State Key Laboratory of Precision Measurement Technology and Instrument, Department of Precision Instruments and Mechanology, Tsinghua University, Beijing 100084, China.
Sensors (Basel). 2010;10(9):8304-15. doi: 10.3390/s100908304. Epub 2010 Sep 2.
Micromachined thermal gas inertial sensors based on heat convection are novel devices that compared with conventional micromachined inertial sensors offer the advantages of simple structures, easy fabrication, high shock resistance and good reliability by virtue of using a gaseous medium instead of a mechanical proof mass as key moving and sensing elements. This paper presents an analytical modeling for a micromachined thermal gas gyroscope integrated with signal conditioning. A simplified spring-damping model is utilized to characterize the behavior of the sensor. The model relies on the use of the fluid mechanics and heat transfer fundamentals and is validated using experimental data obtained from a test-device and simulation. Furthermore, the nonideal issues of the sensor are addressed from both the theoretical and experimental points of view. The nonlinear behavior demonstrated in experimental measurements is analyzed based on the model. It is concluded that the sources of nonlinearity are mainly attributable to the variable stiffness of the sensor system and the structural asymmetry due to nonideal fabrication.
基于热对流的微机械热气体惯性传感器是一种新型器件,与传统的微机械惯性传感器相比,它采用气体介质代替机械质量作为关键的运动和传感元件,具有结构简单、易于制造、抗冲击性好、可靠性高等优点。本文提出了一种集成信号调理的微机械热气体陀螺仪的分析建模。采用简化的弹簧阻尼模型来描述传感器的行为。该模型依赖于使用流体力学和传热基础,并通过从测试设备和模拟中获得的实验数据进行验证。此外,从理论和实验两个方面解决了传感器的非理想问题。基于该模型对实验测量中表现出的非线性行为进行了分析。结论是,非线性的来源主要归因于传感器系统的可变刚度和由于非理想制造而导致的结构不对称。