DOI QR코드

DOI QR Code

심해 환경 하에서 내파 충격파를 받는 내압 선체의 동적 좌굴 평가 기법

Dynamic Stability Assessment of Pressure Hull in Deep Sea against Implosion Pressure Pulse

  • 투고 : 2020.02.05
  • 심사 : 2020.04.22
  • 발행 : 2020.08.20

초록

In this study, the dynamic structural behavior of pressure vessels due to pressure pulse initiated by implosion of neighbouring airbacked equipments including Unmanned Underwater Vehicles (UUV), sensor system, and so on were dealt with for the structural design and safety assessment of pressure hulls of submarine. The dynamic buckling and collapse responses of pressure vessel in deep sea were investigated considering the effects of initial hydrostatic pressure and fluid-structure interactions. The governing equations for circular cylindrical shells were formulated theoretically assuming a relatively simple displacement fields and the derived nonlinear simultaneous ordinary differential equations were analysed by developed numerical solution algorithm. Finally, the introduced safety assessment procedures for the dynamic buckling behaviors of pressure hulls due to implosion pressure pulse were validated by comparing the theoretical analysis results with those of experiments for examples of simple cylinders.

키워드

참고문헌

  1. Bitter, N.P. & Shepherd, J.E., 2014. Dynamic buckling and fluid - structure interaction of submerged tubular structures In: Shukla, A., Rajapakse, D.S., Hynes, M.E. (Eds.), Blast Mitigation - Experimental and Numerical Studies. Springer, NewYork, pp.189-227.
  2. Damazo, J., Porowski, R., Shepherd, J.E. & Inaba, K., 2010. Fluid-structure interaction of submerged tubes subjected to impact generated stress waves, 16th US National Congress of Theoretical and Applied Mechanics, June 27-July 2, 2010, State College, Pennsylvania, USA.
  3. Gupta, S., Matos, H., LeBlanc, J. and Shukla, A., 2016. Shock initiated instabilities in underwater cylindrical structures, Journal of the Mechanics and Physics of Solids, 95, pp.188-212. https://doi.org/10.1016/j.jmps.2016.05.034
  4. Lindberg, H. & Florence, A., 1987. Dynamic Pulse Buckling-Theory and Experiment, Martinus Nijhoff Publishers.
  5. Matos, H., Gupta, S. & Shukla, A., 2018. Structural instability and water hammer signatures from shock-initiated implosions in confining environments, Mechanics of Materials, 116, 169-179. https://doi.org/10.1016/j.mechmat.2016.12.004
  6. Nho, I.S., Ryu, J.W., Lim, S.J., & Cho, S.R., 2017. Buckling analysis of circular cylinders with initial imperfection subjected to hydrostatic pressure. Journal of the Society of Naval Architects of Korea, 54(3), pp.267-273. https://doi.org/10.3744/SNAK.2017.54.3.267
  7. Nho, I.S., Cho, S.R., Kim, Y.Y., Han, S. & Cho, Y.S., 2020. Implosion Analysis of Circular Cylinder using Simplified Model. Journal of the Society of Naval Architects of Korea, 57(1), pp.8-14. https://doi.org/10.3744/SNAK.2020.57.1.008
  8. Turner, S. & Ambrico, J., 2013. Underwater implosion of cylindrical metal tubes. Journal of Applied Mechanics, 80, 011013, pp.1-11.