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Error compensation via signal correlation in high-precision closed-loop fiber optic gyros

机译:高精度闭环光纤陀螺仪中通过信号相关进行误差补偿

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Abstract: Fiber optic gyroscopes (FOGs) are preferably driven as closed-loop controlled systems, if linearity and dynamic range are of major concern. Proper modulation of the Sagnac interferometer (SIF) feedback signal is necessary to minimize low frequency signal perturbation and to reliably detect luminance intensity in the linear regions of the sinusoidal Sagnac phase to intensity mapping. Deterministic modulation however, is accompanied by well known 'dead zones' and bias errors due to unavoidable crosstalk between the modulator and the optical detector. In the paper we propose a high precision closed-loop FOG system with deadbeat control and pseudorandom modulation of the SIF feedback signal. The random modulation principle completely eliminates 'dead zones' in the detection of small rotation rates, and bears an inherent potential for compensation and control of several error sources encountered in non-ideal systems by means of signal correlation. The principle of correlation based control is introduced in a general context and applied to a set of dedicated control loops within the proposed closed-loop FOG. Results obtained form several prototype realizations of the correlation controlled high precision FOG indicate a potential for bias error reduction by two orders of magnitude and considerable decrease in random walk. !10
机译:摘要:如果线性度和动态范围是主要问题,则最好将光纤陀螺仪(FOG)作为闭环控制系统来驱动。 Sagnac干涉仪(SIF)反馈信号的正确调制对于最小化低频信号扰动并可靠地检测正弦Sagnac相到强度映射的线性区域中的亮度强度是必要的。但是,确定性调制会伴随着众所周知的“死区”和由于调制器与光学检测器之间不可避免的串扰而引起的偏置误差。在本文中,我们提出了一种具有死拍控制和SIF反馈信号的伪随机调制的高精度闭环FOG系统。随机调制原理完全消除了检测小旋转速率时的“死区”,并具有通过信号相关来补偿和控制非理想系统中遇到的几种误差源的内在潜力。在一般情况下介绍了基于相关性的控制原理,并将其应用于建议的闭环FOG中的一组专用控制回路。从相关控制的高精度FOG的几种原型实现中获得的结果表明,偏置误差有可能减少两个数量级,并且随机游动会显着降低。 !10

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