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激励幅度对原子力显微镜-透射电镜微悬臂梁系统动态特性的影响研究及等效电路的实现

Investigation on the Impact of Excitation Amplitude on AFM-TM Microcantilever Beam System's Dynamic Characteristics and Implementation of an Equivalent Circuit.

作者信息

Song Peijie, Li Xiaojuan, Cui Jianjun, Chen Kai, Chu Yandong

机构信息

School of Electrical Engineering. Lanzhou Jiaotong University, Lanzhou 730070, China.

Gansu Institute of Metrology, Lanzhou 730050, China.

出版信息

Sensors (Basel). 2023 Dec 25;24(1):107. doi: 10.3390/s24010107.

Abstract

Alterations in the dynamical properties of an atomic force microscope microcantilever beam system in tapping mode can appreciably impact its measurement precision. Understanding the influence mechanism of dynamic parameter changes on the system's motion characteristics is vital to improve the accuracy of the atomic force microscope in tapping mode (AFM-TM). In this study, we categorize the mathematical model of the AFM-TM microcantilever beam system into systems 1 and 2 based on actual working conditions. Then, we analyze the alterations in the dynamic properties of both systems due to external excitation variations using bifurcation diagrams, phase trajectories, Lyapunov indices, and attraction domains. The numerical simulation results show that when the dimensionless external excitation < 0.183, the motion state of system 2 is period 1. When < 0.9, the motion state of system 1 is period 1 motion. Finally, we develop the equivalent circuit model of the AFM-TM microcantilever beam and perform related software simulations, along with practical circuit experiments. Our experimental results indicate that the constructed equivalent circuit can effectively analyze the dynamic characteristics of the AFM-TM microcantilever beam system in the presence of complex external environmental factors. It is observed that the practical circuit simulation attenuates high-frequency signals, resulting in a 31.4% reduction in excitation amplitude compared to numerical simulation results. This provides an essential theoretical foundation for selecting external excitation parameters for AFM-TM cantilever beams and offers a novel method for analyzing the dynamics of micro- and nanomechanical systems, as well as other nonlinear systems.

摘要

轻敲模式下原子力显微镜微悬臂梁系统动力学特性的改变会显著影响其测量精度。了解动态参数变化对系统运动特性的影响机制对于提高轻敲模式原子力显微镜(AFM-TM)的精度至关重要。在本研究中,我们根据实际工作条件将AFM-TM微悬臂梁系统的数学模型分为系统1和系统2。然后,我们使用分岔图、相轨迹、李雅普诺夫指数和吸引域分析了由于外部激励变化导致的两个系统动态特性的改变。数值模拟结果表明,当无量纲外部激励<0.183时,系统2的运动状态为周期1。当<0.9时,系统1的运动状态为周期1运动。最后,我们建立了AFM-TM微悬臂梁的等效电路模型并进行了相关软件模拟以及实际电路实验。我们的实验结果表明,所构建的等效电路能够在存在复杂外部环境因素的情况下有效地分析AFM-TM微悬臂梁系统的动态特性。观察到实际电路模拟会衰减高频信号,与数值模拟结果相比,激励幅度降低了31.4%。这为选择AFM-TM悬臂梁的外部激励参数提供了重要的理论基础,并为分析微纳机械系统以及其他非线性系统的动力学提供了一种新颖的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67b4/10781406/b777c1649944/sensors-24-00107-g001.jpg

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