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Dynamic Analysis of an Offshore Wind Turbine Including Soil Effects

机译:近海风力涡轮机的动态分析,包括土壤效应

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Offshore wind turbines (OWTs) offer an attractive, sustainable solution to the impending global energy crisis. A major challenge in fixed-bottom OWT design is accounting for soil-structure interaction (SSI) under the influence of random dynamic loading from wind, waves and currents. Usually, SSI is either ignored in OWT studies or is incorporated by means of simplified foundation concepts like the apparent fixity model. OWTs in shallow water depths (less than 30 m) are mostly supported on monopiles-large diameter steel pipe piles driven into the subsoil. Monopiles transfer the dynamic lateral loads into the soil by bending action. The present work deals with the dynamic analysis of the NREL 5MW OWT on a monopile foundation, in Indian waters. It involves parametric studies on various clayey soil profiles-soft, medium stiff and stiff clay. An operational wind speed of 12 m/s and a sea state of 4 m significant wave height and 10 s spectral peak period are considered. The OWT design should ensure that the natural frequency is away from the forcing frequencies of wind, wave and rotor. A water depth of 20 m is considered. Hub-height aerodynamic loads are obtained using the NREL-FAST code, which is based on the blade-element momentum (BEM) theory. The hydrodynamic time domain analyses are performed in the FEM based coupled hydrodynamic-geotechnical software, DNV-GL-USFOS. USFOS makes use of the JONSWAP spectrum to generate irregular waves. Soil is represented by means of p-y, Q-z and t-z curves. Results indicate the significance of including SSI in OWT studies. Variation in response due to change in pile penetration depth and pile diameter are also highlighted. Stiffness of clay is the design driver for OWTs.
机译:海上风力涡轮机(OWTS)为即将到来的全球能源危机提供有吸引力,可持续的解决方案。固定底部OWT设计中的一项重大挑战是在随机动态负荷从风,波浪和电流的影响下进行土壤结构相互作用(SSI)。通常,SSI在OWT研究中被忽略,或者通过简体的基础概念,如表观固定模型。浅水深度(小于30米)的欠款主要是在替补进入底层的幂大直径钢管桩上。单岩通过弯曲作用将动态横向载荷转移到土壤中。目前的工作涉及印度水域纪用基础NREL 5MW OWT的动态分析。它涉及参数研究各种粘土土壤型材 - 软,中等僵硬和僵硬的粘土。考虑了12米/秒的运行风速和4米的高度波浪高度和10秒的光谱峰期。 OWT设计应确保自然频率远离风力,波浪和转子的强制频率。考虑了20米的水深。使用NRER-FAST码获得集线器高空气动力载荷,基于刀片元素动量(BEM)理论。流体动力学时域分析在FEM基耦合的流体动力学 - 岩土电机软件,DNV-GL-USFO中进行。 USFOS利用Jonswap谱来产生不规则的波浪。通过P-Y,Q-Z和T-Z曲线表示土壤。结果表明包括SSI在OWT研究中的重要性。还突出了由于桩渗透深度和桩直径变化导致的反应变化。粘土僵硬是欠款的设计司机。

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