首页> 外文会议>ASME international conference on ocean, offshore and arctic engineering >AN INVESTIGATION OF PASSIVE AND SEMI-ACTIVE TUNED MASS DAMPERS FOR A TENSION LEG PLATFORM FLOATING OFFSHORE WIND TURBINE IN ULS CONDITIONS
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AN INVESTIGATION OF PASSIVE AND SEMI-ACTIVE TUNED MASS DAMPERS FOR A TENSION LEG PLATFORM FLOATING OFFSHORE WIND TURBINE IN ULS CONDITIONS

机译:在ULS条件下对漂浮在海上风轮机上的张力腿平台进行无源和半有源调谐质量阻尼器的研究

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Floating offshore wind turbines are able to access deeper waters with stronger winds, but also have more complicated dynamic behavior than fixed-bottom offshore turbines, potentially resulting in larger loads. Structural control using tuned mass dampers (TMD) is a promising method for mitigating these loads. Previous research on structural control in wind turbines has typically considered passive devices and operational conditions. In this study, the effects of a passive tuned mass damper and a semi-active tuned mass damper, located at the tower top, are analyzed and simulated for the GE Haliade 150-6MW wind turbine located on the Glosten Pelastar tension-leg platform (TLP). The system is simulated using FASTv8, the wind turbine aero-elastic wind turbine simulator developed by NREL, which includes a TMD module capable of modeling passive and semi-active devices. A pendulum-type TMD developed by ESM GmbH, which can oscillate in the fore-aft and side-side directions, is modelled with non-linear position constraints. Semi-active control is defined using an "on-off" TMD damping based on a "ground-hook" control law. Ultimate limit state (ULS) conditions with a parked rotor are simulated, for two different water depths. The results are analyzed in terms of the load reductions at the tower base, nacelle acceleration reduction, and tendon tensions for the various configurations. The impact of TMD stroke limitations and the sensitivity of the results to water depth are investigated. The results will show that structural control can reduce ULS loads in deep water configurations, but are less effective in shallow water. The dynamics of the system that cause this result will be elucidated. The results will also demonstrate that semi-active control can be an effective strategy to further reduce loads and reduce the TMD stroke.
机译:浮动式海上风力涡轮机能够进入更强风的更深水域,但与固定底下的海上风力涡轮机相比,其动态行为也更为复杂,从而可能导致更大的负荷。使用调谐质量阻尼器(TMD)进行结构控制是减轻这些载荷的一种有前途的方法。先前在风力涡轮机中进行结构控制的研究通常考虑了无源设备和运行条件。在这项研究中,针对位于Glosten Pelastar张紧腿平台上的GE Haliade 150-6MW风力涡轮机(位于塔架顶部)的无源调谐质量阻尼器和半有源调谐质量阻尼器的影响进行了分析和模拟( TLP)。该系统使用FASTv8(由NREL开发的风力涡轮机气动弹性风力涡轮机模拟器)进行仿真,该模拟器包括一个能够对无源和半有源设备进行建模的TMD模块。由ESM GmbH开发的摆式TMD可以在非线性位置约束下进行建模,它可以在前后方向和侧面方向上振动。半主动控制是基于“地面挂钩”控制律,使用“开-关” TMD阻尼来定义的。针对两种不同的水深,模拟了具有停放的转子的极限状态(ULS)条件。根据塔架底部的负荷减少,机舱加速度的减少以及各种配置的腱张力来分析结果。研究了TMD行程限制的影响以及结果对水深的敏感性。结果将表明,结构控制可以减少深水构造中的ULS载荷,但在浅水中效果较差。将阐明导致此结果的系统动力学。结果还将表明,半主动控制可以成为进一步减轻负载和减少TMD行程的有效策略。

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