Exploring gradual material rigidity degradation effects on the nonlinear coupled axial-transversal nonlinear response of a capacitive micro-beam

IF 4.2 2区 工程技术 Q1 MECHANICS European Journal of Mechanics A-Solids Pub Date : 2024-07-01 Epub Date: 2024-05-03 DOI:10.1016/j.euromechsol.2024.105334
Mohammad Asadi , Ghader Rezazadeh , Vladimir Vladimirovich Sinitsin
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Abstract

The accumulation of damage in materials due to crack propagation can lead them to unpredicted failures. This phenomenon is particularly relevant in materials science, engineering, and other fields where structures or components are subjected to repeated loading, cyclic stresses, or environmental factors. In this paper, the mechanical behavior of a microelectromechanical system subjected to cyclic loads has been modeled, when the stiffness of the material gradually is decreased. As a case study the dynamic response of a micro-beam to DC bias voltage as a static load and AC harmonic voltage as a cyclic load has been studied. The nonlinear coupled equations have been formed and converted to time-dependent ones using a spatial discretization method. Due to long-term integration over time, to achieve more accurate results besides direct 4th order Runge-Kutta integration method, a temporal decomposition method has been used to solve the coupled nonlinear ordinary differential equations. To realize this method, a temporal decomposed solution based on the physical nature of the problem is presented in the form of slow-growing terms and fast-altering harmonic terms with gradually-growing amplitudes. To find the coefficient of these terms a least square method has been utilized to minimize a cost function in a given dynamic time-interval, where the independency of the results to this interval has been assessed. Also, the nonlinear frequency behavior of the proposed model has been studied when the system has suffered various damages. Due to considering gradual rigidity degradation of the material interesting dynamic responses have been observed, that can help to expand the insight in the design of structures.

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探索材料刚度逐渐退化对电容式微梁非线性轴向-横向耦合非线性响应的影响
裂纹扩展造成的材料损伤累积会导致材料发生不可预知的故障。这种现象与材料科学、工程学以及其他结构或部件受到重复负载、循环应力或环境因素影响的领域尤为相关。本文模拟了当材料刚度逐渐减小时,微电子机械系统在循环负载下的机械行为。作为案例研究,研究了微梁对作为静态负载的直流偏置电压和作为循环负载的交流谐波电压的动态响应。非线性耦合方程已经形成,并通过空间离散化方法转换为与时间相关的方程。由于时间上的长期积分,除了直接的四阶 Runge-Kutta 积分法外,为了获得更精确的结果,还使用了时序分解法来求解耦合非线性常微分方程。为了实现这种方法,根据问题的物理本质,以缓慢增长项和振幅逐渐增长的快速变化谐波项的形式提出了时间分解解。为了找到这些项的系数,采用了最小二乘法,以最小化给定动态时间区间内的成本函数,并对结果与该区间的独立性进行了评估。此外,还研究了当系统受到各种损坏时,所提议模型的非线性频率行为。由于考虑到材料刚度的逐渐退化,我们观察到了有趣的动态响应,这有助于扩展结构设计的洞察力。
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来源期刊
CiteScore
7.00
自引率
7.30%
发文量
275
审稿时长
48 days
期刊介绍: The European Journal of Mechanics endash; A/Solids continues to publish articles in English in all areas of Solid Mechanics from the physical and mathematical basis to materials engineering, technological applications and methods of modern computational mechanics, both pure and applied research.
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