单层和双层足尺度海底管道抗冲击性能分析

谢丽媛,邵永波,高旭东

振动与冲击 ›› 2021, Vol. 40 ›› Issue (1) : 286-296.

PDF(3744 KB)
PDF(3744 KB)
振动与冲击 ›› 2021, Vol. 40 ›› Issue (1) : 286-296.
论文

单层和双层足尺度海底管道抗冲击性能分析

  • 谢丽媛,邵永波,高旭东
作者信息 +

Anti-impact performance analysis of single-layer and double-layer full scale submarine pipelines

  • XIE Liyuan, SHAO Yongbo, GAO Xudong
Author information +
文章历史 +

摘要

海底管道在服役过程中除了受到常规荷载作用外,还会受到各种意外的冲击载荷作用而失效。为了研究承受横向冲击载荷作用下海底管道的动态特性,对三个单层和一个双层的足尺度管道进行了落锤冲击试验,获得了横向冲击作用下管道的破坏形态、冲击力时程曲线、位移时程曲线及应变时程曲线。建立了分析冲击荷载作用下海底管道失效过程的有限元模型,并通过与试验结果的对比验证了模型的精确性。利用有限元模型研究了冲击高度、材料屈服强度、管道长细比和径厚比等参数对管道抗冲击性能的影响。研究结果表明:海底管道在冲击载荷作用下的破坏模式是局部凹陷处弯曲屈服,由管道的整体弯曲变形与冲击凹痕部位的局部弯曲耦合形成。与单层管道相比,双层管道由于内层管道参与抵抗冲击荷载的作用,从而具有更好的抗冲击性能。管道钢材的屈服强度的增加可有效减小冲击作用下的局部凹陷变形。

Abstract

Besides conventional loads, submarine pipelines may be damaged by various unexpected impact loads. Here, to study dynamic characteristics of submarine pipelines under lateral impact load, drop hammer impact tests were conducted for 3 single-layer and one double-layer full-scale pipelines. Failure mode, impact force time history curve, displacement time history one and strain time history one of pipelines under transverse impact were obtained. A finite element model was established to analyze failure process of submarine pipeline under impact load, and the accuracy of the model was verified through comparing with test results. Effects of impact height, material yield strength, slenderness ratio and diameter to thickness ratio of pipeline on anti-impact performance of pipelineswere studied using the finite element model. Results indicated that the failure mode of submarine pipelines under impact load is bending yield at local dent, it is formed by coupling of whole bending deformation of pipeline and local bending of impact dent; compared with the single-layer pipeline, the double-layer pipeline has better anti-impact performance due toits inner layer pipe participating in anti-impact load; increasing yield strength of pipeline steel material can effectively reduce local sag deformation under impact load.

关键词

海底管道 / 抗冲击性能 / 破坏模式 / 冲击力时程曲线 / 参数分析

Key words

submarine pipelines / anti-impact performance / failure mode / time history curve of impact force / parametric analysis

引用本文

导出引用
谢丽媛,邵永波,高旭东. 单层和双层足尺度海底管道抗冲击性能分析[J]. 振动与冲击, 2021, 40(1): 286-296
XIE Liyuan, SHAO Yongbo, GAO Xudong. Anti-impact performance analysis of single-layer and double-layer full scale submarine pipelines[J]. Journal of Vibration and Shock, 2021, 40(1): 286-296

参考文献

[1] Soares C G, Søreide T H. Plastic analysis of laterally loaded circular tubes[J]. Journal of Structural Engineering, 1983, 109(2): 451–467.
[2] Jones N, Birch R S. Low-velocity impact of pressurised pipelines[J]. International Journal of Impact Engineering, 2009, 37(2): 207-219.
[3] Zeinoddini M, Harding J E, Parke G A R. Axially preloaded steel tubes subjected to lateral impacts (a numerical simulation) [J]. International Journal of Impact Engineering, 2008, 35(11): 1267-1279.
[4] Jones N, Shen W Q. A theoretical study of the lateral impact of fully clamped pipelines[J]. Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering, 1992, 206(2): 129-146.
[5] Zhu L, Liu Q Y, Jones N, Chen M S. Experimental study on the deformation of fully clamped pipes under lateral impact[J]. International Journal of Impact Engineering, 2018, 111: 94-105.
[6] 杨秀娟, 修宗祥, 闫相祯,等. 海底管道受坠物撞击的三维仿真研究[J]. 振动与冲击, 2009, 28(11): 47-50.
YANG Xiu-juan, XIU Zong-xiang, YAN Xiang-zhen, et al. 3D simulation of submarine pipeline impacted by dropped objects[J]. Journal of Vibration and Shock, 2009, 28(11): 47-50.
[7] 杨秀娟,闫涛,修宗祥,等. 海底管道受坠物撞击时的弹塑性有限元分析[J].工程力学,2011, 28(6):189-194.
YANG Xiu-juan, YAN Tao, XIU Zong-xiang, et al. Elastic-plastic finite element analysis of submarine pipeline impacted by dropped objects[J]. Engineering Mechanics, 2011, 28(6): 189-194.
[8] 黄新, 张大长. 圆钢管横向局部抗压承载力特性分析及计算理论[J]. 土木工程与管理学报, 2016, 33(05): 59-63.
HUANG Xin, ZHANG Da-chang. Numerical simulation and calculation theory of local compressive bearing capacity of circular steel tube under lateral load[J]. Journal of Civil Engineering and Management, 2016, 33(5): 59-63.
[9] 骆吉庆, 姚安林, 何莎,等. 浅海输气管道坠物碰撞动力响应分析[J].中国安全科学学报, 2018, 28(06): 103-109.
LUO Ji-qing, YAO Qing-lin, HE Sha, et al. Dynamic response analysis of neritic gas pipeline impacted by dropped objects[J]. China Safety Science Journal, 2018, 28(06): 103-109.
[10] 杨政龙, 余建星, 陈海成,等. 深海管道在冲击载荷作用下的局部屈曲特性研究[J]. 天津大学学报(自然科学与工程技术版), 2019, 52(03): 255-261.
YANG Zheng-long, YU Jian-xing, CHEN Hai-cheng, et al. Local buckling characteristics of deep-sea pipelines under impact loading[J]. Journal of Tianjin University, 2019, 52(03): 255-261.
[11] 李伟, 郭海燕, 李晓秋. 海底悬空管道受坠物撞击凹陷损伤研究[J]. 中国海洋大学学报(自然科学版), 2018, 48(08): 139-144.
LI Wei, GUO Hai-yan, LI Xiao-qiu. Dent damage research of submarine suspended pipeline impacted by dropped objects[J]. Periodical of Ocean University of China, 2018, 48(08): 139-144.
[12] 娄敏, 明海芹. 基于LS-DYNA海底悬空管道受坠物碰撞动力响应分析[J]. 海洋通报, 2015, 34(01): 113-120.
LOU Min, MING Hai-qin. The dynamic response analysis of submarine suspended pipeline impacted by dropped objects based on LS-DYNA[J]. Marine Science Bulletin, 2015, 34(01): 113-120.
[13] 张荣, 支旭东, 范峰, 武启剑. 两端固支圆钢管侧向抗冲击性能试验研究[J].天津大学学报(自然科学与工程技术版), 2016, 49(S1): 28-33.
ZHANG Rong, ZHI Xu-dong, FAN Feng, WU Qi-jian. Experimental study on the lateral impact of fully clamped circular steel tubes[J]. Journal of Tianjin University(Science and Technology), 2016, 49(S1): 28-33.
[14] 白俊磊. 海底管道坠物碰撞损伤数值模拟分析研究[D]. 大连理工大学, 2013.
BAI Jun-lei. The numerical simulation investigation of submarine pipeline’s collision damage impacted by dropped objects[D]. Dalian University of Technology, 2013.
[15] 甘浪雄, 欧阳颖, 张磊, 王振宁. 海底管道受抛锚撞击的数值模拟[J]. 安全与环境学报, 2018, 18(02): 560-566.
GAN Lang-xiong, OU Yang-ying, ZHANG Lei, WANG Zhen-ning. Numerical simulation for the submarine pipelines disturbed by the anchor loading[J]. Journal of Safety and Environment, 2018, 18(02): 560-566.
[16] Wang Y, Qian X D, Richard L J Y, Zhang M H. Experimental behaviour of cement filled pipe-in-pipe composite structures under transverse impact[J]. International Journal of Impact Engineering, 2014(72): 1-16.
[17] 王宇, 钱旭东. 多次侧向冲击下双层钢管混凝土结构的响应分析[J]. 振动与冲击, 2017, 36(02): 1-6.
WANG Yu, QIAN Xu-dong. Behaviour of concrete filled double skin steel tubes under multiple transverse impacts[J]. Journal of Vibration and Shock, 2017, 36(2): 1-6.
[18] 史艳莉, 何佳星, 王文达, 等. 内配圆钢管的圆钢管混凝土构件耐撞性能分析[J]. 振动与冲击, 2019, 38(9): 123-132.
SHI Yan-li, HE Jia-xing, WANG Wen-da, et al. Anti-impact performance analysis for circular CFST members with inner circular steel tube[J]. Journal of Vibration and Shock, 2019, 38(9): 123-132.
[19] Symonds P S. Survey of methods of analysis for plastic deformation of structures under dynamic loading[R]. Brown University, Division of Engineering Report, BU/NSRDC/1-67, 1967.

PDF(3744 KB)

Accesses

Citation

Detail

段落导航
相关文章

/