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Digital Asynchronous Phase Locked Loop for Precision Control of MOEMS Scanning Mirror ?

机译:数字异步锁相循环,用于扫描镜的精度控制

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Accurate phase detection and control of nonlinear resonant MOEMS mirrors are crucial to achieve stable scanning motions and high resolution imaging as needed in precision applications such as lidar systems. This paper proposes a novel digital PLL that uses an asynchronous logic for high precision driving of the MOEMS mirror and immediate phase compensation, while the clock speed is kept low. The phase of the mirror is detected by an amplified current signal, generated by the movement of the comb-drive electrodes and a simple comparator circuit. An analysis of the proposed detection method shows that the optical standard deviation of the system scales inversely proportional with the product of the driving voltage, the curvature of the comb-drive capacitance and the angular velocity of the MOEMS mirror at the zero crossing. The low phase detection standard deviation of 2.94 ns, in closed loop operation corresponds to a maximum optical standard deviation of 1mdeg at 55.6° field of view and a scanning frequency of 2kHz.
机译:非线性谐振熔体镜的精确相检测和控制对于实现稳定的扫描运动和高分辨率成像,如LIDAR系统等精密应用所需的稳定扫描运动和高分辨率成像。本文提出了一种新型数字PLL,它使用异步逻辑来高精度驱动MOEMS镜像和立即相位补偿,而时钟速度保持低。通过梳状驱动电极的移动和简单的比较器电路产生的放大电流信号来检测镜子的相位。所提出的检测方法的分析表明,系统的光学标准偏差与驱动电压的乘积,梳状驱动电容的曲率和零交叉处的MOEMS镜的角速度成反比。闭环操作中的低相检测标准偏差为2.94ns,对应于1mdeg的最大光学标准偏差,在55.6°的视野下和2kHz的扫描频率。

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