压电层状半空间上的时谐载荷

IF 2.4 3区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Intelligent Material Systems and Structures Pub Date : 2023-07-30 DOI:10.1177/1045389x231188604
S. Nirwal, Chih‐Ping Lin, Q. K. Tran, E. Pan
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引用次数: 0

摘要

多层压电陶瓷的数学建模由于其快速响应、定位、光学系统、振动反馈以及变形和振动控制等传感器的独特优势而备受关注。因此,PE结构的基本解决方案至关重要。本文给出了多层横向各向同性(TI) PE层状半空间中的三维(3D)静态和动态解(即格林函数)。均匀垂直机械荷载、垂直电位移和水平机械荷载作用于结构表面。采用计算能力更强、更精简的新型傅里叶-贝塞尔级数(FBS)矢量函数系统和双变量位置(DVP)方法求解相关的边值问题。用向量函数的FBS系统得到了两个一阶常微分方程系统(即LM-型和n型),这些展开系数为Love数。采用DVP方法建立了展开系数的递归关系,使相邻两层合并成一个新的层,极大地减少了计算量。通过应用适当的边界/界面条件,得到相应的物理域解。通过对静态和动态响应的数值算例进行求解,并与已有的简化情况下的结果验证了所提方法的有效性和准确性。提供的解决方案可能有助于PE材料、配置、制造和应用的更好发展。
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Time-harmonic loading over a piezoelectric layered half-space
Mathematical modeling of multilayered piezoelectric (PE) ceramic substantially acquires attention due to its distinctive advantages of fast response time, positioning, optical systems, vibration feedback, and sensors, such as deformation and vibration control. As such, fundamental solution of a PE structure is essential. This paper presents three-dimensional (3D) static and dynamic solutions (i.e. Green’s functions) in a multilayered transversally isotropic (TI) PE layered half-space. The uniform vertical mechanical load, vertical electrical displacement, and horizontal mechanical load are applied on the surface of the structure. The novel Fourier-Bessel series (FBS) system of vector functions (which is computationally more powerful and streamlined) and the dual-variable and position (DVP) method are employed to solve the related boundary-value problem. Two systems of first-order ordinary differential equations (i.e. the LM- and N-types) are obtained in terms of the FBS system of vector functions, with these expansion coefficients being the Love numbers. A recursive relation for the expansion coefficients is established by using DVP method that facilitates the combination of two neighboring layers into a new one and minimizes the computational effort to a great extent. The corresponding physical-domain solutions are acquired by applying the appropriate boundary/interface conditions. Several numerical examples pertaining to static and dynamic response are solved, and the efficiency and accuracy of the proposed solutions are validated with the existing results for the reduced cases. The solutions provided could be beneficial to better developments of PE materials, configurations, fabrication, and applications in the future.
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来源期刊
Journal of Intelligent Material Systems and Structures
Journal of Intelligent Material Systems and Structures 工程技术-材料科学:综合
CiteScore
5.40
自引率
11.10%
发文量
126
审稿时长
4.7 months
期刊介绍: The Journal of Intelligent Materials Systems and Structures is an international peer-reviewed journal that publishes the highest quality original research reporting the results of experimental or theoretical work on any aspect of intelligent materials systems and/or structures research also called smart structure, smart materials, active materials, adaptive structures and adaptive materials.
期刊最新文献
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