Mitigating rim bending in fused silica micro shell resonators by a chamfered mold

IF 1.5 Q2 ENGINEERING, MULTIDISCIPLINARY
Hoon Yu, Taeyun Kim, Seongmin Ju and Tae-Yoon Kwon
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Abstract

In this work, we addressed the bending of a micro shell resonator’s rim toward the stem during glass-blowing process. This phenomenon occurs due to increased heat loss at the mold’s edge and reduced heat flux at the side of the Gaussian heat source. To mitigate rim bending and the subsequent reduction in capacitance between the rim and 3D electrodes, which can degrade performance in micro glass-blown shell resonators for gyroscopes, we propose two potential mold solutions, using short-stem mold and chamfered mold. To quantitatively compare resonators created by these two types of molds, we calculated the noise factor for predicting its gyroscope performance. From these calculations, we find out that using the chamfered mold enables us to increase in the resonator’s effective mass, eigenfrequency, angular gain, and quality factor, consequently reducing the noise factor compared to using the short-stem mold. We also demonstrated these results by manufacturing shell resonators and measuring its vibrational characteristics. After metalization of the glass shell resonator, Q factor and eigen frequency of n = 2 vibration mode along the primary (secondary) axis were measured to 622,466 ± 6,427 (619,793 ± 6,402) and 4,343 ± 40 Hz (4,350 ± 40 Hz), respectively. This simulation process will assist us in getting insight into understanding a shell resonator as a gyroscope, designing a mold and determining experimental conditions.
通过倒角模具减轻熔融石英微壳谐振器的边缘弯曲
在这项工作中,我们解决了玻璃吹制过程中微壳谐振器边缘向阀杆弯曲的问题。出现这种现象的原因是模具边缘的热损失增加以及高斯热源一侧的热通量减少。为了减轻边缘弯曲以及随之而来的边缘和三维电极之间电容的减少,从而降低陀螺仪用微型玻璃吹制外壳谐振器的性能,我们提出了两种可能的模具解决方案,即使用短杆模具和倒角模具。为了定量比较这两种模具制造的谐振器,我们计算了噪声系数,以预测其陀螺仪性能。通过这些计算,我们发现与使用短杆模具相比,使用倒角模具可以增加谐振器的有效质量、特征频率、角度增益和品质因数,从而降低噪声系数。我们还通过制造外壳谐振器和测量其振动特性来证明这些结果。玻璃壳谐振器金属化后,测得 Q 因子和 n = 2 振动模式沿主(次)轴的特征频率分别为 622,466 ± 6,427 (619,793 ± 6,402) 和 4,343 ± 40 Hz (4,350 ± 40 Hz)。这一模拟过程将有助于我们深入了解作为陀螺仪的壳谐振器、设计模具和确定实验条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Engineering Research Express
Engineering Research Express Engineering-Engineering (all)
CiteScore
2.20
自引率
5.90%
发文量
192
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