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Critical load, dynamic characteristics and parametric instability of electrorheological material-based adaptive beams

机译:基于电流变材料的自适应梁的临界载荷,动态特性和参数不稳定性

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摘要

This study derives formulae for the critical load, natural frequency, and loss factor of a simply supported adaptive beam with embedded electrorheological fluid. The parametric instability and dynamic response of the beam subjected to a periodic axial force are investigated. The theoretical model is developed from DiTaranto sandwich beam theory and extended to a transverse vibration model. Galerkin's method is applied to simplify the governing equation of motion to the form of Mathieu equation. The incremental harmonic balance (IHB) method is employed to determine the parametric instability of the electrorheological material-based adaptive beams. The fourth-order Runge-Kutta method is used to analyze the dynamic response of the adaptive beams. The effects of electric field, core thickness ratio, and length of beam on the critical load, natural frequencies, loss factor, and parametric instability are investigated. The influence of the static load parameter factor on the parametric instability is also addressed.
机译:这项研究推导了具有嵌入式电流变流体的简单支撑自适应梁的临界载荷,固有频率和损耗因子的公式。研究了梁在周期性轴向力作用下的参数不稳定性和动力响应。该理论模型是从DiTaranto夹层梁理论发展而来的,并扩展为横向振动模型。运用Galerkin方法将运动的控制方程简化为Mathieu方程的形式。增量谐波平衡(IHB)方法用于确定基于电流变材料的自适应梁的参数不稳定性。四阶Runge-Kutta方法用于分析自适应波束的动态响应。研究了电场,铁心厚度比和梁的长度对临界载荷,固有频率,损耗因子和参数不稳定性的影响。还解决了静载荷参数因子对参数不稳定性的影响。

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