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The Application of Chemical Foaming Method in the Fabrication of Micro Glass Hemisphere Resonator

机译:化学发泡法在微玻璃半球谐振器制造中的应用

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摘要

Many researchers have studied the miniaturization of the hemisphere resonator gyroscope for decades. The hemisphere resonator (HSR), as the core component, has a size that has been reduced to the submillimeter level. We developed a method of batch production of micro-hemisphere shell resonators based on a glass-blowing process to obtain larger hemisphere shells with a higher ratio of height to diameter (H/D), we introduced the chemical foaming process (CFP) and acquired an optimized hemisphere shell; the contrasted and improved H/D of the hemisphere shell are 0.61 and 0.80, respectively. Finally, we increased the volume of glass shell resonator by 51.48 times while decreasing the four-node wineglass resonant frequencies from 7.24 MHz to 0.98 MHz. The larger HSR with greater surface area is helpful for setting larger surrounding drive and sense capacitive electrodes, thereby enhancing the sensitivity of HSR to the rotation. This CFP method not only provides more convenience to control the shape of a hemisphere shell but also reduces non-negligible cost in the fabrication process. In addition, this method may inspire some other research fields, e.g., microfluidics, chemical analysis, and wafer level package (WLP).
机译:数十年来,许多研究人员研究了半球谐振陀螺仪的小型化。作为核心组件的半球谐振器(HSR)的尺寸已减小到亚毫米级。我们开发了一种基于玻璃吹制工艺的批量生产半球壳谐振器的方法,以获得具有更高的高径比(H / D)的更大的半球壳,我们引入了化学发泡工艺(CFP)并获得了优化的半球壳;半球壳的对比度和改进的H / D分别为0.61和0.80。最后,我们将玻璃壳共振器的体积增加了51.48倍,同时将四节点酒杯共振频率从7.24 MHz降低到0.98 MHz。具有较大表面积的较大HSR有助于设置较大的周围驱动电极和感测电容电极,从而增强HSR对旋转的敏感性。这种CFP方法不仅为控制半球壳的形状提供了更多便利,而且降低了制造过程中不可忽略的成本。此外,这种方法可能会激发其他一些研究领域,例如微流体,化学分析和晶圆级封装(WLP)。

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