Inertia load reduction for loadoff during floating offshore wind turbine installation: Release decision and ballast control

Can Ma , Zhen-Zhong Hu , Xiang Yuan Zheng , Zhengru Ren
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Abstract

High offshore installation costs are a significant factor limiting the competitiveness of offshore wind energy. One efficient installation approach for floating offshore wind turbines is to preassemble the tower, nacelle, and rotor onshore and perform a single lifting operation to mate the superstructure with the floating foundation at the installation site. It is heavy lifting, due to the weighty payload. At the end of the mating process, a loadoff operation is conducted to transfer the preassembly to the floating foundation. It results in a sudden change in total force acting on the vessel and causes substantial acceleration and potential damage to the mechanism in the onboard nacelles. The magnitude of acceleration of the onboard nacelles can vary greatly at different release instants. In this research, a simplified two-degrees-of-freedom (DOF) (heave and pitch) model is also proposed to account for the heavy lifting process and variable ballast tanks. The sudden payload transfer is approximated using a hyperbolic tangent function to guarantee continuity and differentiability. The loadoff operation consists of the decision-making and vessel-stabilizing phases. Based on the nonlinear model predictive control method, a payload-transfer time selector and anti-pitch ballast controller have been developed to achieve optimal release time decisions and stabilize the vessel after payload release, respectively. Six-DOF simulation results show that the proposed algorithms are capable to a satisfying level of robustness of deciding the optimal payload release time instant, as well as limiting the peak and mean acceleration magnitudes of the onboard nacelles after payload release. The decision-making and control strategies may promote the sustainable energy transformation by extending the operation window and reduce the installation costs.

在浮式海上风力涡轮机安装过程中减少卸载时的惯性负载:释放决策和压载控制
高昂的海上安装成本是限制海上风能竞争力的一个重要因素。浮式海上风力涡轮机的一种高效安装方法是在陆地上预先组装塔架、机舱和转子,然后在安装地点进行一次吊装作业,将上层建筑与浮动基础连接起来。由于有效载荷较重,这是一项重型起重作业。接合过程结束后,要进行卸载操作,将预装组件转移到浮动基础上。这将导致作用在船舶上的总力发生突然变化,并造成巨大的加速度和对船载机舱内机械装置的潜在损坏。在不同的释放时刻,机载短舱的加速度大小会有很大的不同。在这项研究中,还提出了一个简化的两自由度(DOF)(倾斜和俯仰)模型,以考虑重物提升过程和可变压载舱。为了保证连续性和可微分性,使用双曲正切函数对突然的有效载荷转移进行近似。卸载操作包括决策阶段和船舶稳定阶段。基于非线性模型预测控制方法,开发了有效载荷转移时间选择器和防倾压载控制器,以分别实现最佳释放时间决策和有效载荷释放后的船只稳定。六自由度仿真结果表明,所提出的算法在决定最佳有效载荷释放时间瞬间以及限制有效载荷释放后船载机舱的峰值和平均加速度幅度方面具有令人满意的鲁棒性。该决策和控制策略可通过延长运行窗口和降低安装成本来促进可持续能源转换。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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