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Frame frequency prediction for Risley-prism-based imaging laser radar

机译:基于里斯利棱镜成像激光雷达的帧频预测

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摘要

A dual-wedge scanner has potential applications in laser imaging radar. To realize fast scanning imaging without a blind region, the rotation rates of the wedges have to be controlled to perform beam scanning along appropriate track paths. The first-order paraxial approximation method is employed to investigate the 2D scan patterns and path density for different angular frequency ratios of the wedges rotating steadily in the same and opposite directions. The frame rate of no-blind-region scanning imaging is estimated in terms of the imaging coverage requirement. The internal relations between the rotation rates, the instantaneous field of view (IFOV), and the imaging velocity are revealed. The results show that the spiral scanning trace, resulting from co-rotating wedges, is dense in the center and sparse at the edge of the scanning field. The reverse results can be obtained for the rosette scanning trace, resulting from counter-rotating wedges. The denser the scanning trace is, the longer the scan period is. The faster the wedges rotate and the wider the IFOV is, the higher the frame rate is. When the ratio of the width of IFOV to the angular radius of the scanning field is 0.15, the frame rate of no-blind-region spiral scanning imaging can be up to 18 fps for wedge rotation rate of 12000 r/ min, and that for rosette scanning imaging can be up to 20 fps.
机译:双楔扫描仪在激光成像雷达中具有潜在的应用。为了在没有盲区的情况下实现快速扫描成像,必须控制楔形件的旋转速率,以沿着适当的轨迹进行光束扫描。一阶近轴近似方法用于研究在相同和相反方向稳定旋转的楔形的不同角频率比下的二维扫描模式和路径密度。根据成像覆盖范围要求估计无盲区扫描成像的帧速率。揭示了转速,瞬时视场(IFOV)和成像速度之间的内部关系。结果表明,由共同旋转的楔形产生的螺旋扫描轨迹在中心密集,在扫描场边缘稀疏。对于玫瑰花结扫描轨迹,可以得到相反的结果,这是由反向旋转的楔形引起的。扫描轨迹越密,扫描周期越长。楔块旋转得越快,IFOV越宽,帧速率就越高。当IFOV的宽度与扫描场的角半径之比为0.15时,对于12000 r / min的楔形旋转速率,无盲区螺旋扫描成像的帧速率可以高达18 fps,而对于莲座丛扫描成像最高可达到20 fps。

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