光学与光电技术, 2023, 21 (6): 0066, 网络出版: 2024-02-29  

线阵光纤激光相干合成控制器的设计

Design of Coherent Beam Controller Based on Linear Fiber Array
作者单位
沧州交通学院电子与电气工程学院, 河北 沧州 061199
摘要
针对线阵光纤激光相干合成系统中对合成光束的质量、控制速度、控制精度的需求, 完成了线阵光纤激光相干合成控制器的设计。该控制器以DSP2812和CPLD为核心处理器, 通过AD976A模/数转换器接收光电探测器的电压信号, AD8544数/模转换器输出模拟电压控制压电陶瓷相位控制器, 进而控制激光的相位变化。为了实现控制器与目标图像检测板和上位机的通信, 设计了两路串口通信接口, 并编写了相关测试程序, 最终在线阵光纤激光相干合成系统中完成了四路1 064 nm激光的相干合成、扫描、跟踪实验。实验结果表明, 该控制器搭载随机并行梯度下降(SPGD)算法, 在光电探测器的配合下能够实现光纤激光锁相, 控制主瓣能量变化优于±5%, 锁相后主瓣能够完成±λ的扫描, 扫描频率约为25 Hz, 同时结合目标图像检测板完成了目标跟踪实验, 实现激光相干合成条纹的目标跟踪。
Abstract
Aiming at the requirements of the quality, control speed and control accuracy of the synthetic beam in the linear array fiber laser coherent synthesis system, the design of the linear array fiber laser coherent synthesis controller is completed. The controller uses DSP2812 and CPLD as the core processor, receives the voltage signal of the photodetector through AD976A analog-to-digital converter, and outputs analog voltage from AD8544 digital to analog converter to control the piezoelectric ceramic phase controller, and then controls the phase change of the light. In order to realize the communication between the controller and the target image detection board and the upper computer, two serial communication interfaces are designed, and related test procedures have been written. Finally, the coherent synthesis, scanning and tracking experiments of four 1 064 nm lasers are completed in the linear array fiber laser coherent synthesis system. The experimental results show that the controller is equipped with SPGD algorithm, and can realize fiber laser phase locked with the cooperation of photodetectors. After phase locked, the energy change of the main lobe is better than ± 5%, and the scanned range of the main lobe is ± λ. The scanned frequency is about 25 Hz. At the same time, the target tracked experiment is completed in combination with the target image detection board to realize the target tracked of laser coherent synthetic stripes.
参考文献

[1] 肖瑞, 侯静, 姜宗福. 光纤激光器的相干合成技术[J]. 激光技术, 2005, 29(5): 516-518. XIAO Rui, HOU Jing, JIANG Zong-fu. Coherent combination of fiber lasers[J]. Laser Technology, 2005, 29 (5): 516-518.

[2] 周朴. 光纤激光相干合成技术研究[D]. 长沙: 国防科技大学, 2009. ZHOU Pu. Research on optical fiber laser coherent combination [D]. Changsha: National University of Defense Technology, 2009.

[3] 粟荣涛, 周朴, 王小林, 等. 32路光纤激光相干阵列的相位锁定[J]. 强激光与粒子束, 2014, 26(11): 110101-1-110101-2.SU Rong-tao, ZHOU Pu, WANG Xiao-lin, et al. Phase locking of a coherent array of 32 fiber laser[J]. High Power Laser and Particle Beam, 2014, 26(11): 110101-1-110101-2.

[4] 周朴, 粟荣涛, 马阎星, 等. 激光相干合成的研究进展: 2011-2020[J]. 中国激光, 2021, 48(4): 31-58. ZHOU Pu, SU Rong-tao, MA Yan-xing, et al. Review of coherent laser beam combining research progress in the past decade: 2011-2020[J]. Chinese Journal of Lasers, 2021, 48(4): 31-58.

[5] 夏润秋, 陈青山, 刘洋, 等. 线阵光纤激光相干合成角度扫描控制方法研究[J]. 红外与激光工程, 2018, 47(9): 141-146. XIA Run-qiu, CHEN Qing-shan, LIU Yang, et al. Control method of coherent beam combining angle scanning based on linear fiber array[J]. Infrared and Laser Engineering, 2018, 47(9): 141-146.

[6] 王小林. 激光相控阵中的优化式自适应光学研究[D]. 长沙: 国防科学技术大学, 2011.WANG Xiao-lin. Research on optimized adaptive optics in laser phased arrays[D]. Changsha: National University of Defense Technology, 2011.

[7] Che Dongbo, Li Yuanyang, Wu Yunhan, et al. Theory of AdmSPGD algorithm in fiber laser coherent synthesis[J]. Optics Communications, 2021, 492: 126953-1-126953-9.

[8] 吴坚, 马阎星, 马鹏飞, 等. 光纤激光相干合成20 kW级高功率输出[J]. 红外与激光工程, 2021, 50(9): 381. WU Jian, MA Yan-xing, MA Peng-fei, et al. Coherent combination of fiber optic lasers with 20 kW high power output[J]. Infrared and Laser Engineering, 2021, 50 (9): 381.

[9] 雷婕妤, 孙鑫鹏, 李晔, 等. 激光相干合成系统中SPGD算法的自适应优化[J]. 光学技术, 2019, 45(4): 486-490.LEI Jie-yu, SUN Xin-peng, LI Ye, et al. An adaptive optimization of SPGD algorithm for laser coherent Combining systems[J]. Optical Technique, 2019, 45(4): 486-490.

[10] 王彤璐, 孙鑫鹏, 李晔, 等. 多孔径激光阵列光束排布模式及误差对相干合成效率影响的研究[J]. 光学技术, 2019, 45(5): 605-611. WANG Tong-lu, SUN Xin-peng, LI Ye, et al. Study on the arrangement of multi-aperture beams array and error effects on the coherent combination efficiency[J]. Optical Technique, 2019, 45(5): 605-611.

[11] 王彩霞, 徐冯飞, 张然. 基于DSP2812的舰载光电跟踪仪伺服控制系统设计[J]. 现代工业经济和信息化, 2020, 10(8): 37-39. WANG Cai-xia, XU Feng-fei, ZHANG Ran. Shipboard electro-optical tracking system servo control system based on DSP2812[J]. Modern Industrial Economy and Informationization, 2020, 10(8): 37-39.

[12] A I Trikshev, Yu N Pyrkov, V B Tsvetkov. Phasing of two amplifier channels for the coherent combining of laser beams with a total power of 60 W[J]. Quantum Electronics, 2017, 47(11): 1045-1048.

[13] Zhu Yun-Chen, Li Ping-Xue, Yao Chuan-Fei, et al. Influence of optical nonlinearity on combining efficiency in ultrashort pulse fiber laser coherent combining system[J]. Chinese Physics B, 2022, 31(6): 064201-1-064201-7.

[14] Long Jin hu, Chang Hong xiang, Zhang Yu qiu, et al. Compact internal sensing phase locking system for coherent combining of fiber laser array[J]. Optics and Laser Technology, 2022, 148: 107775.

[15] 袁航, 刘传清, 韦朴, 等. 偏振干涉型光纤阵列温度传感技术的研究[J]. 光学与光电技术, 2022, 20(6): 109-116.YUAN Hang, LIU Chuan-qing, WEI Pu, et al. Temperature sensing technology of polarization interferometric fiber array[J]. Optics & Optoelectronic Technology, 2022, 20(6): 109-116.

滕岳, 张亚娟, 康宪芝, 白锌, 侯甜甜, 魏长彬. 线阵光纤激光相干合成控制器的设计[J]. 光学与光电技术, 2023, 21(6): 0066. TENG Yue, ZHANG Ya-juan, KANG Xian-zhi, BAI Xin, HOU Tian-tian, WEI Chang-bin. Design of Coherent Beam Controller Based on Linear Fiber Array[J]. OPTICS & OPTOELECTRONIC TECHNOLOGY, 2023, 21(6): 0066.

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!