Principle study on exposure technique for double pulse high speed imaging based on direct control of CCD driving electrodes

Q4 Engineering 强激光与粒子束 Pub Date : 2020-06-24 DOI:10.11884/HPLPB202032.200012
Jiang Xiaoguo, Yang Xinglin, Yang Guojun, Zhang Xiaoding, Li Yiding, Li Hong, Jiang Wei, W. Tao
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Abstract

Charge coupled device(CCD) is one kind of photoelectric solid-state imaging device with excellent performance. It has the features of large array and good image quality. Working under very complex driving timing, it usually has low frame frequency and can not meet the demand of high imaging frame rate. The method of equivalent high frame rate imaging technique is introduced based on normal CCD in this paper. Some CCDs can be drived via electrodes separately. To meet the imaging demands of high frame rate, high resolution and high quality of two frame imaging technique for pulse light images, the right kind of CCDs should be adopted. The most important is that the CCD electrodes must be controlled directly and respectively. The charge transfer period is a key point while designing CCD driving timing for separate pulse light integration, charge package transfer and readout for two pulse light images. The validation experiments for the principle of equivalent high frame rate exposure of two pulse light images has been accomplished. It is shown that two pulse light images with interval of about 2 μs can be distinguished while all CCD’s inherent excellent performance are retained. A kind of two framing camera system with simple structure can be developed based on this principle.
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基于CCD驱动电极直接控制的双脉冲高速成像曝光技术原理研究
电荷耦合器件(CCD)是一种性能优异的光电固态成像器件。它具有阵列大、图像质量好等特点。它工作在非常复杂的驱动时序下,通常帧频较低,不能满足高成像帧率的要求。本文介绍了基于普通CCD的等效高帧率成像技术。有些ccd可以单独通过电极驱动。为了满足脉冲光图像的高帧率、高分辨率和高质量的两帧成像技术的成像需求,需要选用合适的ccd。最重要的是必须对CCD电极进行直接控制和分别控制。电荷转移周期是设计单独脉冲光集成、电荷包转移和双脉冲光图像读出CCD驱动时序的关键。完成了两幅脉冲光图像等效高帧率曝光原理的验证实验。结果表明,在保持CCD固有优良性能的同时,可以区分出间隔约为2 μs的两幅脉冲光图像。根据这一原理,可以研制出一种结构简单的双帧摄像系统。
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来源期刊
强激光与粒子束
强激光与粒子束 Engineering-Electrical and Electronic Engineering
CiteScore
0.90
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11289
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