基于底质力时历计算的沉船打捞离底过程动力特性分析及系泊系统优化
收稿日期: 2023-05-14
修回日期: 2023-06-14
录用日期: 2023-07-18
网络出版日期: 2023-11-10
基金资助
上海市科技创新行动计划(21DZ1201106)
Dynamic Characteristics Analysis and Mooring System Optimization of Wreck Salvage in Off-Bottom Stage Based on Seabed Resistance Force Time History
Received date: 2023-05-14
Revised date: 2023-06-14
Accepted date: 2023-07-18
Online published: 2023-11-10
辛尚哲, 王磊, 范锦宇, 周东荣, 陈世海, 朱小东 . 基于底质力时历计算的沉船打捞离底过程动力特性分析及系泊系统优化[J]. 上海交通大学学报, 2023 , 57(S1) : 1 -12 . DOI: 10.16183/j.cnki.jsjtu.2023.S1.16
In this paper, a method for analyzing the dynamic characteristics of the sunken ship salvage system based on the accurate time history of the seabed resistance force is proposed. The simulation of a typical case preliminarily clarifies the complex interaction mode between the mother ship (a barge), the mooring line, and the lifting line in the lifting stage. It is found that the motion of the mother ship, especially the surge motion, has significantly increased in this stage. In order to better control the motion of the mother ship in the salvage process, the mooring arrangement of the salvage system is also optimized in this paper, and the mooring line arrangement configuration with better motion control effect is obtained.
[1] | ROGOWSKA J, WOLSKA L, NAMIE?NIK J. Impacts of pollution derived from ship wrecks on the marine environment on the basis of s/s “Stuttgart” (Polish Coast, Europe)[J]. Science of The Total Environment, 2010, 408(23): 5775-5783. |
[2] | VELAYUDHAN A K D. Design of a supervisory fuzzy logic controller for monitoring the inflow and purging of gas through lift bags for a safe and viable salvaging operation[J]. Ocean Engineering, 2019, 171: 193-201. |
[3] | HAHLADAKIS J N, STYLIANOS M, GIDARAKOS E. Assessment of released heavy metals from electrical and electronic equipment (EEE) existing in shipwrecks through laboratory-scale simulation reactor[J]. Journal of Hazardous Materials, 2013(250-251): 256-264. |
[4] | LEE H J. Breakout of partially embedded objects from cohesive seafloor soils[C]\\Offshore Technology Conference. Houston, Texas, USA: Offshore Technology Conference, 1973: II-789-795. |
[5] | BARTHOLOMEW C A, MARSH B, HOOPER R. US navy salvage engineer’s handbook[M]. Washington D.C., USA: Naval Sea Systems Command, 1992. |
[6] | LEE D, JANG B S, KIM H. Development of procedure for structural safety assessment of energy saving device subjected to nonlinear hydrodynamic load[J]. Ocean Engineering, 2016, 116: 165-183. |
[7] | VESIC A S. Breakout resistance of objects embedded in ocean bottom[J]. Journal of the Soil Mechanics and Foundations Division, 1971, 97(9): 1183-1205. |
[8] | NINOMIYA K, TAGAYA K, MURASE Y. A study on suction breaker and scouring of a submersible offshore structure[C]\\Offshore Technology Conference. Houston, Texas,USA: OnePetro, 1971. |
[9] | NINOMIYA K, TAGAYA K, MURASE Y. A study on suction and scouring of sit-on-bottom type offshore structure[C]\\Offshore Technology Conference. Houston, Texas,USA: OnePetro, 1972. |
[10] | NINOMIYA K, TAGAYA K, MURASE Y. A study of suction and scouring of bottom-sitting offshore structures[J]. Journal of Petroleum Technology, 1973, 25(3): 279-287. |
[11] | SMALL J, THORNE C, TA L. Effect of pore pressure dissipation on the behaviour of anchors in clay[C]\\The Eighth International Offshore and Polar Engineering Conference. Montreal, Canada: OnePetro, 1998. |
[12] | CHEN W F, HAN D J. Plasticity for structural engineers[M]. New York, USA: Springer-Verlag, 1988. |
[13] | CUMMINS W E. The impulse response function and ship motions[J]. Schiffstechnik, 1962, 9: 101-109. |
[14] | OGILVIE T F. Recent progress toward the understanding and prediction of ship motions[C]\\5th ONR Symposium on Naval Hydrodynamics. Bergen, Norway: David Taylor Model Basin, 1964. |
[15] | NEWMAN J N. Second-order slowly varying forces on vessels in irregular waves[C]\\Proceedings of the International Symposium on Dynamics of Marine Vehicles and Structures in Waves. London, UK: IMechE, 1974. |
[16] | CAO Q, XIAO L, GUO X, et al. Second-order responses of a conceptual semi-submersible 10 MW wind turbine using full quadratic transfer functions[J]. Renewable Energy, 2020, 153: 653-668. |
[17] | LIANG M, WANG X, XU S, et al. A shallow water mooring system design methodology combining NSGA-II with the vessel-mooring coupled model[J]. Ocean Engineering, 2019, 190: 106417. |
[18] | LOW Y M, LANGLEY R S. Time and frequency domain coupled analysis of deepwater floating production systems[J]. Applied Ocean Research, 2006, 28(6): 371-385. |
[19] | XIONG L, YANG J, ZHAO W. Dynamics of a taut mooring line accounting for the embedded anchor chains[J]. Ocean Engineering, 2016, 121: 403-413. |
/
〈 |
|
〉 |