DOI QR코드

DOI QR Code

Planar Motion Mechanism Test of the Mobile Harbor Running in Design Speed in Circulating Water Channel

  • Yoon, Hyeon-Kyu (Dept. of Naval Archtecture & Marine Engineering, Changwon National University) ;
  • Kang, Joo-Nyun (Dept. of Naval Archtecture & Marine Engineering, University of Strathclyde)
  • Received : 2010.07.06
  • Accepted : 2010.09.06
  • Published : 2010.09.30

Abstract

Mobile Harbor (MH) is a new transportation platform that can load and unload containers onto and from very large container ships at sea. It could navigate near harbors where several vessels run, or it could navigate through very narrow channels. In the conceptual design phase when the candidate design changes frequently according to the various performance requirements, it is very expensive and time-consuming to carry out model tests using a large model in a large towing tank and a free-running model test in a large maneuvering basin. In this paper, a new Planar Motion Mechanism(PMM) test in a Circulating Water Channel (CWC) was conducted in order to determine the hydrodynamic coefficients of the MH. To do this, PMM devices including three-component load cells and inertia tare device were designed and manufactured, and various tests of the MH such as static drift test, pure sway test, pure yaw test, and drift-and-yaw combined test were carried out. Using those coefficients, course-keeping stability was analyzed. In addition, the PMM tests results carried out for the same KCS (KRISO container ship) were compared with our results in order to confirm the test validity.

Keywords

References

  1. Abkowitz M.A. (1969a), "Stability and Motion Control of Ocean Vehicles", the MIT Press, pp. 32-50, 87-95.
  2. Abkowitz M.A.(1969b), "Stability and Control of Ocean Vehicles", MIT Press, pp. I-105-I-113
  3. Fossen T.I. (1994), "Guidance and Control of Ocean Vehicles", John Wiley & Sons, pp. 6-30.
  4. Kim S.Y. (2004), "Development of Technology on the Maneuverability and Safety for an Advanced Ship (II), The 2nd-term Report"UCN00370-2433, Korea Research Institute of Ships and Ocean Engineering, Korea Ocean Research Development Institute.
  5. Kim Y.G., Yeo D.J., Yun K.H., Oh B.I. (2009), "Prediction of Maneuverability of KCS by CPMC Captive Model Test", The Society of Naval Architects of Korea, Vol.46, No.6, pp. 553-561. https://doi.org/10.3744/SNAK.2009.46.6.553
  6. Kobayashi E., Kagemoto H., Furukawa Y.(1995), "Mathematical Models of Manoeuvring Motions, Chapter 2 of Research on Ship Manoeuvrability and Its Application to Ship Design", the 12th Marine Dynamic Symposium, the Society of Naval Architects of Japan, pp. 23-90.
  7. Lewis E.V. (1989), "Principles of Naval Architecture – 2nd Ed., Volume III – Motions in Waves and Controllability", The Society of Naval Architects and Marine Engineers, pp. 234-251.
  8. Sewon Engineering Co.(2009), "User’s Manual for Circulating Water Channel (MODEL : HD-CWC600)".

Cited by

  1. Estimation of the hydrodynamic derivatives by RaNS simulation of planar motion mechanism test vol.108, 2015, https://doi.org/10.1016/j.oceaneng.2015.08.010