高精度激光器温度控制器的设计方法

Yanjun Yan, Kai Chen, Bo Xu, Yifan Wang, Hong Yang, Houjun Wang
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引用次数: 0

摘要

高精度激光器的温度稳定性有利于激光器电子参数的稳定性,提高光信号的输出能量,提高测量精度。在过去的温度控制系统中,为了保证其精度性能,提出了许多控制器,包括位置控制和经典PID控制。但在恶劣的应用环境下,经典的控制器已不能满足要求,因此本文在分析仪器发热模型的基础上,基于实际测试数据,提出了一种新的PID控制方法——参数优化模糊自整定PID (POFPID)。系统模型拟合。将拟合模型与模糊理论相结合,对PID的仿真进行了改进,提前得到了合适的参数范围。因此,在实际调试中可以大大节省调试时间,同时,由于参数范围合理,防止了加热和冷却失控,可以很好地保护高精度光学仪器。最终结果表明,本文设计的温度控制系统能够很好地跟踪和控制仪器的温度。并且由于先对函数进行了拟合和仿真,再借助得到的参数进行实际调试,大大加快了调试进度,使高精度仪器的损耗达到很小的水平。
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A Design Method of Temperature Controller for High-Precision Laser
The temperature stability of the high-precision laser is conducive to the stability of the laser's electronic parameters, improves the output energy of the optical signal, and improves the measurement accuracy. In the past temperature control systems, many controllers have been proposed to ensure their accuracy performance, including positional control and classic PID control. But in the harsh application environment, the classic controller can not meet the requirements, so this paper proposes a new PID control method-parameter optimization fuzzy self-tuning PID (POFPID), based on the analysis of the instrument heating model, based on actual test data. System model fitting. Combining the fitting model and fuzzy theory improves the simulation for PID, and obtain the appropriate parameter range in advance. Therefore, the debugging time can be greatly saved in the actual debugging, and at the same time, due to the reasonable parameter range, the heating and cooling are prevented from being out of control, and the high-precision optical instrument can be well protected. The final result shows that the temperature control system designed in this paper can track and control the temperature of the instrument well. And because the function is first fitted and simulated, and then the actual debugging is carried out with the help of the obtained parameters, the debugging progress is greatly accelerated, and the loss of the high-precision instrument reaches a small level.
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