Design and Application of Temperature Control System Based on Fuzzy PID Algorithm

Jianpeng Wang, Zhongliang Lu, Gaojie Wang
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引用次数: 1

Abstract

In order to improve the control accuracy, response speed, anti-interference ability and adaptive ability of the temperature control system in the PCR amplification reaction stage during the detection of African swine fever (ASF) virus, a temperature control system based on fuzzy PID control algorithm was designed. The system combines the fuzzy theory with the traditional PID control theory, which makes up for the shortcomings of the traditional PID algorithm, such as difficulty in parameter tuning, slow response speed, and weak self-adaptive ability. The mathematical model was established and tested by MATLAB software. At the three temperatures of 25°C, 64°C and 85°C required by the PCR amplification reaction, the time taken by the fuzzy PID control algorithm to reach the target temperature was shortened compared with the traditional PID control algorithm. More than 32s, and the recovery time is more than 23s after adding external interference, which meets the requirements of temperature control accuracy, response speed, anti-interference ability and adaptive ability required by PCR reaction in the process of African swine fever (ASF) virus detection. The results highlight the fuzzy Compared with the traditional PID control algorithm, the PID control algorithm has the advantages of temperature control.
基于模糊PID算法的温度控制系统设计与应用
为了提高非洲猪瘟病毒检测过程中PCR扩增反应阶段温度控制系统的控制精度、响应速度、抗干扰能力和自适应能力,设计了一种基于模糊PID控制算法的温度控制系统。该系统将模糊理论与传统PID控制理论相结合,弥补了传统PID算法参数整定困难、响应速度慢、自适应能力弱等缺点。通过MATLAB软件建立了数学模型并进行了验证。在PCR扩增反应所需的25℃、64℃和85℃三个温度下,与传统PID控制算法相比,模糊PID控制算法达到目标温度的时间缩短。32s以上,外加干扰后恢复时间23s以上,满足非洲猪瘟(ASF)病毒检测过程中PCR反应对温度控制精度、响应速度、抗干扰能力和自适应能力的要求。与传统的PID控制算法相比,PID控制算法在温度控制方面具有优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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