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VOLTAGE RESPONSE OF PARAMETRIC RESONANCE OF DOUBLE WALL CARBON NANOTUBE UNDER ELECTROSTATIC ACTUATION

机译:静电致动下双壁碳纳米管参数谐振的电压响应

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In this paper, the Method of Multiple Scales is used to investigate the influences of damping and detuning frequency parameters on the amplitude-voltage response of an electrostatically actuated double-walled carbon nanotube. The forces responsible for the nonlinearities in the vibrational behavior are intertube van der Waals and electrostatic forces. Herein, the coaxial case is investigated, which eliminates the influence of the cubic van der Waals in the first-order solution. The double-walled carbon nanotube structure is modelled as a cantilever beam with Euler-Bernoulli beam assumptions since the double-walled carbon nanotube is characterized with high length-diameter ratio. The results shown assume steady-state solutions in the first-order Method of Multiple Scales solution. The importance of the results in this paper are the effect of damping and detuning frequency on the Hopf bifurcations, as these define the intervals of voltage for nonzero amplitudes.
机译:本文使用多种尺度的方法来研究阻尼和静脉谐波频率参数对静电双壁碳纳米管的幅度电压响应的影响。负责振动行为中非线性的力是InterTube范德华和静电力。在此,研究了同轴壳体,其消除了立方范德华在一阶解决方案中的影响。双壁碳纳米管结构被建模为具有Euler-Bernoulli光束假设的悬臂梁,因为双壁碳纳米管具有高长直径比。结果显示了在多尺度解决方案的一阶方法中采用稳态解决方案。本文中的结果的重要性是阻尼和抗损伤频率对跳跃分叉频率的影响,因为它们定义了非零幅度的电压间隔。

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