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INTEGRATIVE CONTROL AND DESIGN FRAMEWORK FOR AN ACTIVELY VARIABLE TWIST WIND TURBINE BLADE TO INCREASE EFFICIENCY

机译:积极变量扭转风力涡轮机刀片的一体化控制与设计框架,提高效率

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A methodology for the design and control of a variable twist wind turbine blade is presented. The blade is, modular, flexible, and additively manufactured (AM). The AM capabilities have the potential to create a flexible blade with a low torsional-to-longitudinal-stiffness ratio. This enables new design and control capabilities that could be applied to the twist angle distribution. The variable twist distribution can increase the aerodynamic efficiency during Region 2 operation. The suggested blade design includes a rigid spar and flexible AM segments that form the surrounding shells. The stiffness of each segment and the actuator placement define the twist distribution. These values are used to find the optimum free shape for the blade. Given the optimum twist distributions, actuator placement, and free shape, the required amount of actuation could be determined. The proposed design process first determines the twist distribution that maximizes the aerodynamic efficiency in Region 2. A mechanical design algorithm subsequently locates a series of actuators and defines the stiffness ratio between the blade segments. The free shape twist distribution is selected in the next step. It is chosen to minimize the amount of actuation energy required to shape the twist distribution as it changes with Region 2 wind speed. Wind profiles of 20 different sites, gathered over a three-year period, are used to get the free shape. A control framework is then developed to set the twist distribution in relation to wind speed. A case study is performed to demonstrate the suggested procedure. The aerodynamic results show up to 3.8 and 3.3% increase in the efficiency at cut-in and rated speeds, respectively. The cumulative produced energy within three years, improved by up to 1.7%. The mechanical design suggests that the required twist distribution could be achieved by five actuators. Finally, the optimum free shape is selected based on the simulations for the studied sites.
机译:提出了一种用于设计和控制可变扭转风力涡轮机叶片的方法。刀片是,模块化,柔韧性和加剧性地制造(AM)。 AM能力具有较低扭转到纵向刚度比的柔性刀片。这使得新的设计和控制能力可以应用于扭转角度分布。可变捻度分布可以增加区域2操作期间的空气动力学效率。建议的刀片设计包括刚性翼梁和柔性AM段,形成周围的壳体。每个段的刚度和致动器放置限定了捻度分布。这些值用于找到刀片的最佳自由形状。给定最佳的扭曲分布,致动器放置和自由形状,可以确定所需的致动量。所提出的设计过程首先确定最大化区域2中的空气动力学效率的扭曲分布。机械设计算法随后定位一系列致动器并限定叶片段之间的刚度比。在下一步中选择自由形状扭转分布。选择以最小化扭曲分布所需的致动能量,因为它随着区域2风速而变化。在三年内聚集的20个不同网站的风廓义,用于获得自由形状。然后开发了一种控制框架,以设定与风速相关的扭曲分布。执行案例研究以展示建议的程序。空气动力学结果分别显示出额定速度和额定速度的效率增加3.8%和3.3%。累计生产的能量在三年内,提高了高达1.7%。机械设计表明,所需的扭曲分配可以通过五个执行器实现。最后,基于所研究的位点的模拟来选择最佳的自由形状。

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