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Experimental comparisons of dynamic properties of floating wind turbine systems based on two different rotor concepts

机译:基于两种不同转子概念的浮动风力涡轮机系统动力特性的实验比较

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This article presents research findings on the response characteristic differences between the thrust matched blade system (TMBS) and the geometry-matched blade system (GMBS), which utilize redesigned thrust-matched and original geometry-matched blades, respectively, both based on the OC3 spar-type floating offshore wind turbine (FOWT). Particulars of this research are to examine the unique dynamic response characteristics of the TMBS, which includes a better performance-matched rotor relative to the GMBS. The response behaviors of the TMBS and GMBS are compared and studied based on a sequence of wind and irregular wave scenarios to reveal the unique roles that the thrust-matched rotor plays in the dynamic response behaviors of the floating wind turbine system. Gyroscopic effects of rotor rotation are found weakened in the TMBS, and yaw oscillation in the TMBS is not solely excited by rotor rotation, unlike in the GMBS. Coupling effects between surge and pitch are found in both the TMBS and GMBS under combined wind-and-wave condition. Furthermore, restraining effects of wind loads on motions in the GMBS and TMBS are both evident at natural frequencies while show distinct behaviors at the wave frequency. It is observed from the experimental measurements that the tower-top bending moment of the TMBS shows similar oscillation characteristics as that of the GMBS but with larger oscillation amplitudes. Furthermore, it is found that tower-top shear force and axial rotor thrust of the TMBS show distinct exciting motivators and much larger oscillation amplitudes relative to those of the GMBS. For both the TMBS and GMBS, the tensions measured in mooring lines are found to be coupled by yaw motion for wind only cases while being clearly influenced by surge and heave couplings under integrated wind-and-wave load condition. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文介绍了推力匹配叶片系统(TMBS)和几何匹配叶片系统(GMBS)之间的响应特性差异的研究发现,这两个均基于OC3分别使用了重新设计的推力匹配叶片和原始几何匹配叶片翼梁式浮式海上风力发电机(FOWT)。这项研究的重点是研究TMBS的独特动态响应特性,其中包括相对于GMBS更好的性能匹配转子。基于一系列风和不规则波的情况,对TMBS和GMBS的响应行为进行了比较和研究,以揭示推力匹配转子在浮动风力涡轮机系统动态响应行为中的独特作用。与GMBS不同,在TMBS中发现转子旋转的陀螺效应减弱了,并且TMBS中的偏航振荡不仅由转子旋转激发。在风浪组合条件下,TMBS和GMBS中都发现了电涌和俯仰之间的耦合效应。此外,在自然频率下,风荷载对GMBS和TMBS中运动的抑制效果都很明显,而在波浪频率下却表现出不同的行为。从实验测量中观察到,TMBS的塔顶弯矩显示出与GMBS相似的振荡特性,但具有更大的振荡幅度。此外,还发现TMBS的塔顶剪切力和轴向转子推力显示出独特的激励动力,并且相对于GMBS而言,具有更大的振荡幅度。对于TMBS和GMBS,在仅风的情况下,在系泊缆中测得的张力被认为是通过偏航运动耦合的,而在集成的风浪载荷条件下,明显受到浪涌和升沉耦合的影响。 (C)2016 Elsevier Ltd.保留所有权利。

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