放电驱动连续波DF化学激光器的腔内装置

B. Yan, Wenguang Liu, Qiong Zhou, Shengfu Yuan, Q. Lu
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引用次数: 2

摘要

反射镜的吸收系数或热畸变等性能参数决定了输出激光的光束质量,因此反射镜的质量是影响整个激光系统性能的重要因素之一。目前,对反射镜性能的测试方法明显不足。反射镜的反射系数、吸收系数和散射系数可以通过多种测试方法测量,如腔衰荡法、光热偏转法、表面热透镜法和激光量热法。但这些方法不能在高功率密度辐射下进行测试。因此,测试数据和结果不能准确反映实际激光系统的真实性能。在真正的激光系统中进行测试既昂贵又耗时。因此,测试序列和数据不足以分析和实现镜像的性能。为了研究反射镜在高功率密度辐射下的性能,介绍了腔内反射镜的工作原理。利用低输出耦合比的输出反射镜,可以在谐振腔内以较小的增益介质为基础产生高功率密度的激光,且消耗和成本相对较低。在放电驱动连续波DF化学激光器的基础上,建立了一个腔内装置。在谐振腔中获得了3kw/cm2的激光束。2片22.5度反射镜和2片45度反射镜可以同时进行测试。用量热法和哈特曼波前传感器分别测量了吸收系数和热畸变。该装置简单、方便、维护费用低,可长期使用。试验结果可为后视镜工艺改进提供依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An intra-cavity device with a discharge-drived CW DF chemical laser
The performance parameters of reflecting mirrors such as absorption coefficient or thermal distortion determine the beam quality of the output laser, so the quality of mirrors is one of the most important factors affecting the capability of the whole laser system. At the present time, there was obviously insufficient in test methods for the mirrors performance. The reflection coefficient, absorption coefficient and scattering coefficient of mirrors could be measured by a lot of test methods such as cavity ring-down method, photothermal deflection method, surface thermal lens method and laser calorimetry. But these methods could not test under high power density radiation. So the test data and results could not indicate the real performance in a real laser system exactly. Testing in a real laser system would be expensive and time consuming. Therefore, the test sequence and data would not be sufficient to analyze and realize the performance of mirrors. To examine the performance of mirrors under high power density radiation, the working principle of intra-cavity was introduced in this paper. Utilizing an output mirror with a low output coupling ratio, an intra-cavity could produce high-power density laser in the resonant cavity on the basis of a relatively small scale of gain medium, and the consumption and cost were very low relatively. Based on a discharge-drived CW DF chemical laser, an intra-cavity device was established. A laser beam of 3kw/cm2 was achieved in the resonant cavity. Two pieces of 22.5 degree mirrors and two pieces of 45 degree mirrors could be tested simultaneously. Absorption coefficient and thermal distortion were measured by calorimetry and Hartmann wavefront sensor respectively. This device was simple, convenient, low-maintenance, and could work for a long time. The test results would provide support for process improvement of mirrors.
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