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Validation Tests of Fiber Optic Strain-Based Operational Shape and Load Measurements

机译:基于光纤应变的运行形状和负载测量的验证测试

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Aircraft design has been progressing toward reduced structural weight to improve fuel efficiency, increase performance, and reduce cost. Lightweight aircraft structures are more flexible than conventional designs and require new design considerations. Intelligent sensing allows for enhanced control and monitoring of aircraft, which enables increased structurally efficiency. The NASA Dryden Flight Research Center (DFRC) has developed an instrumentation system and analysis techniques that combine to make distributed structural measurements practical for lightweight vehicles. Dryden's Fiber Optic Strain Sensing (FOSS) technology enables a multitude of lightweight, distributed surface strain measurements. The analysis techniques, referred to as the Displacement Transfer Functions (DTF) and Load Transfer Functions (LTF), use surface strain values to calculate structural deflections and operational loads. The combined system is useful for real-time monitoring of aeroelastic structures, along with many other applications. This paper describes how the capabilities of the measurement system were demonstrated using subscale test articles that represent simple aircraft structures. Empirical FOSS strain data were used within the DTF to calculate the displacement of the article and within the LTF to calculate bending moments due to loads acting on the article. The results of the tests, accuracy of the measurements, and a sensitivity analysis are presented.
机译:飞机设计一直在朝着减轻结构重量的方向发展,以提高燃油效率,提高性能并降低成本。轻型飞机结构比常规设计更灵活,并且需要新的设计考虑。智能感测可以增强对飞机的控制和监视,从而提高结构效率。 NASA Dryden飞行研究中心(DFRC)开发了一种仪器系统和分析技术,这些系统和技术相结合,使轻型车辆的分布式结构测量实用。 Dryden的光纤应变传感(FOSS)技术可实现多种轻量级的分布式表面应变测量。称为位移传递函数(DTF)和载荷传递函数(LTF)的分析技术使用表面应变值来计算结构挠度和操作载荷。该组合系统可用于实时监测气动弹性结构以及许多其他应用程序。本文描述了如何使用代表简单飞机结构的子规模测试文章来演示测量系统的功能。在DTF中使用经验FOSS应变数据来计算制品的位移,在LTF中使用经验FOSS应变数据来计算由于作用在制品上的载荷引起的弯矩。给出了测试结果,测量的准确性以及灵敏度分析。

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