首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems >GYROSCOPIC EFFECTS OF HORIZONTAL AXIS WIND TURBINES USING STOCHASTIC AEROELASTICITY VIA SPINNING FINITE ELEMENTS
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GYROSCOPIC EFFECTS OF HORIZONTAL AXIS WIND TURBINES USING STOCHASTIC AEROELASTICITY VIA SPINNING FINITE ELEMENTS

机译:利用有限元随机气动弹性分析水平轴风轮机的陀螺效应

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Horizontal axis wind turbine (HAWTs) structures, throughout the years, have presumed to be of relatively simple construction, but wind-induced aerodynamic vibrations, wind-field conditions, and power requirements tend to lead to the need for increasingly complicated designs. One phenomenon that requires special attention is the gyroscopic or Coriolis effect. In general, blades design codes are written to optimize for lightness and slenderness, but also to withstand excitations at high frequency. As a result, gyroscopic motion derives as a nonlinear dynamic condition in the out-of-plane direction that is difficult to characterize by means of the well-known vibrational theory that has been established for their design and analysis. The present study develops and presents a probabilistic analysis of the precession - gyroscopic - effects of a wind turbine model developed for tapered-swept cross-sections of n, degree with nonlinear variations of mass and geometry along the body of the blade. A dynamic orthogonal decoupling method is utilized to successfully perform the aero-elastic analysis by decoupling the damped-gyroscopic equations of motion, as a result of the addition of Rayleigh damping - symmetric proportional mass and stiffness - within the linear system in study. Results are valid for yaw-free rotor configurations by means of unknown and random (though bounded) yaw rates. Simultaneously, those results can easily be expanded for yaw-controlled mechanisms. The yaw-free assumption presents a higher risk of potential reliability expectations, given the stochastic impairment of the gyroscopic nature that is present for out-of-plane axis motions, requiring special attention at higher frequencies. This impairment becomes particularly troublesome for blade profiles with tapered-swept cross-section variations. This uncertainty can be minimized by incorporating a mathematical framework capable of characterizing properly the yaw action such that gyroscopic effects can be fully interpreted and diagnosed. In summary, the main goal is to decipher the complexity of gyroscopic patterns of flexible rotor blades with complex shape configurations, but also to provide substantial elements to successfully approach yaw-mechanics of tapered-swept rotor blades.
机译:多年来,水平轴风力涡轮机(HAWT)结构被假定为具有相对简单的结构,但是由于风引起的空气动力振动,风场条件和功率需求往往导致对日益复杂的设计的需求。需要特别注意的一种现象是陀螺效应或科里奥利效应。通常,叶片的设计规范是为了优化轻便和细长而编写的,而且还可以承受高频的激励。结果,陀螺运动作为平面外方向上的非线性动力学条件而导出,这很难通过已经为它们的设计和分析建立的众所周知的振动理论来表征。本研究开发并提出了一种风轮机模型的陀螺效应的概率分析,该模型是针对n的锥形扫掠横截面开发的,其质量和几何形状沿叶片主体呈非线性变化。由于在研究的线性系统中增加了瑞利阻尼-对称的比例质量和刚度-,因此使用动态正交解耦方法通过将阻尼陀螺仪的运动方程解耦来成功地执行气动弹性分析。通过未知和随机(尽管有界)的偏航率,结果对于无偏航转子配置是有效的。同时,这些结果可以很容易地扩展到偏航控制的机构。考虑到平面外轴运动存在陀螺特性的随机损伤,在较高频率下需要特别注意,因此无偏航假设会带来更高的潜在可靠性预期风险。对于具有逐渐减小的横截面变化的叶片轮廓而言,这种损害变得特别麻烦。通过合并能够正确表征偏航作用的数学框架,可以最大程度地减少这种不确定性,从而可以完全解释和诊断陀螺效应。总而言之,主要目标是破译具有复杂形状构造的柔性转子叶片的陀螺模式,同时为成功地解决渐缩扫描转子叶片的偏航力学提供实质性要素。

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