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Measurement of the elastic modulus of nanowires based on resonant frequency and boundary condition effects

机译:基于谐振频率和边界条件效应的纳米线弹性模量测量

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The elastic modulus of nanowires can be measured by resonant frequency method, in which the elastic modulus is determined using the classical theory of beam deflection. However, the measurement accuracy of the elastic modulus obtained from the resonant frequency can be largely affected by theoretical models and boundary conditions. In the present paper, a theoretical model is developed by considering nonlocal interactions and boundary condition effects of cantilever support Based on the proposed model, we investigate the influence of nonlocal parameter and elastic foundation on the elastic modulus of carbon nanotubes (CNTs). The results show that the resonant frequency of CNTs is affected by the clamped cantilever condition. Support stiffness and clamped length of CNTS cannot be ignored in determining the elastic modulus of CNTs, especially for CNTs with low stiffness support After considering the boundary conditions, the influence of cantilever support on the frequency is effectively removed, and the elastic modulus can be precisely determined by measuring the resonant frequency.
机译:纳米线的弹性模量可以通过谐振频率方法测量,其中使用梁偏转的经典理论确定弹性模量。然而,从谐振频率获得的弹性模量的测量精度可以很大程度上受理论模型和边界条件的影响。在本文中,通过考虑基于所提出的模型,考虑悬臂支持的非局部相互作用和边界条件效应来开发理论模型,研究了非局部参数和弹性基础对碳纳米管(CNT)弹性模量的影响。结果表明,CNT的共振频率受到夹紧悬臂状的影响。在确定CNT的弹性模量时,不能忽略CNT的支撑刚度和夹紧长度,特别是对于在考虑边界条件之后具有低刚度支撑的CNT,有效地去除悬臂支撑对频率的影响,并且弹性模量可以精确地去除通过测量谐振频率来确定。

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