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ANALYTICAL MODELING OF ELECTRORHEOLOGICAL MATERIAL BASED ADAPTIVE BEAMS

机译:基于电流材料的自适应梁的分析模拟

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The use of electrorheological (ER) materials in adaptive structures has received much attention recently. ER adaptive structures are based on controlling the pre-yield rheology of the ER material, which is achieved by applying different electrical fields to the ER material. In this study the dynamic behavior of an ER material based adaptive beam was modeled. Previous modeling efforts were extended towards a more detailed analysis of modal results. The adaptive beams focused on were composed of three layers: an ER material controllable damping layer and surrounding upper and lower elastic plates. A structural model of the assembly in a transverse continuous vibration mode subjected to simply-supported boundary conditions was developed and analyzed. It was assumed that each structure was subjected to sinusoidal actuation applied at one or two locations. The model was tested under the conditions of varying forcing frequency from 0 - 300 Hz., and applied electrical field from 0 - 3.5 kV/mm. Time domain displacement response, natural frequencies, and loss factors of the structures at varying electric fields and varying damping layer thicknesses were obtained. The analytical results of the adaptive beam were compared with experimental results under the same physical conditions. Qualitative agreement between theory and experimentation resulted. In addition an effort was made to reduce the vibration of the structure by selecting the optimum electrical field which yields minimized vibration for each excitation frequency.
机译:在自适应结构中使用电流(ER)材料最近受到了很多关注。 ER自适应结构基于控制ER材料的预屈服流变学,其通过将不同的电场施加到ER材料来实现。在这项研究中,建模了基于ER材料的自适应光束的动态行为。以前的建模努力达到了对模态结果的更详细分析。聚焦的自适应梁由三层组成:ER材料可控阻尼层和周围的上部和下弹性板。开发并分析了经受简单支持的边界条件的横向连续振动模式中组件的结构模型。假设在一个或两个位置施加每个结构进行正弦致动。该模型在0 - 300 Hz的不同强制频率的条件下进行测试,并从0-3.5 kV / mm的应用电场。获得了不同电场和变化阻尼层厚度的结构的时域位移响应,固有频率和损耗因子。将自适应梁的分析结果与在相同物理条件下的实验结果进行比较。理论与实验之间的定性协议导致。另外,通过选择最佳电场来减少结构的振动,从而使每个激励频率最小化振动。

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