纸质出版:2018
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[1]张小玲,刘建秀,杜修力,许成顺.风浪流共同作用下海上风电基础与海床的动力响应分析[J].防灾减灾工程学报,2018,38(04):658-668.
张小玲, 刘建秀, 杜修力, et al. Dynamic Response Analysis of Offshore Wind Power Foundation and Seabed under the Combined Wind,Wave and Current Loadings[J]. 2018, 38(4): 658-668.
[1]张小玲,刘建秀,杜修力,许成顺.风浪流共同作用下海上风电基础与海床的动力响应分析[J].防灾减灾工程学报,2018,38(04):658-668. DOI: 10.13409/j.cnki.jdpme.2018.04.009.
张小玲, 刘建秀, 杜修力, et al. Dynamic Response Analysis of Offshore Wind Power Foundation and Seabed under the Combined Wind,Wave and Current Loadings[J]. 2018, 38(4): 658-668. DOI: 10.13409/j.cnki.jdpme.2018.04.009.
我国近海风资源丰富
但由于海洋环境条件的复杂性
开发利用近海风资源的规模和效益受到很大的制约;而风、波浪和海流等作为近海主要环境荷载对近海风机的正常运行起到决定性作用。采用谐波叠加法模拟得到近海风电场的风荷载时程
利用Morison方程和非线性波浪理论推导了波浪荷载和波流荷载的计算公式
最后根据Turkstra准则将风浪流荷载进行叠加组合
建立风浪流荷载共同作用下海上风电基础与海床动力相互作用的三维有限元计算模型。基于此模型
针对不同荷载组合条件下风机塔筒的水平位移、竖向应力以及基础的水平位移、桩身弯矩、桩身剪力等进行了动力分析
同时对风浪流荷载共同作用下桩基础周围海床的超孔隙水压力响应进行了计算分析
讨论了不同的荷载参数对海床超孔隙水压力的影响。结果表明:风荷载对风机塔筒顶端水平位移、塔底应力影响较大
波流荷载对风机基础顶端水平位移、桩身弯矩、桩身剪力影响较大
而波浪荷载则对海床孔隙水压力影响较大。可取最大风荷载和最大波流荷载叠加波浪荷载时程的组合为最不利组合方式。
Wind resources are rich in offshore areas of China
but the scale and efficiency of developing and utilizing offshore wind resources are greatly restricted due to the complex conditions of marine environment conditions. As the main environmental loads
wind
wave
and current play a decisive role in the normal operation of offshore wind turbines. In this paper
the time history of an offshore wind farm is simulated by using the harmonic superposition method
and the formula for calculating wave and current loadings are derived based on the nonlinear wave theory and the Morison equation. Then
the wind
wave
and current loadings are combined according to the Turkstra criterion. Based on the above theories
a three-dimensional finite element model for dynamic interaction of offshore wind power foundation and seabed is established under the combined wind
wave and current loadings. Based on this model
the dynamic horizontal displacement
the vertical stress of wind turbines tower
and the horizontal displacement
bending moment and shear force of the foundation are analyzed under different loading combinations. Moreover
the excess pore pressure response of seabed around the pile foundation is examined under the combined action of wind
wave
and current loadings. Finally
the influence of different load parameters on the excess pore water pressure of seabed is discussed. It can be concluded from the computation results that the wind loading has a great influence on the horizontal displacement at the tower top and the stress at the tower bottom; the wave and current loadings greatly affect the horizontal displacement of the foundation
and the bending moment and shearing force of the pile; and the wave loading is the most important factor affecting the pore water pressure of the seabed. The most unfavorable loading combination is the combination of the maximum wind loading and the maximum wave and current loadings with wave loading time history in this computation.
循环荷载下复合筒型基础地基孔隙水压力变化及液化分析 [J]. 于通顺,王海军. 岩土力学 . 2014(03)
结构的脉动风荷载模拟方法探讨 [J]. 邓文旭. 安徽建筑 . 2007(04)
Numerical Simulation of Seabed Response and Liquefaction due to Nonlinear Waves [J]. 张金凤,张庆河,韩涛,秦崇仁. China Ocean Engineering . 2005(03)
波浪和水流对孤立桩柱共同作用力的计算 [J]. 任佐皋. 海洋学报(中文版) . 1983(03)
近海风机地基土力学响应基本规律的试验研究及数值分析 [D]. 刘超. 清华大学 2014
随机波浪荷载作用下钢管桩—土的动力响应研究 [D]. 董会然. 燕山大学 2014
波流作用下钢管桩的动力响应研究 [D]. 王聪. 大连理工大学 2014
单桩式海上风力机耦合模型建模方法研究 [D]. 王明超. 上海交通大学 2014
单桩基础风机耦合动力响应研究 [D]. 张二虎. 上海交通大学 2012
波浪作用下的三维海床响应及液化分析 [D]. 陈海锋. 天津大学 2009
海上风电机组地基基础设计理论与工程应用[M]. 中国建筑工业出版社 , 王伟, 2013
海洋工程波浪力学[M]. 中国海洋大学出版社 , 王树青, 2013
工程荷载组合理论与应用[M]. 机械工业出版社 , 金伟良编著, 2006
Consolidation of unsaturated seabed around an inserted pile foundation and its effects on the wave-induced momentary liquefaction [J] . Titi Sui,Jinhai Zheng,Chi Zhang,Dong-Sheng Jeng,Jisheng Zhang,Yakun Guo,Rui He. Ocean Engineering . 2017
Coupled hydrodynamic and geotechnical analysis of jacket offshore wind turbine [J] . K.A. Abhinav,Nilanjan Saha. Soil Dynamics and Earthquake Engineering . 2015
Numerical study for wave-induced seabed response around offshore wind turbine foundation in Donghai offshore wind farm, Shanghai, China [J] . Kun-Tan Chang,Dong-Sheng Jeng. Ocean Engineering . 2014
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