高精度激光器电流驱动与交流温控系统设计

Design of current drive and alternating current temperature control system for high-precision laser

  • 摘要: 半导体激光器作为原子磁强计的重要组成部分,其波长和功率主要由电流和温度决定,而传统的直流温控系统会对磁强计产生磁场干扰。针对高精度电流控制、温度控制和磁场干扰问题,设计了一种激光器恒流源驱动和交流控温系统。首先,设计基于功放的高精度激光器恒流源驱动系统;然后,设计交流温度调制解调检测和交流加热驱动系统;最后,采用STM32控制器、高精度AD采集和DA输出结合温度模糊自适应PID控制算法进行高精度温度控制。实验结果表明:在42℃温度下控制精度为0.005℃,在32 mA电流下稳定度为0.5 A,为激光器光功率和波长稳定性奠定基础。

     

    Abstract: As an important part of the atomic magnetometer, the semiconductor laser's wavelength and power are mainly determined by current and temperature. However, the traditional DC temperature control system would cause magnetic field interference to the atomic magnetometer. Aiming at high-precision current control, temperature control and magnetic field interference, a laser constant current source driving system and Alternating Current(AC) temperature control system were developed. Firstly, a high-precision laser constant current source driving system based on power amplifier was designed. Secondly, the AC temperature modulation demodulation detection and AC heating drive system were designed. Finally, the STM32 controller, high-precision AD acquisition and DA output combined with temperature fuzzy adaptive PID control algorithm were used for high-precision temperature control. The experimental results show that the temperature control accuracy is 0.005℃ at 42℃, and the current stability is 0.5 A at 32 mA, which lays a foundation for laser optical power and wavelength stability.

     

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