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Dynamic Aeroservoelastic Response with Nonlinear Structural Elements

机译:具有非线性结构单元的动态气动弹性响应

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Linear structural dynamics, unsteady aerodynamics, control system and actuator models are combined for linear aeroservoelastic equations of motion that are augmented with nonlinear feedback loops based on the Increased-Order Modeling (IOM) approach. While the linear equations are formulated in the frequency-domain for best combined efficiency, accuracy and robustness in industrial environment, the nonlinear feedback loops are modeled in the time domain to provide maximal flexibility in adding nonlinear effects in all the involved disciplines. The linear equations are solved first to provide a baseline response to deterministic or stochastic gusts, maneuver commands or direct-force excitations using FFT techniques. Nonlinear effects are then added in a time-marching process that modifies the linear solution using convolution integrals. The numerical process, utilized in the Dynresp code that serves as a framework for industrial applications and research in nonlinear structural dynamics, is outlined with emphasis on structural nonlinearities using a fictitious-mass technique. The numerical example is limit-cycle oscillations due to actuator nonlinearities.
机译:线性结构动力学,非定常空气动力学,控制系统和执行器模型结合起来,用于线性航空气动弹性运动方程,并基于基于高阶建模(IOM)方法的非线性反馈回路对其进行了扩充。虽然线性方程是在频域中制定的,以实现工业环境中最佳的组合效率,准确性和鲁棒性,但非线性反馈回路在时域中建模,以在所有相关学科中增加非线性影响时提供最大的灵活性。首先对线性方程进行求解,以使用FFT技术为确定性或随机阵风,操纵指令或直接力激励提供基线响应。然后在时间行进过程中添加非线性效应,该过程使用卷积积分修改线性解。 Dynresp代码中使用的数值过程用作工业应用和非线性结构动力学研究的框架,概述了使用虚拟质量技术重点强调结构非线性的问题。数值示例是由于执行器非线性导致的极限循环振荡。

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