DOI QR코드

DOI QR Code

A Study on Estimation of Allowable Wave Height for Loading and Unloading of the Ship Considering Ship Motion

계류선박의 동요량을 고려한 하역한계파고 산정 방법에 관한 연구

  • 곽문수 (명지전문대학교 토목공학과) ;
  • 문용호 (대영엔지니어링 부설연구소)
  • Received : 2014.01.27
  • Accepted : 2014.03.15
  • Published : 2014.06.01

Abstract

This study proposed an estimation method of allowable wave height for loading and unloading of the ship considering ship motion that is affected by ship sizes, mooring conditions, wave periods and directions. The method was examined validity by comparison with wave field data at pier $8^{th}$ in Pohang new harbor. The wave field data obtained with wave height of 0.10~0.75m and wave period of 7~13s in ship sizes of 800~35,000ton when a downtimes have occurred. On the other hand, the results of allowable wave height for loading and unloading of the ship in this method have obtained with wave heights of 0.19~0.50m and wave periods of 8~12s for ship sizes of 5,000, 10,000 and 30,000ton. Thus this method well reproduced the field data respond to various a ship sizes and wave periods. And the results of this method tended to decrease in 16~62% when have considered long wave, and it is decreased in 0~46% when didn't consider long wave than design standards in case of the ship sizes of 5,000~30,000ton, wave period of 12s and wave angle of $75^{\circ}C$. The allowable wave heights for loading and unloading of the ship proposed by design standards are didn't respond to various the ship sizes and wave periods, and we have found that the design standards has overestimated on smaller than 10,000ton.

본 연구는 선박의 크기, 계류상태, 파랑의 주기, 파향 등의 영향을 반영하여 계류선박의 동요량을 계산하고, 그 결과를 이용하여 선석 전면에서 하역한계파고를 산정하는 방법을 제시한 것이다. 여기서는 포항신항의 제 8부두에 본 방법을 적용하고 하역중단시 현지 파랑 관측자료와 비교하여 그 타당성을 검증하였다. 하역중단시 현지 선박의 크기는 800~35,000ton이었으며, 이 때 관측된 파랑은 파고 0.10~0.75m, 주기 7~13s이었다. 본 방법에 의한 하역한계파고는 5,000ton, 10,000ton, 30,000ton 선박에 대하여 파고 0.19~0.50m, 주기 8~12s로 계산되었으며, 본 방법은 파랑의 주기 변화 및 선박의 크기에 대응하여 하역중단시 현지 파랑 관측 결과를 잘 재현하였다. 한편 본 방법에 의한 하역한계파고는 선형 5,000~30,000ton, 주기 12s, 선박에 입사하는 파랑의 각도가 $75^{\circ}C$일 때, 설계기준의 하역한계파고에 비해서 장 단주기 파를 고려하면 16~62%, 단주기 파랑만 고려하면 0~46% 감소하였다. 또한 설계기준에 제시된 하역한계파고는 주기 변화 및 선형에 따라 대응하지 못하며, 10,000ton 이하의 선박에 대해서는 과대 평가되어 있음을 확인하였다.

Keywords

References

  1. Ann, S. P. (1986). Analysis of moored ship motion using three dimensional source distribution method, Master's Thesis, Seoul National University, Seoul Korea (in Korean).
  2. Ann, S. P. and Rhee, K. P. (1987). "The hydrodynamic interaction effects between two barges on the motion responses." Journal of the Society of Naval Architects of Korea, Vol. 24, No. 1, pp. 29-34 (in Korean).
  3. Bruun, P. (1981). Port engineering, 3rd Edition, Gulf Pub.
  4. Cho, I. H. and Choi, H. S. (1992). "Wave responses and ship motions in a harbor excited by long waves (I)." Transactions of the Society of Naval Architects of Korea, Vol. 29, No. 2, pp. 38-47.
  5. Cho, I. H. and Choi, H. S. (1993). "Wave responses and ship motions in a harbor excited by long waves (II)." Transactions of the Society of Naval Architects of Korea, Vol. 30, No. 1, pp. 87-93.
  6. Cho, I. S., Kong, K. Y. and Lee, Y. S. (2006). "A time domain analysis of moored ship motions considering tsunami resonant effects." Proceedings of the Spring Conference on Korean Institute of Navigation and Port Research, Korean Institute of Navigation and Port Research, Vol. 30, No. 1, pp. 191-197 (in Korean).
  7. Demirbilek, Z. and Panchang, V. (1998). CGWAVE : A Coastal Surface Water Wave Model of the Mild Slope Equation, Technical Report CHL-98-xx, U.S. Army Corps of Engineers, pp. 6-11.
  8. Jeong, W. M., Ryu, K. H., Beak, W. D. and Choi, H. J. (2011). "Downtime analysis for pohang new harbor through long-term investigation of waves and winds." Journal of Korean Society of Coastal and Ocean Engineers, Vol. 23, No. 3, pp. 226-235 (in Korean). https://doi.org/10.9765/KSCOE.2011.23.3.226
  9. Kubo, M., Saitou, K. and Sakakibara, S. (1988). "Application of a strip method to the hull motion of a quay-front moored vessels." Proceedings of the 35th Japanese Conference on Coastal Engineering, Japan Society of Civil Engineers, Vol. 35, pp. 682-686 (in Japanese).
  10. Kubo, M., Saito, K. and Oki, T. (1993). "Approximate calculation of ship motions under the prevention system of ship separation from quay wall." Journal of Japan Institute of Navigation, Vol. 89, pp. 15-21 (in Japanese). https://doi.org/10.9749/jin.89.15
  11. Kubo, M. and Sakakibara, S. (1995). "Effects of long period waves caused by wave groups and harbor oscillation in computation of wharf operation efficiency." Proceedings of Coastal Engineering, Japan Society of Civil Engineers, Vol. 42, pp. 931-935 (in Japanese).
  12. Kwak, M., Chung, J., Ann, S. and Pyun, C. (2006). "Estimation of harbor operating ratio based on moored ship motion." Journal of The Korean Society of Civil Engineers, Vol. 26, No. 6B, pp. 651-660 (in Korean).
  13. Kwak, M. S., Moon, Y. H. and Pyun, C. K. (2013). "A study on analysis of moored ship motion considering harbor resonance." Journal of the Korean Society of Civil Engineers, Vol. 33, No. 2, pp. 595-608 (in Korean). https://doi.org/10.12652/Ksce.2013.33.2.595
  14. Mollen, W., Ligteringen, H., Lem, J. C. vander, Waal, J. C. M. de (2003). "Behavior of a moored LNG ship in swell waves." Journal of Waterway, Port, Coastal, and Ocean Engineering, ASCE, Vol. 129, No. 1, pp. 15-21. https://doi.org/10.1061/(ASCE)0733-950X(2003)129:1(15)
  15. Pohang Regional Maritime Affairs and Port Office (2010). Field investigation report for swell analysis and improvement measure making of downtime in Pohang new harbor, Report of Pohang Regional Maritime Affairs and Port Office (in Korean).
  16. Rafael, G., Eduardo, G., Fernando, P. (1998). "Utilization of moored vessels in hydraulic models of harbors." Coastal Engineering, ASCE, pp. 2979-2990.
  17. Sakakibara, S., Saitou, K. and Kubo, M. (2001). "A study on long-period ship motions in a harbor induced by a resonant large roll motion under long-period waves." Proceedings of ISOPE, The International Society of Offshore and Polar Engineers, Stavanger Norway, pp. 326-333.
  18. Ueda, S. and Shiraisi, S. (1988). The allowable ship motions for cargo handling at wharves, Technical Report of Port and Harbour Research Institute, Japan, Vol. 27, No. 4, pp. 3-61 (in Japanese).
  19. Ueda, S., Shiraisi, S., Oshima, H. and Asano, K. (1994). "Proposal of allowable wave height and wharf operation efficiency based on the oscillations of ships moored to quay walls." Proceedings of Coastal Engineering, Japan Society of Civil Engineers, Vol. 41, pp. 916-920 (in Japanese).
  20. Yeun, A. F., Burke, M. G. and Leung, T. C. (1986). "Ship motion study for the 2010 and 2020 plan in the san pedro bay california." Coastal Engineering, ASCE, pp. 2742-2755.

Cited by

  1. A Study to Improve the Operation Criteria by Size of Ship in Ulsan Tank Terminal vol.22, pp.6, 2016, https://doi.org/10.7837/kosomes.2016.22.6.639
  2. A Study on the Proper Crown Height of GT 100,000Ton Cruise ship and DWT 100,000Ton Container ship vol.24, pp.2, 2018, https://doi.org/10.7837/kosomes.2018.24.2.157