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Geometrically nonlinear dynamic behavior on detection sensitivity of carbon nanotube-based mass sensor using finite element method

机译:碳纳米管基质量传感器基于有限元方法的几何非线性动力学行为

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The principle of mass detection using carbon nanotube (CNT) resonators is based on the detection of the resonant frequency shift due to an attached mass. Although CNT resonators can easily show a nonlinear oscillation behavior, there is a lack of studies on the influence of the design parameters and the nonlinear dynamic behavior on the detection sensitivity of CNT-based mass sensors. In addition, most of the finite element method (FEM) analysis models that are used to predict the resonant frequency shift due to attached masses have been implemented in the linear oscillation regime. In order to enhance the sensing performance of the CNT-based mass sensor, a parametric study of the resonant frequency shift is conducted herein with respect to the attached mass, the electrostatic force, the initial tension and the CNT length, using an FEM-based nonlinear analysis model. The FE model is applied to solve the nonlinear dynamic behavior of CNT resonators using direct time integration and the solution is verified by its comparison to the corresponding analytical solution that had been validated in previous studies. The analysis results of the nonlinear dynamic behavior of the CNT resonator indicate that the CNT length plays a key role in the detection sensitivity, and the amount of electrostatic force determines the linear or nonlinear oscillation behavior of the resonator. It is shown that the detection sensitivity can be improved using the nonlinear oscillation behavior and this improvement is more effective with longer CNTs. This study's results justify the possibility and validity of FEM use for the analysis of the nonlinear behavior of CNT resonators and elucidate the relationship between the design parameters and the nonlinear behavior of the CNT-based mass sensor in enhancing the sensing performance.
机译:使用碳纳米管(CNT)谐振器进行质量检测的原理是基于对由于附着质量引起的谐振频率偏移的检测。尽管CNT谐振器可以很容易地表现出非线性振荡行为,但仍缺乏关于设计参数和非线性动态行为对基于CNT的质量传感器检测灵敏度的影响的研究。此外,大多数用于预测由于附着质量而引起的共振频率偏移的有限元方法(FEM)分析模型已在线性振荡方案中实现。为了增强基于CNT的质量传感器的传感性能,本文使用基于FEM的方法对附着质量,静电力,初始张力和CNT长度进行了共振频率偏移的参数研究。非线性分析模型。有限元模型被应用来利用直接时间积分来解决CNT谐振器的非线性动力学行为,并且通过与先前研究中已验证的相应解析解进行比较来验证该解。碳纳米管谐振器非线性动力学行为的分析结果表明,碳纳米管长度在检测灵敏度中起关键作用,静电力的大小决定了碳纳米管谐振器的线性或非线性振荡行为。结果表明,使用非线性振荡行为可以提高检测灵敏度,并且对于更长的CNT,这种提高更为有效。这项研究的结果证明了有限元法用于分析CNT谐振器非线性行为的可能性和有效性,并阐明了设计参数与基于CNT的质量传感器的非线性行为之间的关系,以增强传感性能。

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