高次波浪荷载对10 MW张力腿平台浮式风力机不同肌腱倾角的影响

Daniela Milano, C. Peyrard, M. Capaldo, D. Ingram, Q. Xiao, L. Johanning
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引用次数: 2

摘要

浮动风技术正在迅速发展,其目的是在使用固定底部解决方案无法到达的中深水区域收集高能风资源。考虑到这些系统的复杂性,需要很好地理解结构与入射水气动力之间的相互作用。虽然有许多解决方案正在探索中,但行业内尚未建立最佳设计。本研究探讨了肌腱倾角对10MW张力腿平台(TLP)浮式海上风力涡轮机(FOWT)动力性能的影响,以及不同设计方案与高阶水动力载荷的相互作用。该模型在极端海况条件下捕捉二阶和三阶波浪效应,并采用高阶谱(HOS)方法生成非线性波浪。分析使用由EDF实验室内部开发的流体动力工程工具CALHYPSO进行。在时域模拟中分别加入二阶和三阶惯性流体动力载荷,以捕捉低频载荷和振铃效应。结果表明,差频二阶效应对所分析的浮式风力机模型的运动和肌腱张力的影响可以忽略不计,而三阶项可以显著增强系统对极端入射波的动态响应。虽然斜腿浮子结构在线性载荷下表现出更好的运动和肌腱张力响应,但包含二次和三次频率的贡献表明,当受到极端波浪气候影响时,肌腱倾斜实际上会增加系泊线的张力变化。这可能导致在倾斜支腿配置中更频繁地观察到系泊线的松弛。因此,结果表明,忽略三阶效应,正如工业中通常所做的那样,可能导致张力腿平台风力涡轮机的运动和肌腱张力响应显著低估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impact of High Order Wave Loads on a 10 MW Tension-Leg Platform Floating Wind Turbine at Different Tendon Inclination Angles
Floating wind technology is being developed rapidly with the aim of harvesting high-energy wind resources in medium and deep water areas, unreachable using fixed bottom solutions. Given the complexity of these systems, the interactions between the structure and incident hydro-aerodynamic forces need to be well understood. While numerous solutions are being explored, an optimal design is yet to be established within the industry. This study explores the effects of tendon inclination on the dynamic behaviour of a 10MW tension-leg platform (TLP) floating offshore wind turbine (FOWT), and the interaction of different design solutions with higher-order hydrodynamic loading. The model was subject to an extreme sea state in order to capture second and third-order wave effects, and the nonlinear waves were generated via the high-order spectral (HOS) method. The analysis was performed using the hydrodynamic engineering tool CALHYPSO, in-house developed by EDF Lab. Second and third order inertial hydrodynamic loads were included in the time-domain simulations in order to capture low frequency loads and ringing effects respectively. Results show that difference-frequency second order effects have a negligible impact on motions and tendon tensions of the analysed floating wind turbine model, while third order terms can significantly enhance the dynamic response of the system to extreme incident waves. While inclined-leg floater configurations presented improved motion and tendon tension responses under linear loading, the inclusion of quadratic and triple-frequency contributions showed that tendon inclination can in fact increase tension variations in the mooring lines when subject to extreme wave climates. This can lead to slacking in the mooring lines being observed more frequently in inclined-leg configurations. The results therefore suggest that neglecting third order effects, as commonly done in industry, can lead to significant underestimations of motion and tendon tension responses of tension-leg platform wind turbines.
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