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Nonlinear vibration analysis and optimal damping design of sandwich cylindrical shells with viscoelastic and ER-fluid treatments

机译:粘弹性和ER-流体处理的夹层圆柱壳的非线性振动分析和最佳阻尼设计

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摘要

Viscoelastic and smart fluid materials such as electro-rheological (ER) and magneto-rheological fluids have been used in many applications in industry to suppress vibration in sandwich shell structures. The main objective of this dissertation is to investigate and develop analysis models and design optimization strategies to optimally suppress the vibration of cylindrical shell/panel type structures using both passive and semi-active treatments. This dissertation constitutes two major related parts. In the first part, passive treatment using viscoelastic layer is studied for sandwich cylindrical shell using semi-analytical finite element modeling. In order to provide more accuracy a higher order Taylor’s expansion of transverse and in-plane displacement fields is developed for the core layer of sandwich cylindrical shell structures including the least number of degrees of freedom. The developed model is then employed to formulate cut and partial treatment modeling which are applied to increase damping and reduce the weight of the structure. The formulations are also modified in order to consider the slippage between layers at the interfaces. A systematic parametric study is presented to investigate the effect of main parameters such as temperature, vibration amplitude, pre-stress components, slippage and etc on vibration damping characteristics of sandwich shell structure. The temperature distribution at each layer is obtained by solving the transient heat transfer equation for axisymmetric cylindrical structure based on the finite difference method using irregular grid. Finally, by combining the semi-analytical finite element method and the optimization algorithms a design optimization methodology has been formulated to maximize the damping characteristics in sandwich cylindrical shell using the optimal number and location of cuts and partial treatments with the optimal thicknesses of the treating layers. udIn the second part of the dissertation, semi-active treatment using smart ER fluid layer is studied. The shear stress response and the dynamic mechanical properties of the ER fluid created by dispersing cornstarch into corn oil are experimentally explored for small/large shear strain amplitude, moderate range of frequencies and different field intensities. A new constitutive model has been also proposed to predict accurately the measured experimental data in both frequency and time domains. Then, the nonlinear vibration analysis of sandwich shell/panel structure with constrained electrorheological (ER) fluid is investigated for different boundary conditions using the finite element method. In order to reduce the computational costs, a new notation referred to as H-notation is also developed over the two well known notations referred to as B and N notations in order to represent the nonlinear equations of motion. Finally, a design optimization methodology has been presented to maximize damping in sandwich cylindrical panel using both unconstrained viscoelastic and constrained ER fluid damping layers. The unconstrained viscoelastic layer is employed in order to practically seal the constrained ER fluid patches and boundaries of the ER based sandwich structure. Then, an optimization problem has been formulated to find simultaneously the optimum number and distribution of unconstrained viscoelastic and constrained ER fluid patches, electric field intensity and thickness ratios of the treating layers.ud
机译:粘弹性和智能流体材料(例如电流变(ER)和磁流变流体)已在工业中用于许多应用中,以抑制夹心壳结构中的振动。本文的主要目的是研究和开发分析模型和设计优化策略,以通过被动和半主动处理来最佳地抑制圆柱壳/面板型结构的振动。本论文包括两个主要的相关部分。在第一部分中,使用半解析有限元模型研究了夹层圆柱壳的采用粘弹性层的被动处理。为了提供更高的精度,针对夹层圆柱壳结构的芯层(包括最小自由度)开发了横向和平面位移场的泰勒展开式。然后将开发的模型用于制定切割和局部处理模型,这些模型可用于增加阻尼并减轻结构的重量。为了考虑界面处各层之间的滑动,还对配方进行了修改。进行了系统的参数研究,以研究温度,振动幅度,预应力分量,滑动等主要参数对夹层结构减振特性的影响。通过使用不规则网格的有限差分法求解轴对称圆柱结构的瞬态传热方程,可以得出每一层的温度分布。最后,通过结合半解析有限元方法和优化算法,制定了一种设计优化方法,以最优的切口数量和位置和局部处理以及处理层的最佳厚度,使夹心圆柱壳的阻尼特性最大化。 。 ud在论文的第二部分中,研究了使用智能ER流体层的半主动治疗。通过实验研究了大/小剪切应变幅度,适中的频率范围和不同的场强,通过将玉米淀粉分散到玉米油中产生的ER流体的剪切应力响应和动态力学性能。还提出了一种新的本构模型来准确地预测频域和时域中的测量实验数据。然后,利用有限元方法研究了在不同边界条件下受约束的电流变(ER)流体对夹层壳/面板结构的非线性振动分析。为了减少计算成本,还在表示为B和N表示法的两个众所周知的表示法上开发了称为H表示法的新表示法,以表示运动的非线性方程。最后,提出了一种设计优化方法,以使用无约束粘弹性和约束ER流体阻尼层来最大化夹心圆柱面板的阻尼。使用无约束的粘弹性层是为了实际上密封受约束的ER流体斑块和基于ER的夹心结构的边界。然后,制定了一个优化问题,以同时找到无约束粘弹性和约束ER流体斑块的最佳数量和分布,电场强度和处理层的厚度比。

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  • 作者

    Mohammadi Farough;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 en
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