期刊文献+

FEM modeling for 3D dynamic analysis of deep-ocean mining pipeline and its experimental verification 被引量:5

FEM modeling for 3D dynamic analysis of deep-ocean mining pipeline and its experimental verification
下载PDF
导出
摘要 3D dynamic analysis models of 1000 m deep-ocean mining pipeline, including steel lift pipe, pump, buffer and flexible hose, were established by finite element method (FEM). The coupling effect of steel lift pipe and flexible hose, and main external loads of pipeline were considered in the models, such as gravity, buoyancy, hydrodynamic forces, internal and external fluid pressures, concentrated suspension buoyancy on the flexible hose, torsional moment and axial force induced by pump working. Some relevant FEM models and solution techniques were developed, according to various 3D transient behaviors of integrated deep-ocean mining pipeline, including towing motions of track-keeping operation and launch process of pipeline. Meanwhile, an experimental verification system in towing water tank that had similar characteristics of designed mining pipeline was developed to verify the accuracy of the FEM models and dynamic simulation. The experiment results show that the experimental records and simulation results of stress of pipe are coincided. Based on the further simulations of 1 000 m deep-ocean mining pipeline, the simulation results show that, to form configuration of a saddle shape, the total concentrated suspension buoyancy of flexible hose should be 95%?105% of the gravity of flexible hose in water, the first suspension point occupies 1/3 of the total buoyancy, and the second suspension point occupies 2/3 of the total buoyancy. When towing velocity of mining system is less than 0.5 m/s, the towing track of buffer is coincided with the setting route of ship on the whole and the configuration of flexible hose is also kept well. 3D dynamic analysis models of 1000 m deep-ocean mining pipeline, including steel lift pipe, pump, buffer and flexible hose, were established by finite element method (FEM). The coupling effect of steel lift pipe and flexible hose, and main external loads of pipeline were considered in the models, such as gravity, buoyancy, hydrodynamic forces, internal and external fluid pressures, concentrated suspension buoyancy on the flexible hose, torsional moment and axial force induced by pump working. Some relevant FEM models and solution techniques were developed, according to various 3D transient behaviors of integrated deep-ocean mining pipeline, including towing motions of track-keeping operation and launch process of pipeline. Meanwhile, an experimental verification system in towing water tank that had similar characteristics of designed mining pipeline was developed to verify the accuracy of the FEM models and dynamic simulation. The experiment results show that the experimental records and simulation results of stress of pipe are coincided. Based on the further simulations of 1 000 m deep-ocean mining pipeline, the simulation results show that, to form configuration of a saddle shape, the total concentrated suspension buoyancy of flexible hose should be 95%-105% of the gravity of flexible hose in water, the first suspension point occupies 1/3 of the total buoyancy, and the second suspension point occupies 2/3 of the total buoyancy. When towing velocity of mining system is less than 0.5 m/s, the towing track of buffer is coincided with the setting route of ship on the whole and the configuration of flexible hose is also kept well.
出处 《Journal of Central South University of Technology》 EI 2007年第6期808-813,共6页 中南工业大学学报(英文版)
基金 Project(DY105-3-2-2) supported by China Ocean Mineral Resources Research and Development Association(COMRA) Project(50675226) supported by the National Natural Science Foundation of China
关键词 deep-ocean mining pipeline modeling dynamic analysis finite element method 深海采矿 管道模型 动态分析 有限元分析
  • 相关文献

参考文献12

  • 1简曲,何永森,王明和,李宝元,纪峥.大洋采矿输送软管动力特性的数值研究[J].海洋工程,2001,19(1):59-64. 被引量:14
  • 2郭小刚,张立人,金星,肖曙曦.深海采矿流-固耦合软管系统的非线性动力学模型[J].工程力学,2000,17(3):93-104. 被引量:11
  • 3BATH A R.Deep sea mining technology: Recent developments and future projects[].Offshore Technology Conference st Paper No OTC.1989
  • 4CHUNG J S.Deep-ocean mining issues and ocean mining working group[].Proceedings of the rd Ocean Mining Symposium.1999
  • 5LIU Shao-jun,WANG Gang,LI Li.Virtual reality research of ocean poly-metallic nodule mining based on COMRA’s mining system[].Proceedings of the th Ocean Mining Symposium.2003
  • 6CHUNG J S.Deep-ocean mining technology: Learning curve I[].Proceedings of the th Ocean Mining Symposium.2003
  • 7CHUNG J S.Track-keeping control of seafloor miner by successive learning of unknown velocity and soil properties[].Proceedings of the rd Ocean Mining Symposium.1999
  • 8BRINK A W,CHUNG J S.Automatic position control of a 300 000 tons ship during ocean mining operations[].Offshore Technology Conference Paper No OTC.1981
  • 9FELIPPA C A,,CHUNG J S.Nonlinear static analysis of deep ocean mining pipe-PartⅠ: Modeling and formulation[].Journal of Energy Resources Technology.1981
  • 10CHUNG J S,FELIPPA C A.Nonlinear static analysis of deep ocean mining pipe - PartⅡ: Numerical studies[].Journal of Energy Resources Technology.1981

二级参考文献14

  • 1吕和祥,朱菊芬,马莉颖.大转动梁的几何非线性分析讨论[J].计算结构力学及其应用,1995,12(4):485-490. 被引量:35
  • 2简曲,成湘洲.大洋多金属结核资源开发的回顾与展望[J].中国矿业,1996,5(6):14-18. 被引量:11
  • 3S铁摩辛柯 J盖尔.材料力学[M].科学出版社,1978..
  • 4朗道 EM栗弗席兹.连续介质力学[M].人民教育出版社,1978..
  • 5李为镜 马文华.杆件结构计算原理及应用程序[M].上海科学技术出版社,1982..
  • 6王肇民,高耸结构振动控制,1997年
  • 7沈世钊,悬索结构设计,1997年
  • 8肖业伦,飞行器运动方程,1987年
  • 9李为镜,杆件结构计算原理及应用程序,1982年
  • 10朱照宣,理论力学,1982年

共引文献21

同被引文献43

引证文献5

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部