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Predicting Full-Field Strain on a Wind Turbine for Arbitrary Excitation Using Displacements of Optical Targets Measured with Photogrammetry

机译:用摄影测量测量的光学目标位移预测风力涡轮机上的全场菌株

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Wind turbine blades and other structures are often subjected to dynamic loading that may not be predicted or measurable at critical locations of interest. Therefore, a non-contacting measurement technique that can provide information throughout an entire structure with the absence of instrumented sensors is desirable. Such an approach is particularly beneficial and relevant to operating rotor or wind turbine blades. In this paper, a three-bladed wind turbine placed in a semi-built-in boundary condition was subjected to a variety of different loadings. The turbine was excited using a sinusoidal excitation, a pluck test, arbitrary impacts on three blades, and random force excitations with a mechanical shaker. The response of the structure to these excitations at optical targets mounted to the blades was measured using three-dimensional point tracking. The limited set of measured displacement at the optical targets was expanded using a modal expansion algorithm. The expanded displacement was used in conjunction with a finite element model of the turbine to extract dynamic strain throughout the entire structure. The results from the technique were compared to instrumented strain gages and are shown be in close agreement. The predicted strain using the proposed approach is not limited to the locations of the optical targets or where the cameras have line of sight. This new technique may enable a new structural health-monitoring approach that has the ability to interrogate an entire structure, inside and outer surface.
机译:风力涡轮机叶片和其他结构通常经受动态加载,在感兴趣的关键位置可能无法预测或可测量。因此,希望在没有仪表传感器的情况下在整个结构中提供信息的非接触测量技术。这种方法特别有益,与操作转子或风力涡轮机叶片相关。在本文中,对半内置边界条件放置的三刃风力涡轮机进行了各种不同的载荷。使用正弦励磁,采用拔线试验,三个叶片的任意冲击,以及机械振动筛的随机力激发。使用三维点跟踪测量安装在安装到叶片上的光学目标的结构对这些激励的响应。使用模态扩展算法扩展光学靶标的有限的测量位移。扩展位移与涡轮机的有限元模型结合使用,以在整个结构中提取动态应变。将该技术的结果与仪器化应变计进行比较,并显示在密切一致。使用所提出的方法的预测应变不限于光学目标的位置或相机具有视线的位置。这种新技术可以实现新的结构健康监测方法,该方法具有询问整个结构,内部和外表面的能力。

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