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AIR DAMPING OF MICROBEAM RESONATORS IN A LOW VACUUM

机译:低真空中微波谐振器的空气阻尼

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This paper presents a theoretical and numerical study of air damping of microbeam resonators oscillating in a low vacuum. Particular focus is on air flows that are in the free-molecule regime. First, a careful review of previous theoretical studies was conducted.. Limitations and errors associated with these studies have been pointed out. In particular, we have found the assumptions used in some studies, in which analytical expressions are derived, lead to an over-predicted quality factor (by a factor of two). A Molecular Dynamics (MD) code was then developed and used to predict and study air damping of a microbeam resonator oscillating vertically in a low vacuum. A very good agreement with experimental measurements in the low pressure range has been obtained. The effects of important parameters such as oscillation frequency and amplitude on the quality factor were also investigated.
机译:本文介绍了在低真空中振荡的微观谐振器空气阻尼的理论和数值研究。特别重点是在自由分子制度中的空气流量上。首先,对以前的理论研究进行了仔细审查。有指出了与这些研究相关的限制和错误。特别地,我们已经发现了一些研究中使用的假设,其中导出了分析表达式,导致过度预测的质量因数(倍数二)。然后开发了分子动力学(MD)代码并用于预测和研究在低真空中垂直振荡的微观谐振器的空气阻尼。已经获得了对低压范围内的实验测量非常良好的一致性。还研究了重要参数的影响,例如振荡频率和质量因子上的振幅。

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