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Coriolis vibrating gyroscope modelling for parametric identification and optimal design

机译:用于参数识别和优化设计的科里奥利振动陀螺仪建模

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Coriolis vibrating gyroscopes can be modeled by a planar resonator, using masses, springs and damping. In this paper, the corresponding equations are studied in order to characterize real vibrating cells. It is shown how to present the problem to allow efficient numerical simulations and analytic developments. In particular, the use of the method of Averaging is fundamental, simplifying most of the calculations. All aspects of the oscillations are described and synthesized into a set of either geometrical parameters or canonical quantities, such as the energy of the trajectory. Thus, the properties of vibrating cells can be evaluated, and different operating modes as open-loop or closed-loop are exploited. Computer tools are developed to identify the flaws of real cells. Among them, a MODELICA simulator computes the time series of the gyroscope outputs for any stimulus, including transients, and a MAXIMA Taylor expansion code generates the analytical expressions of steady state and transients for start/stop. Both methods agree within 0.5%.
机译:可以通过平面谐振器使用质量,弹簧和阻尼来模拟科里奥利振动陀螺仪。在本文中,研究了相应的方程式以表征真实的振动腔。它显示了如何提出问题以允许进行有效的数值模拟和分析开发。特别地,使用平均方法是基本的,从而简化了大多数计算。描述了振荡的所有方面,并将其综合为一组几何参数或规范量,例如轨迹的能量。因此,可以评估振动腔的特性,并采用开环或闭环等不同的操作模式。开发计算机工具来识别真实单元的缺陷。其中,MODELICA仿真器可为任何刺激(包括瞬态)计算陀螺仪输出的时间序列,而MAXIMA Taylor扩展代码可为启动/停止生成稳态和瞬态的解析表达式。两种方法均在0.5%之内。

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