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CMOS systems and circuits for sub-degree per hour MEMS gyroscopes.

机译:每小时亚度MEMS陀螺仪的CMOS系统和电路。

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摘要

Micromachined gyroscopes constitute one of the fastest growing segments of the microsensor market. The application domain of these devices is quickly expanding from automotive to consumer and personal navigation systems. Examples include anti-skid and safety systems in cars and image stabilization in digital cameras. However, MEMS angular rate sensors today do not meet the sub-degree-per-hour resolution and bias drift requirements needed in high precision applications such as inertial measurement units (IMU) for GPS augmented navigation, robotics, unmanned surveillance vehicles, aircraft and personal heading references.;The objective of our research is to develop system architectures and CMOS circuits that interface with high-Q silicon micromachined vibratory gyroscopes to implement navigation-grade angular rate sensors. The MEMS sensor used in this work is an in-plane bulk-micromachined mode-matched tuning fork gyroscope (M2 - TFG), fabricated on silicon-on-insulator substrate. The use of CMOS transimpedance amplifiers (TIA) as front-ends in high-Q MEMS resonant sensors is explored. A T-network TIA is proposed as the front-end for resonant capacitive detection. The implemented T-network TIA provides on-chip transimpedance gains of up to 25MO, has a measured capacitive resolution of 0.02aF/√Hz at 15kHz, a wide dynamic range of 104dB in a bandwidth of 10Hz and consumes 400muW of power.;Another important contribution of this work was developing a scheme to substantially improve the noise and drift of micromachined gyroscopes by adaptively biasing the mechanical structure, such that the sensor is operated in so-called mode-matched condition. Mode-matching leverages the inherently high quality factors of the microgyroscope and results in significant improvement in the Brownian noise floor, electronic noise, sensitivity and bias drift of a microgyroscope. We developed a novel architecture that utilizes the often ignored residual quadrature error in a gyroscope to achieve and maintain perfect mode-matching (i.e. 0Hz split between the drive and sense mode frequencies), as well as electronically control the sensor bandwidth.;A CMOS implementation was developed that allowed mode-matching of the drive and sense frequencies of a gyroscope at a fraction of the time taken by current state-of-the-art techniques. Further, this mode-matching technique allows for maintaining a controlled separation between the drive and sense resonant frequencies, providing a means to increasing sensor bandwidth as well as dynamic range. The mode-matching CMOS IC, implemented in a 0.5mum 2P3M process, and control algorithm have been interfaced with a 60mum thick mode-matched tuning fork gyroscope (M2 - TFG) to implement an angular rate sensor with bias drift as low as 0.3°/hr---two orders of magnitude lower than commercially available gyroscopes and the lowest recorded to date for a silicon MEMS gyro.
机译:微机械陀螺仪构成微传感器市场增长最快的部分之一。这些设备的应用领域正在迅速从汽车扩展到消费和个人导航系统。例如,汽车的防滑和安全系统以及数码相机的图像稳定功能。但是,如今的MEMS角速度传感器无法满足高精度应用(例如GPS增强导航的惯性测量单元(IMU),机器人技术,无人侦察车,飞机和个人应用)所要求的每小时亚度分辨率和偏置漂移要求。我们研究的目的是开发与高Q硅微机械振动陀螺仪接口的系统架构和CMOS电路,以实现导航级角速率传感器。在这项工作中使用的MEMS传感器是在绝缘体上硅衬底上制造的面内批量微机械模式匹配音叉陀螺仪(M2-TFG)。探索了在高Q MEMS谐振传感器中将CMOS跨阻放大器(TIA)用作前端的问题。提出了一种T网络TIA作为谐振电容检测的前端。实施的T网络TIA提供高达25MO的片上互阻增益,在15kHz时测得的电容分辨率为0.02aF /√Hz,在10Hz的带宽中具有104dB的宽动态范围,并消耗了400μW的功率。这项工作的重要贡献是开发了一种通过自适应偏置机械结构来显着改善微机械陀螺仪的噪声和漂移的方案,从而使传感器在所谓的模式匹配条件下工作。模式匹配利用了微陀螺仪固有的高品质因数,并显着改善了布朗陀螺仪的本底噪声,电子噪声,灵敏度和偏置漂移。我们开发了一种新颖的架构,该架构利用陀螺仪中经常被忽略的残留正交误差来实现并保持完美的模式匹配(即,驱动模式和感测模式频率之间为0Hz的分配),并以电子方式控制传感器带宽。开发出的技术可以使陀螺仪的驱动频率与感测频率进行模式匹配,而所需的时间仅为当前最新技术的一小部分。此外,这种模式匹配技术允许在驱动和感测谐振频率之间保持受控的间隔,从而提供了一种增加传感器带宽以及动态范围的手段。采用0.5mum 2P3M工艺实现的模式匹配CMOS IC和控制算法已与60mum厚的模式匹配音叉陀螺仪(M2-TFG)相连,以实现角度漂移低至0.3°的角速率传感器/ hr--比市售的陀螺仪低两个数量级,是迄今为止硅MEMS陀螺仪记录的最低值。

著录项

  • 作者

    Sharma, Ajit.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 181 p.
  • 总页数 181
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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