DOI QR코드

DOI QR Code

A new concept for blast hardened bulkheads with attached aluminum foam

  • Kim, Sung-Ho (Naval Ship Engineering Center, Republic of Korea Navy) ;
  • Woo, Heekyu (Division of Aircraft Research and Development, Korea Aerospace Industries) ;
  • Choi, Gul-Gi (Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology) ;
  • Yoon, Kyungho (Department of Radiology, Brigham and Women's Hospital, Harvard Medical School)
  • Received : 2017.10.14
  • Accepted : 2017.11.29
  • Published : 2018.02.10

Abstract

The use of blast hardened bulkheads (BHBs) is an effective vulnerability hardening technique for improving the survivability of naval warships when internal explosions occur due to being shot by an anti-surface missile. In this paper, a new concept of BHBs reinforced by aluminum (Al) foam is proposed. The new concept can significantly reduce the blast pressures transferred to bulkheads and, unlike conventional BHBs, can be easily installed to operating naval warships. Chamber model blast tests were performed to demonstrate the effectiveness of the Al-foam BHBs and the results are further supported by numerical simulations. Finally, a practical preliminary is proposed for the Al-foam BHBs.

Keywords

Acknowledgement

Supported by : Agency for Defense Development (ADD), Foamtech Co., Ltd.

References

  1. Agency for Defense Development (2014), Development Report of Blast Hardened Bulkheads, Republic of Korea.
  2. ALION S&T (2013), Engineering Support for: Blast Hardened Bulkhead (BHB) Development, Test and Evaluation.
  3. Ashby, M.F., Evans, A.G., Fleck, N.A., Gibsonm, L.J., Hutchinson, J.W. and Wadley, H.N.G. (2000), MetAl-foams: A Design Guide, Butterworth Heinemann.
  4. Baker, W.E. (1973), Explosion in Air, University of Texas Press.
  5. Bathe, K.J. (1996), Finite Element Procedures, Prentice Hall, New York, U.S.A.
  6. Deshpande, V.S. and Fleck, N.A. (2000), "Isotropic constitutive model for metallic foams", J. Mech. Phys. Sol., 48, 1253-1283. https://doi.org/10.1016/S0022-5096(99)00082-4
  7. Galle, L.F. and Erkel, V.A.G. (2002), "TNO-PML developments of blast resistant doors and walls", Proceedings of the 1st European Survivability Workshop, Germany.
  8. Hanssen, A.G., Hopperstad, O.S., Langseth, M. and Ilstad, H. (2000), "Validation of constitutive models applicable to aluminum foams", J. Mech. Sci., 44, 359-406.
  9. Hou, W., Zhu, F., Lu, G. and Fang, D.N. (2010), "Ballistic impact experiments of metallic sandwich panels with aluminum foam core", J. Imp. Eng., 37, 1045-1055. https://doi.org/10.1016/j.ijimpeng.2010.03.006
  10. Krauthammer, T. (2008), Modern Protective Structures, CRC Press.
  11. Lee, S.G., Lee, H.S., Kim, Y.Y., Shin, Y.S. and Choi, G.G. (2014), "Shock response analysis of part chamber model under internal blast", Proceeding of the Society of Naval Architects of Korea, Republic of Korea.
  12. Lee, S.G. and Zhao, T. (2013), "Shock response analysis of blast hardened bulkhead in naval vessel under internal blast", Proceeding of the Society of Naval Architects of Korea, Republic of Korea.
  13. LSTC (2012), LS-DYNA User's Manual, Version 971 R6, Livemore Soft Technology Corp., U.S.A.
  14. Noh, I.S., Park, M.J. and Oh, Y.T. (2014), "Estimation of structural responses of bulkhead under internal explosion", Proceeding of the Society of Naval Architects of Korea, Republic of Korea.
  15. Perillo, M., Primavera, V., Carofalo, A., Giorgi, M. and Nobile, R. (2010), "Validation of material models for the numerical simulation of aluminum foams", Proceedings of the 11th International LS-DYNA Users Conference, 19-34.
  16. Rajan, S. and Uday, K.V. (2004), "Blast impact on aluminum foam composite sandwich panels", Proceedings of the 8th International LS-DYNA Users Conference, 29-38.
  17. Raymond, I.K. (2001), "Tools for the formation of optimized X-80 steel blast tolerant transverse bulkheads", M.Sc. Dissertation, University of New South Wales, Australia.
  18. Reyes, A., Hopperstad, O.S., Berstad, T. and Langseth, M. (2004), "Implementation of a constitutive model for aluminum foam including fracture and statistical variation of density", Proceedings of the 8th International LS-DYNA Users Conference, 11-24.
  19. Seo, K.S. and Choi, Y.J. (1996), "A study of design criteria for protective ctructures against internal explosion", Proceeding of the Korean Society of Civil Engineering, Republic of Korea.
  20. Shim, C.S. (2013), Development of Standard for Material Models of Aluminum Foams and Their Application Technologies, Foamtech Co., Ltd., Republic of Korea.
  21. Shim, C.S. and Yun, N.R. (2010), "Evaluation of close-range blast pressure mitigation using a sacrificial member", J. Earthq. Eng. Soc. Kor., 14, 11-23.
  22. Soreide, T.H. (1981), Ultimate Load Analysis of Marine Structures, Tapir.
  23. Stark, S. and Sajdak, J. (2012), "Design and effectiveness criteria for blast hardened bulkhead applications on naval combatants", Proceedings of the 4th International Conference on Design and Analysis of Protective Structures, Republic of Korea.
  24. Su Y., Wu, C. and Griffith M. (2008), "Mitigation of blast effects on aluminum foam protected masonry walls validation", Proceedings of the 2nd International Conference on Analysis and Design of Structures against Explosive and Impact Loads.
  25. Unified Facilities Criteria (2008), Structures to Resist the Effects of Accidental Explosions, UFC 3-340-02. (TM5-1300).
  26. Yun, N.R., Shin, D.H., Ji, S.W. and Shim, C.S. (2014), "Experiments on blast protective systems using aluminum foam panels", KSCE J. Civil Eng., 18, 2153-2161. https://doi.org/10.1007/s12205-014-0092-3

Cited by

  1. Experimental and numerical investigations of near-field underwater explosions vol.77, pp.3, 2021, https://doi.org/10.12989/sem.2021.77.3.395