DOI QR코드

DOI QR Code

부가수 질량을 고려한 외팔판의 고유진동 해석

Natural Frequency Analysis of Cantilever Plates with Added Mass

  • 장현길 (충남대학교 선박해양공학과) ;
  • 노인식 (충남대학교 선박해양공학과) ;
  • 홍창호 (충남대학교 항공우주공학과) ;
  • 이창섭 (충남대학교 선박해양공학과)
  • Jang, Hyun-Gil (Department of Naval Architecture and Ocean Engineering, Chungnam National University) ;
  • Nho, In Sik (Department of Naval Architecture and Ocean Engineering, Chungnam National University) ;
  • Hong, Chang-Ho (Department of Aerospace Engineering, Chungnam National University) ;
  • Lee, Chang-Sup (Department of Naval Architecture and Ocean Engineering, Chungnam National University)
  • 투고 : 2012.11.19
  • 심사 : 2012.11.28
  • 발행 : 2013.02.20

초록

The high-skewed and/or composite propellers of current interests to reduce the ship vibration and to increase the acoustic performance are likely to be exposed to the unexpected structural problems. One typical example is that the added mass effect on the propellers working in the non-uniform wake field reduces the natural frequency of the propeller leading to the resonance with the low-frequency excitation of the external forces. To avoid this resonance problem during the design stage, the technique of fluid-structure interaction has been developed, but the higher-order effect of the blade geometry deformation is not yet considered in evaluating the added mass effects. In this paper the fluid boundary-value problem is formulated by the potential-based panel method in the inviscid fluid region with the velocity inflow due to the body deformation, and the structural response of the solid body under the hydrodynamic loading is solved by applying the finite element method which implements the 20-node iso-parametric element model. The fluid-structure problem is solved iteratively. A basic fluid-sturcture interaction study is performed with the simple rectangular plates of thin thickness with various planform submerged in the water of infinite extent. The computations show good correlation with the experimental results of Linholm, et al. (1965).

키워드

참고문헌

  1. Hsin, C.Y., 1990. Development and analysis of panel methods for propellers in unsteady flow. Ph.D. Cambridge: Massachusetts Institute of Technology.
  2. James, R.M., 1972. On the Remarkable Accuracy of the Vortex Lattice Method. Computer Methods in Applied Mechanics, 1(1), pp.59-79. https://doi.org/10.1016/0045-7825(72)90021-7
  3. Kerwin, J.E. & Lee, C.S., 1978. Prediction of steady and unsteady marine propeller performance by numerical lifting surface theory. Transactions of The Society of Naval Architects and Marine Engineers, 86, pp.218-253.
  4. Kim, Y.G. Lee, J.T. Lee, C.S. & Suh, J.C., 1993. Prediction of Steady Performance of a Propeller by Using a Potential-Based Panel Method. Journal of the Society of Naval Architects of Korea, 30(1), pp.73-86.
  5. Kim, Y.G., 1995. Prediction of unsteady performance of marine propellers with cavitation using surface panel method. Ph.D. Daejeon: Chungnam National University.
  6. Lindholm, U.S. Kana, D.D. Chu, W.H. & Abramson, H.N., 1965. Elastic Vibration Characteristics of Cantilever Plates in Water. Journal of Ship Research, 9(1), pp.11-36.
  7. Nho, I.S. Lee, J.Y. Lee, H.Y. & Lee, C.S., 2004. A Dynamic Structural Analysis System for Propeller Blades. Journal of the Society of Naval Architects of Korea, 41(2), pp.114-120. https://doi.org/10.3744/SNAK.2004.41.2.114