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Structural modeling and validation of an active twist model rotor blade

机译:主动扭转模型转子叶片的结构建模和验证

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DLR has been researching on active twist rotor blade control for at least 15 years now. This research work included the design and manufacturing of model rotor blades within the blade skin integrated actuators. As a main subject, numerical benefit studies with respect to rotor noise, vibration, and performance were carried out with DLR's rotor simulation code S4. Since this simulation code is based on a modal synthesis, it uses the natural blade frequencies and mode shapes to model the blade dynamics. Both, natural blade frequencies and mode shapes, are computed in advance employing a finite element beam model of the blade. Each beam element possesses certain structural properties that are derived from an ANSYS model for certain cross sections of the blade. Since model rotor blades are built for wind tunnel testing, they are highly instrumented with sensors and therefore vary in their structural properties along span. Modifications in the structural properties due to the instrumentation are not included in the ANSYS model. However, to account for these variations, two experimental methods have been developed. They allow the determination of the real values for the most important structural blade properties such that the structural blade model is improved. The paper describes the experimental methods, as well as the development of an advanced structural blade model for rotor simulation purposes. It shows a validation of the structural blade model based on the measured non-rotating and rotating frequencies.
机译:DLR在主动扭转转子叶片控制方面进行了至少15年的研究。这项研究工作包括在叶片蒙皮集成致动器内设计和制造模型转子叶片。作为主要主题,使用DLR的转子仿真代码S4进行了有关转子噪声,振动和性能的数值效益研究。由于此仿真代码基于模态综合,因此它使用自然叶片频率和模式形状来对叶片动力学建模。预先使用叶片的有限元束模型来计算自然叶片的频率和模态形状。每个梁单元都具有某些结构特性,这些结构特性是从ANSYS模型得出的,用于叶片的某些横截面。由于模型转子叶片是为风洞测试而建造的,因此它们高度配备了传感器,因此其结构特性会沿跨度变化。由于仪器的原因,对结构特性的修改不包括在ANSYS模型中。但是,为了解决这些变化,已经开发了两种实验方法。它们允许确定最重要的结构叶片特性的实际值,从而改进结构叶片模型。本文介绍了实验方法,以及用于转子仿真目的的高级结构叶片模型的开发。它显示了基于测得的非旋转和旋转频率对结构叶片模型的验证。

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