海上风电打桩系统动力学建模与冲击动力特性分析

潘怡, 冯小星, 曹春潼, 梅卫东, 严岩, 孙蓓蓓

太阳能学报 ›› 2024, Vol. 45 ›› Issue (4) : 151-158.

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太阳能学报 ›› 2024, Vol. 45 ›› Issue (4) : 151-158. DOI: 10.19912/j.0254-0096.tynxb.2022-1907

海上风电打桩系统动力学建模与冲击动力特性分析

  • 潘怡1, 冯小星2, 曹春潼2, 梅卫东2, 严岩1, 孙蓓蓓1
作者信息 +

DYNAMIC MODELING AND IMPACT DYNAMIC CHARACTERISTIC ANALYSIS OF OFFSHORE WIND POWER PILE DRIVING SYSTEM

  • Pan Yi1, Feng Xiaoxing2, Cao Chuntong2, Mei Weidong2, Yan Yan1, Sun Beibei1
Author information +
文章历史 +

摘要

基于LS-DYNA建立3500 kJ海上风电打桩系统拒桩工况下的有限元模型,基于应力波原理分析打桩系统内部能量的传递和各部件的动力学响应。同时基于牛顿碰撞理论建立打桩系统的集中参数模型,该模型综合考虑各部件的质量和刚度,和有限元模型的分析结果较吻合。从而在该集中参数模型的基础上,分别分析替打刚度、替打和锤质量比、替打环刚度对打桩系统冲击力的影响规律,表明冲击力的主要影响参数为替打刚度。

Abstract

A finite element model of 3500 kJ offshore wind power pile driving system under the condition of pile rejection is established based on LS-DYNA. The internal energy transfer and the dynamic response of each component of the pile driving system is analyzed based on the stress wave principle. The lumped parameter model is established based on Newton collision theory. The model considers the mass and stiffness of each component, which is in good agreement with the analysis results of the finite element model. Based on the lumped parameter model, the influence of the stiffness of cap, the mass ratio of cap and hammer, the stiffness of ring on the impact force is analyzed. It can be found that the main parameter that affects impact force is the stiffness of cap.

关键词

海上风电 / 打桩 / 动力学响应 / 集中参数模型 / 替打

Key words

offshore wind power / pile driving / dynamic response / lumped parameter model / cap

引用本文

导出引用
潘怡, 冯小星, 曹春潼, 梅卫东, 严岩, 孙蓓蓓. 海上风电打桩系统动力学建模与冲击动力特性分析[J]. 太阳能学报. 2024, 45(4): 151-158 https://doi.org/10.19912/j.0254-0096.tynxb.2022-1907
Pan Yi, Feng Xiaoxing, Cao Chuntong, Mei Weidong, Yan Yan, Sun Beibei. DYNAMIC MODELING AND IMPACT DYNAMIC CHARACTERISTIC ANALYSIS OF OFFSHORE WIND POWER PILE DRIVING SYSTEM[J]. Acta Energiae Solaris Sinica. 2024, 45(4): 151-158 https://doi.org/10.19912/j.0254-0096.tynxb.2022-1907
中图分类号: TK83   

参考文献

[1] 王仲颖. 中国风电发展路线图2050[R]. 北京: 国家发展与改革委员会能源研究所, 2014.
WANG Z Y.China's wind power development roadmap 2050[R]. Beijing: Energy Research of National Development and Reform Commission, 2014.
[2] 孙小钎, 曹淑刚, 陈强, 等. 大直径植入式单桩在海上风电中的创新型应用[J]. 太阳能学报, 2020, 41(8): 295-303.
SUN X Q, CAO S G, CHEN Q, et al.Innovative application of large diameter implanted monopile foundation in offshore wind power[J]. Acta energiae solaris sinica, 2020, 41(8): 295-303.
[3] 杜大华, 贺尔铭, 薛杰, 等. 大推力液体火箭发动机启动冲击响应特性研究[J]. 西北工业大学学报, 2016, 34(6): 982-989.
DU D H, HE E M, XUE J, et al.Research on start-up impact response characteristics of large thrust liquid rocket engine[J]. Journal of Northwestern Polytechnical University, 2016, 34(6): 982-989.
[4] 马肖彤, 王秀丽. 冲击荷载作用下单层网壳结构动力稳定性研究[J]. 振动与冲击, 2015, 34(2): 119-124, 133.
MA X T, WANG X L.Dynamic stability of single-layer reticulated shell structures subjected to impact loads[J]. Journal of vibration and shock, 2015, 34(2): 119-124, 133.
[5] DUAN Y C, ZHANG D G, HONG J Z.Partition method for impact dynamics of flexible multibody systems based on contact constraint[J]. Applied mathematics and mechanics, 2013, 34(11): 1393-1404.
[6] DUAN Y C, ZHANG D G, HONG J Z.Global impact dynamic modeling and verification of a flexible beam with large overall motion[J]. Advances in mechanical engineering, 2013, 5: 362317.
[7] SONG Y Y, CHANG B Y, JIN G G, et al.An approach for the impact dynamic modeling and simulation of planar constrained metamorphic mechanism[J]. Shock and vibration, 2020, 2020: 8837838.
[8] 丁问司, 田丽, 刘坤. 液压冲击锤瞬态冲击动力特性分析[J]. 华南理工大学学报(自然科学版), 2016, 44(11): 63-70.
DING W S, TIAN L, LIU K.Analysis of dynamic characteristic of transient impact from hydraulic hammer[J]. Journal of South China University of Technology (natural science edition), 2016, 44(11): 63-70.
[9] 孙远韬, 骆礼福, 秦仙蓉, 等. 海洋液压冲击打桩锤机-液系统联合仿真分析[J]. 中国工程机械学报, 2019, 17(4): 329-334.
SUN Y T, LUO L F, QIN X R, et al.Co-simulation analysis of hydro-mechanical system for hydraulic impact piling hammer in offshore engineering[J]. Chinese journal of construction machinery, 2019, 17(4): 329-334.
[10] HOMAYOUN ROOZ A F, HAMIDI A. A numerical model for continuous impact pile driving using ALE adaptive mesh method[J]. Soil dynamics and earthquake engineering, 2019, 118: 134-143.
[11] 邓灵敏. 基于LS-DYNA的动力沉桩全过程分析[D]. 武汉: 武汉理工大学, 2013.
DENG L M.Dynamic pile sinking process analysis based on the LS-DYNA[D]. Wuhan: Wuhan University of Technology, 2013.
[12] 秦仙蓉, 沈健花, 赵坤, 等. 某型海洋打桩锤沉桩过程动力学响应仿真[J]. 机械科学与技术, 2016, 35(3): 329-333.
QIN X R, SHEN J H, ZHAO K, et al.Simulation of dynamic responses in pile-driving process of a marine pile hammer[J]. Mechanical science and technology for aerospace engineering, 2016, 35(3): 329-333.
[13] 胡均平, 刘武波, 刘成沛. 液压锤打桩动态过程有限元分析[J]. 振动与冲击, 2012, 31(16): 128-133.
HU J P, LIU W B, LIU C P.FEM analysis of dynamic process of piling using hydraulic hammer[J]. Journal of vibration and shock, 2012, 31(16): 128-133.
[14] 唐友名, 黄红武, 曹立波. 反求侧面碰撞集中参数模型动力学结构特性[J]. 中国机械工程, 2012, 23(18): 2252-2257.
TANG Y M, HUANG H W, CAO L B.Reverse dynamics structure factors for lumped-parameter model in vehicle front-to-side impact[J]. China mechanical engineering, 2012, 23(18): 2252-2257.
[15] PAHLAVANI M, MARZBANRAD J.Crashworthiness study of a full vehicle-lumped model using parameters optimisation[J]. International journal of crashworthiness, 2015, 20(6): 573-591.
[16] NEUBERT V H, RANGAIAH V P.A note on the lumped parameter beam models based on mechanical impedance[J]. Journal of sound and vibration, 1979, 64(3): 379-385.
[17] GUPTA R B.On optimum hammers and anvils[J]. Journal of sound and vibration, 1982, 80(2): 223-231.
[18] ALWALAN M F, EL NAGGAR M H. Analytical models of impact force-time response generated from high strain dynamic load test on driven and helical piles[J]. Computers and geotechnics, 2020, 128: 103834.
[19] TAKE W A, VALSANGKAR A J, RANDOLPH M F.Analytical solution for pile hammer impact[J]. Computers and geotechnics, 1999, 25(2): 57-74.
[20] 朱合华, 谢永健, 王怀忠. 打桩锤击解析模型及垫层材料参数的优化[J]. 同济大学学报(自然科学版), 2004, 32(7): 841-845.
ZHU H H, XIE Y J, WANG H Z.Analytical solution for pile hammer impact and application of optimum design technique for determining cushion parameters[J]. Journal of Tongji University, 2004, 32(7): 841-845.
[21] 谢永健, 朱合华, 王怀忠, 等. 打桩锤击模型的解析算法[J]. 岩石力学与工程学报, 2005, 24(1): 171-176.
XIE Y J, ZHU H H, WANG H Z, et al.Analytical solution for model of pile hammer impact[J]. Chinese journal of rock mechanics and engineering, 2005, 24(1): 171-176.
[22] 王涛. 液压桩锤冲击机构的瞬态动力特性及冲击性能研究[D]. 长沙: 中南大学, 2010.
WANG T.Study on transient dynamic characteristics and impact performance of hydraulic pile hammer impact mechanism[D]. Changsha: Central South University, 2010.
[23] 胡均平, 吴自龙, 李科军. 组合桩锤锤击模型的数值分析[J]. 振动与冲击, 2014, 33(17): 111-115.
HU J P, WU Z L, LI K J.Numerical analysis for impact model of a combined pile-hammer[J]. Journal of vibration and shock, 2014, 33(17): 111-115.
[24] 朱振东. 冲击式液压桩锤的工作过程研究与结构分析[D]. 沈阳: 沈阳工业大学, 2011.
ZHU Z D.Study on working process of hydraulic impacting piling hammer and structure analysis[D]. Shenyang: Shenyang University of Technology, 2011.

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