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Comprehensive numerical characterization of a piezoelectric composite with hollow metallic inclusions using an adaptable random representative volume

机译:使用自适应随机代表体积对具有空心金属夹杂物的压电复合材料进行全面的数值表征

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This paper investigates a piezoelectric composite made up of a piezoceramic matrix with irregularly scattered random-sized hollow metal inclusions. This composite can be produced using a combination of porous ceramic fabrication methods and microcapsule transfer techniques that were previously utilized to deliver nanoparticle medicines in biomedical applications. The effective material characteristics were computed using a numerical homogenization methodology that included finite element analysis, random representative volume element, perfect contact between distinct phases, special linear boundary conditions, and the Hill-Mandel principle. To imitate the random distribution of inclusions inside a particle filled composite, the relationship describing the inclusion's volume fraction was adjusted by adding a regularity coefficient. Thus, a new representative volume was designed to study the effect of the nonuniform distribution of randomly sized inclusions on the effective coefficients of the composite. An analysis of the effective properties of this new composite system with metalized pores surfaces (SMPS) revealed the following features. Due to the presence of metallic impurities, the resulting electric induction field or mechanical stress field inside the piezoelectric phase is scattered, which raises the transverse piezoelectric moduli with the increase of the inclusion's volume fraction. Also, the electrical permittivity coefficients increase steadily with the increase in the portion of the metallic impurities. According to the findings, the volume fraction of the inclusion can be considered the most critical parameter to modify the electromechanical characteristics of the SMPS. The effects of the regularity coefficient on the equivalent properties increase as the inclusion's volume fraction increases. The effective dielectric constants decrease as the degree of regularity of the composite structure grows, increasing the effectiveness of the piezoelectric transducer in transverse energy harvesting and motor applications. The findings of the newly constructed representative volume were verified using a basic periodic unit-cell and a random representative volume based on the random sequential adsorption (RSA) method. The developed structure of the representative volume can be applied to simulate a wide range of composites in the form of solid particles. Piezoelectric transducers constructed from the proposed piezocomposite are predicted to function well in piezoelectric motors and transverse piezoelectric sensors.(c) 2022 Elsevier Ltd. All rights reserved.
机译:本文研究了一种由压电陶瓷基体组成的压电复合材料,该基体具有不规则散射的随机大小的空心金属夹杂物。这种复合材料可以使用多孔陶瓷制造方法和微胶囊转移技术的组合来生产,这些技术以前用于在生物医学应用中递送纳米颗粒药物。使用数值均质化方法计算了有效材料特性,该方法包括有限元分析、随机代表性体积元、不同相之间的完美接触、特殊的线性边界条件和 Hill-Mandel 原理。为了模拟颗粒填充复合材料内夹杂物的随机分布,通过添加规则系数来调整描述夹杂物体积分数的关系。因此,设计了一个新的代表性体积来研究随机大小夹杂物的不均匀分布对复合材料有效系数的影响。对这种具有金属化孔隙表面(SMPS)的新型复合材料体系的有效性能的分析揭示了以下特征。由于金属杂质的存在,压电相内部产生的电感应场或机械应力场被散射,随着夹杂物体积分数的增加,横向压电模量增加。此外,介电常数随着金属杂质部分的增加而稳步增加。根据研究结果,夹杂物的体积分数可以被认为是改变SMPS机电特性的最关键参数。规律系数对等效性质的影响随着夹杂物体积分数的增加而增加。有效介电常数随着复合材料结构规则性程度的增加而降低,从而提高了压电换能器在横向能量收集和电机应用中的有效性。采用基本周期性晶胞和基于随机顺序吸附(RSA)方法的随机代表性体积验证了新构建代表性体积的结果。所开发的代表性体积结构可用于模拟固体颗粒形式的各种复合材料。由所提出的压电复合材料构建的压电换能器预计将在压电电机和横向压电传感器中发挥良好作用。(c) 2022 爱思唯尔有限公司保留所有权利。

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