High-speed LiDAR by multi-order laser beam steering with digital micromirror device (Conference Presentation)

Joshua Rodriguez, Braden J. Smith, Brandon Hellman, Heejoo Choi, Guanghao Chen, Youngsik Kim, Dae Wook Kim, Y. Takashima
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引用次数: 1

Abstract

Laser beam steering technology is essential for modern consumer and scientific optical devices including displays, microscopy, and Light Detection and Ranging (LIDAR) systems. Along with mechanical and completely non-mechanical beam steering approaches, Micro Electro Mechanical Systems (MEMS) are emerging beam steering devices that are especially suitable for LIDAR systems due to their fast scan rate and large scan angle. A class of MEMS-based devices, the Digital Micromirror Device (DMD), has been demonstrated for beam steering too by synchronizing its mirror movement to laser pulse. The tilt movement of micromirrors synchronizes with multiple pulses from multiple laser sources that sequentially redirect the pulses to multiple diffraction orders within μs. Based on the beam steering principle, multi-beam and multi-pulse beam steering in single-chip DMD LIDAR architecture provides a pathway to fast distance range finding having over 1M samples/s scan rate by leveraging a commercially available DMD, laser diodes and drivers. As a proof of concept, 3.34kHz and 15 points of range finding is demonstrated by using three pulsed laser diodes operating at 905nm. Additionally, multi-pulse beam steering for 5 points with an increased scanning rate of 6.63kHz demonstrates further enhancement of the scanning speed. The approach opens up a pathway to achieve a LIDAR system with a scanning rate over 1M samples/s while leveraging a state of the art DMD and a moderate number of laser sources.
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基于数字微镜装置的多阶激光束导向高速激光雷达(会议报告)
激光束转向技术对于现代消费和科学光学设备至关重要,包括显示器,显微镜和光探测和测距(LIDAR)系统。与机械和完全非机械的光束转向方法一样,微机电系统(MEMS)是新兴的光束转向设备,由于其快速扫描速率和大扫描角度,特别适合激光雷达系统。一类基于mems的器件,数字微镜器件(DMD),也被证明可以通过同步其反射镜运动来控制光束。微镜的倾斜运动与来自多个激光源的多个脉冲同步,这些脉冲依次重定向到μs范围内的多个衍射阶。基于波束转向原理,单芯片DMD激光雷达架构中的多波束和多脉冲波束转向通过利用商用DMD、激光二极管和驱动器,提供了一种具有超过1M采样/s扫描速率的快速距离范围查找途径。作为概念验证,使用三个脉冲激光二极管在905nm工作,演示了3.34kHz和15点测距。此外,5点多脉冲波束转向,提高了6.63kHz的扫描速率,进一步提高了扫描速度。该方法为实现扫描速率超过1M个样本/s的激光雷达系统开辟了一条途径,同时利用了最先进的DMD和适量的激光源。
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