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Damping vibration Studies of scanning near-field optical microscope

机译:扫描近场光学显微镜的阻尼振动研究

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Scanning near-field optical microscopy (SNOM) is one of the major proximal probe technologies for obtaining high-resolution images beyond the diffraction limit of light and to fabricate nanometer-scale structures. The effect of interactive damping on the flexural vibration frequency for the scanning near-field optical microscope (SNOM) fiber probe based on the Timoshenko beam (including the effects of shear deformation and rotary inertia) theory, has been analyzed. The effects of the transverse contact stiffness, damping factor and the ratio of different probe dimensions on the damping vibration frequency were studied. The results show that increasing the ratio of probe length to radius increases the damping vibration frequency of mode 1.The damping vibration frequencies, based on the Bernoulli-Euler beam theory and the Timoshenko beam theory, are compared. When the contact stiffness is very large for the higher modes, the effects of shear deformation and rotary inertia on the frequency becomes significant. Furthermore, increasing the damping factor increases the vibration frequency, especially for dimensionless damping factor ηf>0.4.
机译:扫描近场光学显微镜(SNOM)是主要的近端探针技术之一,用于获得超出光衍射极限的高分辨率图像并制造纳米级结构。分析了基于Timoshenko束的交互式阻尼对扫描近场光学显微镜(SNOM)光纤探针的弯曲振动频率的影响(包括剪切变形和旋转惯性的影响)。研究了横向接触刚度,阻尼系数和不同探头尺寸比对阻尼振动频率的影响。结果表明,增加探头长度与半径的比值会增加模式1的阻尼振动频率。比较了基于Bernoulli-Euler束理论和Timoshenko束理论的阻尼振动频率。当较高模式的接触刚度非常大时,剪切变形和旋转惯量对频率的影响变得明显。此外,增加阻尼系数会增加振动频率,特别是对于无量纲的阻尼系数ηf> 0.4而言。

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