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Effective electromechanical coupling coefficient of adaptive structures with integrated multi-functional piezoelectric structural fiber composites

机译:集成多功能压电结构纤维复合材料的自适应结构的有效机电耦合系数

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This paper presents a linear computational homogenization framework to evaluate the effective (or generalized) electromechanical coupling coefficient (EMCC) of adaptive structures with piezoelectric structural fiber (PSF) composite elements. The PSF consists of a silicon carbide (SiC) or carbon core fiber as reinforcement to a fragile piezo-ceramic shell. For the micro-scale analysis, a micromechanics model based on the variational asymptotic method for unit cell homogenization (VAMUCH) is used to evaluate the overall electromechanical properties of the PSF composites. At the macro-scale, a finite element (FE) analysis with the commercial FE code ABAQUS is performed to evaluate the effective EMCC for structures with the PSF composite patches. The EMCC is postprocessed from free-vibrations analysis under short-circuit (SC) and open-circuit (OC) electrodes of the patches. This linear two-scale computational framework may be useful for the optimal design of active structure multi-functional composites which can be used for multi-functional applications such as structural health monitoring, power harvest, vibration sensing and control, damping, and shape control through anisotropic actuation.
机译:本文提出了一种线性计算均质化框架,以评估具有压电结构纤维(PSF)复合元件的自适应结构的有效(或广义)机电耦合系数(EMCC)。 PSF由碳化硅(SiC)或碳芯纤维组成,可作为易碎压电陶瓷外壳的增强材料。对于微尺度分析,基于变分渐近方法的单细胞均质化(VAMUCH)的微力学模型用于评估PSF复合材料的整体机电性能。在宏观尺度上,使用商业FE代码ABAQUS进行了有限元(FE)分析,以评估具有PSF复合补丁的结构的有效EMCC。 EMCC经过贴片的短路(SC)和开路(OC)电极下的自由振动分析后处理。这种线性的两尺度计算框架可用于主动结构多功能复合材料的优化设计,该结构可用于多功能应用,例如结构健康监测,功率收集,振动传感和控制,阻尼以及通过形状控制各向异性驱动。

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