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Analysis and design of a high power laser interrupter for MEMS based safety and arming systems

机译:基于MEMS的安全臂系统高功率激光断路器的分析与设计

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A high power laser energy interrupter is investigated and developed. The micromachined laser interrupter is a critical component of the MEMS based safety and arming (S&A) system, which acts as a switch to selectively couple optical power between input and output fibers using direct coupling technique. The switching of high power laser energy is demonstrated by taking advantage of direct thermal actuation of cantilevered large-core multimode fibers. Models describing the combined electrothermal and thermomechanical characteristics of the thermal actuators are developed with temperature-dependent parameters. The temperature distribution of the actuator is investigated, and the influence of the actuator's geometrical parameters on its force and displacement is analyzed. Actuator displacement versus drive current is found to be in good agreement with model predictions. Switching time is 19 ms from the safety to the arming state with a maximum operational frequency of 34 Hz. Optical efficiency is predicted and a series of tests are conducted to measure transmission efficiency of the laser interrupter. The optical efficiency is found to be about 92.7% with a maximum power transfer of 2780 mW from a 3000 mW input, and the channel isolation is 57 dB.
机译:研究和开发了高功率激光能量断路器。微机械激光断路器是基于MEMS的安全和臂(S&A)系统的关键组件,其用作开关以使用直接耦合技术选择性地在输入和输出光纤之间选择光学电力。通过利用悬臂式大核多模纤维的直接热致动来证明高功率激光能量的切换。描述热致动器的组合电热和热机械特性的模型采用温度依赖性参数开发。研究了致动器的温度分布,分析了致动器的几何参数对其力和位移的影响。致动器位移与驱动电流相比,与模型预测有关。切换时间是19毫秒,从安全状态到武装状态,最大运行频率为34 Hz。预测光学效率并进行一系列测试以测量激光断路器的传输效率。发现光学效率为约92.7%,最大功率从3000 MW输入的最大动力传输,通道隔离为57 dB。

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