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首页> 外文期刊>Journal of intelligent material systems and structures >An unconventional adaptive flutter suppression actuation system: From modeling to experimentation
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An unconventional adaptive flutter suppression actuation system: From modeling to experimentation

机译:非常规的自适应颤振抑制致动系统:从建模到实验

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摘要

This article contributes to the definition of an unconventional actuation system coupled with an adaptive control algorithm, it is intended specifically for slender/highly flexible wings flutter suppression. The design and validation process of the novel actuation architecture is presented together with the performance analysis of the post-flutter dynamics control. Robustness of the overall control architecture is verified with respect to the uncertainties deriving from the unpredictable degradation of the structural properties. The proposed actuation system is based on a row of multiple mini-spoilers, located in proximity of the leading edge and coordinated by a modified model reference adaptive control algorithm. The spoiler configuration is optimized by computational fluid dynamics numerical simulation, whereas the aerodynamic database is derived by wind tunnel tests on the prototype by means of a six-axes force balance. The resulting aeroelastic mathematical model is then used to implement and validate the adaptive control algorithm for a wide range of conditions, from on-design flutter speed and nominal structural stiffness to post-flutter speed and reduced structural stiffness. The two degree of freedom aeroelastic model is successfully controlled in all conditions. This article aims at defining a robust procedure for aeroelastic phenomena control system design, which employs a synergy of modeling, simulation, and experimental approaches. Pertinent conclusions are discussed in the final section of the article.
机译:本文有助于定义与自适应控制算法结合的非常规驱动系统,它专门用于细长/高度灵活的机翼颤振抑制。介绍了新型执行机构的设计和验证过程,以及后颤振动力学控制的性能分析。关于结构特性不可预测的退化所带来的不确定性,验证了整体控制架构的稳健性。所提出的致动系统基于位于前缘附近并由改进的模型参考自适应控制算法进行协调的一排多个微型扰流板。通过计算流体动力学数值模拟优化了扰流板的配置,而通过六轴力平衡通过原型上的风洞测试得出了空气动力学数据库。然后将所得的气动弹性数学模型用于在各种条件下(从设计上的振颤速度和标称结构刚度到振颤后速度和降低的结构刚度)实施和验证自适应控制算法。在所有条件下均可成功控制两个自由度的气动弹性模型。本文旨在为气动弹性现象控制系统设计定义一个可靠的程序,该程序采用了建模,仿真和实验方法的协同作用。本文的最后一部分讨论了相关的结论。

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