红外与激光工程, 2016, 45 (s1): S106001, 网络出版: 2016-06-12  

激光照明匀光技术的应用研究

Applied research on the homogenization technology of laser illumination
作者单位
长春理工大学 光电工程学院, 吉林 长春 130022
摘要
为了实现激光均匀照明, 在分析常规匀光技术的基础上设计了新型的激光匀光系统, 并对该系统的匀光技术及光斑均匀性进行研究。新型的匀光系统是利用无刷电机带动光束整形散射器以高于摄像机电子快门的频率旋转, 使多支光束在积分时间内叠加, 形成一个均匀照明效果。新型的匀光系统能够消除激光散斑与干涉条纹, 实现匀光的目的。实验结果表明: 新型匀光系统使激光光斑有效区域内均匀性到达95%以上, 光能利用率为90%。新型匀光系统提高了照明均匀性及光能利用率, 从而提高了被照明目标的成像质量。
Abstract
In order to achieve laser uniform illumination, a new laser homogenization system was designed based on the analysis of regular homogenization technology, and the homogenization technology and the uniformity of laser illumination were researched. The new homogenization system used brushless motor to drive a light shaping scatterer to rotate at a frequency faster than the electronic shutter of cameras, making multiple light superimposed in integration time to form a uniform illumination effect. The new homogenization system can eliminate laser speckles and interference fringes, and realize the purpose of homogenization. Experimental results show that the new homogenization system makes the illumination uniformity reach up to 95% and the energy efficiency reach up to 90% in the effective area. The new homogenization system improves the uniformity of illumination and utilization rate of laser, thus improves the image quality of the illuminated target.
参考文献

[1] Kawamura Y, Itagaki Y, Toyoda K, et al. A simple optical device for generating square flat-top intensity irradiation from a gaussian laser beam[J]. Optics Communications, 1983, 48(1): 44-46.

[2] Tian Zhihui, Liu Weiqi, Xi Xia, et al. Speckle contrast reduction in laser display[J]. Optics and Precision Engineering, 2007, 15(9): 1366-1370. (in Chinese)

[3] Gooman J W. Some fundamental properties of speckle[J]. J Opt Soc Am, 1976, 66: 1145-1149.

[4] Wang Yingshun, Lian Jie, Gao Shang, et al. Research on illumination uniformity of near infrared illuminator[J]. Acta Photonica Sinica, 2013, 42(3): 258-261. (in Chinese)

[5] Wippermann F C, Uwe-D Zeitner, Peter Dannberg, et al. Fly′s eye condenser based on chirped microlens arrays[C]//SPIE, 2007, 6663(9): 1-9.

[6] Dickey F M, Hol swade S C. Laser beam shaping: theory and trchniques[M]. New York: Marcel Dekker, Inc, 2000.

[7] Dickey F M, Holswade S C, Shealy D L, et al. Laser beam shaping IV[C]//SPIE, 2003, 5175: 1-236.

[8] Dickey F M, Holswade S C, Shealy D L, et al. Laser beam shaping V[C]//SPIE, 2004, 5525: 1-233.

[9] Dickey F M, Holswade S C, Shealy D L, et al. Laser beam shaping VI[C]//SPIE, 2005, 5786: 1-367.

[10] Dickey F M, Holswade S C, Shealy D L, et al. Laser beam shaping VII[C]//SPIE, 2006, 6290: 1-313.

[11] Dickey F M, Holswade S C, Shealy D LL, et al. Laser beam shaping VIII[C]//SPIE, 2007, 6663: 1-252.

[12] Sato K I, Asatani K. Speckle noise reduction in fiber optic analog video transmission using semiconductor laser diodes[J]. IEEE Trans Commun, 1981, 29(7): 1017-1027.

[13] George N, Jian A. Speckle reduction using multiple tones of illumination[J]. Appl Opt, 1973, 12(6): 1202-1212.

[14] Lin Yong, Hu Jiasheng. Laser beam shaping techniques[J]. Laser Journal, 2008, 29(6): 1-4. (in Chinese)

[15] Pepler DA, Danson CN, Ross IN, et al. Binary-phase Fresnel zone plate arrays for high-power laser beam smoothing[C]//SPIE, 1995, 2404: 258-265.

[16] Kamon K. Fly-eye lens device and lighting system including same: US Patent, 5 251 067[P]. 1993-10-05.

赵会富, 崔庆丰. 激光照明匀光技术的应用研究[J]. 红外与激光工程, 2016, 45(s1): S106001. Zhao Huifu, Cui Qingfeng. Applied research on the homogenization technology of laser illumination[J]. Infrared and Laser Engineering, 2016, 45(s1): S106001.

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