DOI QR코드

DOI QR Code

Vibration Characteristics of A Rectangular Tank in accordance with Changing Thickness And Boundary Condition

경계조건과 두께 변화에 따른 사각탱크의 진동 특성

  • 배성용 (부경대학교 조선해양시스템공학과)
  • Received : 2010.12.03
  • Accepted : 2010.12.20
  • Published : 2011.02.28

Abstract

Rectangular box type structures are used in many fields of civil, mechanical and marine engineering. Especially, Most ship structures are often in contact with inner or outer fluid, like ballast, fuel and stem tanks. Fatigue damages are sometimes observed in these tanks which seem to be caused by resonance with exciting force of engine and propeller. Vibration characteristics of these thin walled tanks in contact with fluid near engine and propeller are strongly affected by added mass of containing fluid. Therefore it is essentially important to estimate the added mass effect to predict vibration of the tanks. Many authors have studied vibration of rectangular tanks containing fluid. Few research on dynamic interaction among tank walls filled with fluid are reported in the vibration of rectangular tanks recently. In case of rectangular tanks, structural coupling between adjacent panels and effect of vibration modes of multiple panels on added mass of water have to be considered. In the previous report, a numerical analysis is performed for the coupling effect between panels of a tank on added mass of containing fluid, the effect of structural constraint between panels on each vibration mode for fluid region, and mode characteristics in accordance with changing breadth of the plates by using finite element method for plates and boundary element method for fluid region. In this paper, the coupling effect between panels of a tank on added mass of containing fluid, the effect of structural constraint between panels on each vibration mode for fluid region, and mode characteristics in accordance with changing length, thickness, and boundary condition of the plates are investigated numerically and discussed.

Keywords

References

  1. T. Mazuch, J. Horacek, J. Trnka and J. Vesely, 1996, "Natural Modes and Frequencies of a Thin Clamped-free Steel Cylindrical Storage Tank Partially Filled with Water: FEM and measurement", Journal of Sound and Vibration, Vol. 193(3), pp. 669-690. https://doi.org/10.1006/jsvi.1996.0307
  2. M. Chiba, 1994, "Axisymmetric Free Hydroelastic Vibration of A Flexural Bottom Plate in A Cylindrical Tank Supported on An Elastic Foundation", Journal of Sound and Vibration, Vol. 169(3), pp. 387-394. https://doi.org/10.1006/jsvi.1994.1024
  3. J. R. Cho and J. M. Song, 2001, "Assessment of Classical Numerical Models for The Separate Fluid-structure Modal Analysis", Journal of Sound and Vibration, Vol. 239(5), pp. 995-1012. https://doi.org/10.1006/jsvi.2000.3179
  4. F. Kito, 1960, "On Vibration of A Rectangular Tank Filled with Water", J. Soc. Naval Arch. of Japan, Vol. 106, pp. 75-82.
  5. 西野 宏 外, 1995, "級数展開法による接水防撓板の 振動特性lこ關する硏究", 日本造船學會論文集, 第178号, pp. 371-379.
  6. S. Bartlett, M. Winton and P. D. Clausen, 2001, "An Added Mass Theory for The Base Partially Filled Rectangular Tank for Use with FEA", Journal of Sound and Vibration, Vol. 246(2), pp. 211-223. https://doi.org/10.1006/jsvi.2000.3631
  7. 배성용, 2005, "접수탱크구조 진동해석", 한국동력 기계공학회지, 제 9권, 제4호, pp. 65-70.
  8. 배성용, 2005, "부가질량 효과와 호흡모드를 고려한 구조-유체 연성진동해석", 한국동력기계공학회지, 제9권, 제4호, pp. 71-76.