一种新型补体夹层结构的受控动态响应:一种可调的带有双fg纳米复合材料皮肤的四手核

IF 2.7 3区 材料科学 Q2 ENGINEERING, MECHANICAL
Bibhu Prasad Mahapatra, Dipak Kumar Maiti, Prasun Jana
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引用次数: 0

摘要

本研究通过代表性体积元均质辅助有限元(FE)方法,对手性单元格尺寸进行了微尺度的关注,探讨了附着有双功能梯度(FG)纳米复合材料皮肤的四手性辅助核心组成的智能辅助夹层板的自由振动和受控动态行为。压电传感器-致动器对,加上匀速反馈控制器,有效地衰减在机械元结构中产生的振动。利用基于能量的变分原理得到基于一阶剪切变形理论的受控动力运动方程,并考虑二次插值函数在有限元框架下求解。研究结果表明,辅助芯的单元胞的设计参数(即韧带臂的长度和细胞壁的厚度)可以显著改变手性核心层的柔韧性,从而极大地影响夹层元结构的自由振动和受控动态响应。此外,碳纳米管增强到蒙皮层的FG基质-共混物(Al-ZrO2)中,大大改善了夹层板的结构响应。该研究与现有文献相对照,验证了其数值方法,并解决了几个影响参数对所提出的减振结构微观和宏观力学性能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Controlled dynamic response of a novel auxetic sandwich structure: A tunable tetrachiral core with dual-FG nanocomposite skin

This study explores the free vibration and controlled dynamic behaviour of smart auxetic sandwich panel consisting a tetrachiral auxetic core affixed with dual-functionally graded (FG) nanocomposite skins, using a microscale-focus on chiral unit cell size through representative volume element homogenization-assisted finite element (FE) approach. A piezoelectric sensor-actuator pair, coupled with a constant velocity feedback controller, effectively attenuates vibrations produced in the mechanical meta structure. Controlled dynamic motion equations based on the first order shear deformation theory are obtained via energy-based variational principle and solved under FE framework, considering quadratic interpolation functions. Key findings highlight that, the design parameters of the auxetic core’s unit cell (i.e. ligament arm length and thickness of the cell walls) can significantly alter the ease of flexibility of the chiral core layer, which in turn drastically affects the free vibration and controlled dynamic responses of the sandwich meta structure. Also, carbon nanotube reinforcement into the FG matrix-blend (Al-ZrO2) of the skin layers substantially improves the structural responses of the sandwich panel. The study validates its numerical approach against existing literature and addresses the impact of several influencing parameters on the micro and macro-mechanical performances of the proposed auxetic structure.

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来源期刊
International Journal of Mechanics and Materials in Design
International Journal of Mechanics and Materials in Design ENGINEERING, MECHANICAL-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
6.00
自引率
5.40%
发文量
41
审稿时长
>12 weeks
期刊介绍: It is the objective of this journal to provide an effective medium for the dissemination of recent advances and original works in mechanics and materials'' engineering and their impact on the design process in an integrated, highly focused and coherent format. The goal is to enable mechanical, aeronautical, civil, automotive, biomedical, chemical and nuclear engineers, researchers and scientists to keep abreast of recent developments and exchange ideas on a number of topics relating to the use of mechanics and materials in design. Analytical synopsis of contents: The following non-exhaustive list is considered to be within the scope of the International Journal of Mechanics and Materials in Design: Intelligent Design: Nano-engineering and Nano-science in Design; Smart Materials and Adaptive Structures in Design; Mechanism(s) Design; Design against Failure; Design for Manufacturing; Design of Ultralight Structures; Design for a Clean Environment; Impact and Crashworthiness; Microelectronic Packaging Systems. Advanced Materials in Design: Newly Engineered Materials; Smart Materials and Adaptive Structures; Micromechanical Modelling of Composites; Damage Characterisation of Advanced/Traditional Materials; Alternative Use of Traditional Materials in Design; Functionally Graded Materials; Failure Analysis: Fatigue and Fracture; Multiscale Modelling Concepts and Methodology; Interfaces, interfacial properties and characterisation. Design Analysis and Optimisation: Shape and Topology Optimisation; Structural Optimisation; Optimisation Algorithms in Design; Nonlinear Mechanics in Design; Novel Numerical Tools in Design; Geometric Modelling and CAD Tools in Design; FEM, BEM and Hybrid Methods; Integrated Computer Aided Design; Computational Failure Analysis; Coupled Thermo-Electro-Mechanical Designs.
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