 2006, LS-DYNA Theory manual.
  13. IAEA, Safety Standard Series: External Events Excluding Earthquakes in the Design of Nuclear Power Plants, International Atomic Energy Agency, Safety Guide No. NS-G-1.5, Vienna, 2003
  14. Iqbal, M. A., Rai, S., Sadique, M. R., and Bhargava, P., Numerical Simulation of Aircraft Crash on Nuclear Containment Structure, Nuclear Engineering and Design, Vol.243, p.p.321-335, 2012 https://doi.org/10.1016/j.nucengdes.2011.11.019
  15. Jeon, S. J., Jin, B. M., and Kim, Y. J., Assessement of the Fire Resistance of a Nuclear Power Plant Subjected to a Large Commercial Aircraft Crash, Nuclear Engineering and Design, Vol.247, p.p.11-12, 2012 https://doi.org/10.1016/j.nucengdes.2012.02.003
  16. Kar, A. K., Impactive Effects of Tornado Missiles and Aircraft, Journal of the Structural Division, Vol.105, No.11, p.p.2243-2260, 1979
  17. Lee, K.S., Han, S.E., Hong, J.W., Analysis of Impact of Large Commercial Aircraft on a Prestressed Containment Building, Nuclear Engineering and Design, Vol. 265. p.p.431-449, 2013. https://doi.org/10.1016/j.nucengdes.2013.09.009
  18. Muto, K., Sugano, T., Tsubota, H., Kasai, Y., Koshika, N., Suzuki, M., Ohrui, S., Riesemann, W.A., Bickel, D.C., Parrish, R.L., Full-scale aircraft impact test for evaluation of impact forces, Part 2: Analysis of Results, Trans. 10th International Conference on Structural Mechanics in Reactor Technology, Vol. 1 p.p. 293-299. 1989
  19. NEI, Methodology for Performing Aircraft Impact Assessments for New Plat Designs, U.S. Nuclear Energy Institute, NEI 07-13, Revision 7, Washington, D.C., 2009
  20. OECD, NEA, CSNI, Specialist Meeting on External Hazards, 2002
  21. Riera, J. D., On the Stress Analysis of Structures Subjected to Aircraft Forces, Nuclear Engineering and Design, Vol.8, No.4, p.p.415-426, 1968 https://doi.org/10.1016/0029-5493(68)90039-3
  22. Riera, J. D., A Critical Reappraisal of Nuclear Power Plant Safety Against Accidental Aircraft Impact, Nuclear Engineering and Design, Vol.57, No.1, p.p.193-206, 1980 https://doi.org/10.1016/0029-5493(80)90233-2
  23. Riesemann, W. A., et al., Full-scale Aircraft Impact Test for Evaluation of Impact Forces, Part 1: Test Plan, Test Method, and Test Results, 10th International Conference on Structural Mechanics in Reactor Technology, Vol.J, p.p.285-292, 1989
  24. Sugano, T., Tsubota, H., Kasai, Y., Koshika, N., Orui, S., Von Riesemann, W.A., Bickel, D.C., and Parks, M.B. Fullscale aircraft impact test for evaluation of impact force. Nuclear Engineering and Design. 140, 373-385. 1993 https://doi.org/10.1016/0029-5493(93)90119-T
  25. Wilt, T., Chowdhury, A., and Cox, P. A., Response of Reinforced Concrete Structures to Aircraft Crash Impact, Prepared for US Nuclear Regulatory Commission Contract NRC-02-07-006, 2011

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