Effects of Wind-Wave Misalignment on a Wind Turbine Blade Mating Process: Impact Velocities, Blade Root Damages and Structural SafetyAssessment

被引:0
作者
Amrit Shankar Verma
Zhiyu Jiang
Zhengru Ren
Zhen Gao
Nils Petter Vedvik
机构
[1] Norwegian University of Science and Technology (NTNU),Department of Marine Technology
[2] NTNU,Centre for Marine Operations in Virtual Environments (SFI MOVE)
[3] Delft University of Technology (TU Delft),Faculty of Aerospace Engineering
[4] University of Agder,Department of Engineering Sciences
[5] NTNU,Department of Mechanical and Industrial Engineering
来源
Journal of Marine Science and Application | 2020年 / 19卷
关键词
Wind turbine blade; Wind-wave misalignment; Monopile; Marine operation; Finite element analysis; T-bolt connections;
D O I
暂无
中图分类号
学科分类号
摘要
Most wind turbine blades are assembled piece-by-piece onto the hub of a monopile-type offshore wind turbine using jack-up crane vessels. Despite the stable foundation of the lifting cranes, the mating process exhibits substantial relative responses amidst blade root and hub. These relative motions are combined effects of wave-induced monopile motions and wind-induced blade root motions, which can cause impact loads at the blade root’s guide pin in the course of alignment procedure. Environmental parameters including the wind-wave misalignments play an important role for the safety of the installation tasks and govern the impact scenarios. The present study investigates the effects of wind-wave misalignments on the blade root mating process on a monopile-type offshore wind turbine. The dynamic responses including the impact velocities between root and hub in selected wind-wave misalignment conditions are investigated using multibody simulations. Furthermore, based on a finite element study, different impact-induced failure modes at the blade root for sideways and head-on impact scenarios, developed due to wind-wave misalignment conditions, are investigated. Finally, based on extreme value analyses of critical responses, safe domain for the mating task under different wind-wave misalignments is compared. The results show that although misaligned wind-wave conditions develop substantial relative motions between root and hub, aligned wind-wave conditions induce largest impact velocities and develop critical failure modes at a relatively low threshold velocity of impact.
引用
收藏
页码:218 / 233
页数:15
相关论文
共 67 条
  • [1] Bachynski EE(2014)Wind-wave misalignment effects on floating wind turbines: motions and tower load effects Journal of Offshore Mechanics and Arctic Engineering 136 041902-573
  • [2] Kvittem MI(2011)Study on control concepts suitable for mitigation of loads from misaligned wind and waves on offshore wind turbines supported on monopiles Wind Eng 35 561-77
  • [3] Luan C(2018)The impact of a passive tuned mass damper on offshore single-blade installation J Wind Eng Ind Aerodyn 176 65-1056
  • [4] Moan T(2018)A parametric study on the blade final installation process for monopile wind turbines under rough environmental conditions Eng Struct 172 1042-168
  • [5] Fischer T(2015)Joint distribution of environmental condition at five European offshore sites for design of combined wind and wave energy devices Journal of Offshore Mechanics and Arctic Engineering 137 031901-2645
  • [6] Rainey P(1994)The spatial structure of neutral atmospheric surface-layer turbulence J Fluid Mech 273 141-154
  • [7] Bossanyi E(2011)Numerical and experimental analysis of stresses and failure in t-bolt joints Compos Struct 93 2636-395
  • [8] Kuhn M(1950)The force exerted by surface waves on piles J Pet Technol 2 149-22
  • [9] Jiang Z(2018)Development and application of a simulator for offshore wind turbine blades installation Ocean Eng 166 380-243
  • [10] Jiang Z(2018)A crane overload protection controller for blade lifting operation based on model predictive control Energies 12 1-222