DOI QR코드

DOI QR Code

트랜섬 선미 후방의 점성 유동장 Topology 관찰

Topological View of Viscous Flow behind Transom Stern

  • 김우전 (목포대학교 기계 선박해양공학부) ;
  • 박일룡 (한국해양연구원 해양운송시스템 연구본부)
  • Kim, Wu-Joan (Dept. of Naval Architecture and Marine Engineering, Mokpo National Univ.) ;
  • Park, Il-Ryong (Marine Transportation Systems Laboratory, KRISO/KORDI)
  • 발행 : 2005.08.01

초록

Viscous flows behind transom stern are analyzed based on CFD simulation results. Stern wave pattern is often complicated due to the abrupt change of stern surface curvature and flow separation at transom. When a ship advances at high speed, whole transom stern is exposed out of water, resulting in the so-called 'dry transom'. However, in the moderate speed regime, stern wave development in conjunction of flow separation makes unstable wavy surface partially covering transom surface, i.e., the so-called 'wetted transom'. Transom wave formation is usually affecting the resistance characteristics of a ship, since the pressure contribution on transom surface as well as the wave-making resistance is changed. Flow modeling for 'wetted transom' is difficult, while the 'dry transom modeling' is often applied for the high-speed vessels. In the present study CFD results from the RANS equation solver using a finite volume method with level-set treatment are utilized to assess the topology of transom flow pattern for a destroyer model (DTMB5415) and a container ship (KCS). It is found that transom flow patterns are quite different for the two ships, in conformity to the shape of submerged transom. Furthermore, the existence of free surface seems to after the flow topology in case of KCS.

키워드

참고문헌

  1. 김우전, 김도현, 반석호, 2000, '유한체적법을 이용한 상선주위의 난류유통 계산에 관한 연구,' 대한조선학회 논문집, 제 37 권, 제 4 호, pp.19-30
  2. 박일룡, 김진, 반석호, 2004, 'Level-Set 법을 이용한 일반상선의 저항성능 해석,' 대한조선학회 논문집, 제 41 권, 제 2 호, pp. 63-73
  3. W.J., Van, S.H. and Kim, D.H., 2001, 'Measurement of flows around modern commercial ship models,' EXperiments in Fluids, Vol. 31, No. 5, pp. 567-578 https://doi.org/10.1007/s003480100332
  4. Kim, W.J., Kim, D.H. and Van, S.H., 2002, 'Computational study on turbulent flows around modern tanker hull forms,' Int. J. Numerical Methods in Fluids, Vol. 38. No. 4, pp. 377-406 https://doi.org/10.1002/fld.230
  5. Launder, B.E. and Spalding, D.B., 1974, 'The Numerical Computation of Turbulent Flows,' Compo Meth. Appl. Mech. Eng., Vol. 3, pp. 269-289 https://doi.org/10.1016/0045-7825(74)90029-2
  6. Olivieri, A., Pistani, F., Avanzini, G., Stern, F. and Penna, R., 2001, Tank experiments of resistance. sinkage and trim, boundary layer, wake and free surface flow around a naval combatant INSEAN 2340 Model, IIHR Report, No. 421
  7. Tobak, M. and Peake, S.J., 1982, 'Topology of three-dimensional separated flows,' Ann. Rev. Fluid Mech., Vol. 14, pp. 61-85 https://doi.org/10.1146/annurev.fl.14.010182.000425
  8. Wang, K.C., 1982, 'New developments about open separation,' AE&EM TR-82-02
  9. White, F.M., 1974, Viscous fluid flow, McGrow Hill
  10. Yamano, T., Ikebuchi, T. and Funeno, I., 2000, 'On forward-oriented wave breaking just behind a transom stern,' J. SNAJ, Vol. 187, pp. 25-32

피인용 문헌

  1. Unsteady RANS Analysis of the Hydrodynamic Response for a Ship with Forward Speed in Regular Wave vol.45, pp.1, 2008, https://doi.org/10.3744/SNAK.2008.45.1.29