分布势理论及其在桅杆式海上浮式风力机中的应用

E. Engebretsen, H. Haslum, O. Aagaard
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引用次数: 1

摘要

浮式海上风力机的鲁棒性设计和工程设计需要气动-液压-伺服-弹性耦合时域分析。对于梁式fowt,采用非线性梁有限元公式可以方便地准确捕捉下部结构、塔架、叶片和系泊线的耦合结构响应。分布势理论(DPT)方法应用一阶频率相关的附加质量、辐射阻尼和激励载荷分布在耦合时域模拟中的所有淹没梁单元上,这些都是由衍射/辐射分析得到的。因此,这种方法包括所有波长的频率相关衍射效应,同时保持子结构的灵活性,从而实现水弹性耦合和沿子结构提取内部截面载荷。本文演示了DPT在某梁式FOWT的气动-液压-伺服-弹性耦合时域分析中的应用,并与经典Morison方法相比,说明了DPT对塔架和子结构疲劳寿命的影响。
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Distributed Potential Theory and its Application for Spar-Type Floating Offshore Wind Turbines
Coupled aero-hydro-servo-elastic time-domain analysis is required for robust design and engineering of Floating Offshore Wind Turbines (FOWTs). For spar-type FOWTs, it is convenient to adopt a nonlinear beam finite element formulation in order to capture the coupled structural response of substructure, tower, blades and mooring lines accurately. The Distributed Potential Theory (DPT) approach applies first-order frequency-dependent added mass, radiation damping and excitation loads distributed over all submerged beam elements in the coupled time-domain simulation, as obtained from diffraction/radiation analysis. This approach therefore includes frequency-dependent diffraction effects for all wavelengths, while keeping the substructure flexible, thus enabling hydro-elastic coupling and extraction of internal sectional loads along the substructure. This paper demonstrates the use of DPT in coupled aero-hydro-servo-elastic time-domain analysis of a spar-type FOWT and illustrates the effect on tower and substructure fatigue life compared to using the classical Morison approach.
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