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ACTIVE DAMPING OF VIBRATIONS OF A CANTILEVER BEAM BY AXIAL FORCE CONTROL

机译:通过轴向力控制主动悬臂梁的振动

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摘要

In several fields, e.g. aerospace applications, robotics or the bladings of turbomachinery, the active damping of vibrations of slender beams which are subject to free bending vibrations becomes more and more important. In this contribution a slender cantilever beam loaded with a controlled force at its tip, which always points to the clamping point of the beam, is treated. The equations of motion are obtained using the Bernoulli-Euler beam theory and d'Alemberts principle. To introduce artificial damping to the lateral vibrations of the beam, the force at the tip of the beam has to be controlled in a proper way. Two different methods are compared. One concept is the closed-loop control of the force. In this case a nonlinear feedback control law is used, based on axial velocity feedback of the tip of the beam and a state-dependent amplification. By contrast, the concept of open-loop parametric control works without any feedback of the actual vibrations of the mechanical structure. This approach applies the force as harmonic function of time with constant amplitude and frequency. Numerical results are carried out to compare and to demonstrate the effectiveness of both methods.
机译:在几个领域,例如在航空航天应用,机器人技术或涡轮机械的叶片中,主动衰减细长梁的振动变得越来越重要,这些细长梁会受到自由弯曲振动的影响。通过这种方式,可以对细长的悬臂梁进行处理,该悬臂梁的尖端始终受到力的作用,该力始终指向梁的夹持点。运动方程式是使用Bernoulli-Euler梁理论和d'Alemberts原理获得的。为了对梁的横向振动引入人为的阻尼,必须以适当的方式控制梁末端的力。比较了两种不同的方法。一种概念是力的闭环控制。在这种情况下,基于光束尖端的轴向速度反馈和与状态有关的放大率,使用了非线性反馈控制律。相比之下,开环参数控制的概念在没有机械结构实际振动的任何反馈的情况下起作用。这种方法将力作为具有恒定幅度和频率的时间的谐波函数。进行数值结果以比较并证明这两种方法的有效性。

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