大气与环境光学学报 ›› 2025, Vol. 20 ›› Issue (5): 676-686.

• 光电技术 • 上一篇    

一种高精度气体压力控制算法设计与实现

张敬 1, 张天舒 2, 钱广程 1, 史宇辰 3, 董云升 2*   

  1. 1 安徽大学物质科学与信息技术研究院, 安徽 合肥 230601; 2 中国科学院合肥物质科学研究院安徽精密机械研究所, 安徽 合肥 230031; 3 中国科学技术大学环境科学与光电技术学院, 安徽 合肥 230026
  • 收稿日期:2022-07-20 修回日期:2022-09-17 出版日期:2025-09-28 发布日期:2025-09-24
  • 通讯作者: E-mail: ysdong@aiofm.ac.cn E-mail:ysdong@aiofm.ac.cn
  • 作者简介:张敬 (1998- ), 女, 安徽蚌埠人, 硕士研究生, 主要从事大气监测仪器自动控制系统设计与研究。E-mail: jzhang@aiofm.ac.cn
  • 基金资助:
    国家重点研发计划 (2023YFC3705503)

Design and implementation of high precision gas pressure control algorithm

ZHANG Jing 1, ZHANG Tianshu 2, QIAN Guangcheng 1, SHI Yuchen 3, DONG Yunsheng 2*   

  1. 1 Institutes of Physical Science and Information Technology, Anhui University, Hefei 230601, China; 2 Anhui Institute of Optics and Fine Mechanics, HFIPS, Chinese Academy of Sciences, Hefei 230031, China; 3 School of Environmental Science and Optoelectronic Technology, University of Science and Technology of China, Hefei 230026, China
  • Received:2022-07-20 Revised:2022-09-17 Online:2025-09-28 Published:2025-09-24
  • Contact: Yun-Sheng DONG E-mail:ysdong@aiofm.ac.cn

摘要: 非甲烷总烃 (NMHC) 长期以来一直是危害较大的一类空气污染物, 常使用非甲烷总烃分析仪进行监测。该 类分析仪的工作原理决定了其对气体流量的响应速度和控制精度均有较高要求。为满足分析仪的相关要求, 同时考 虑到实际气体流量变化的瞬时性特点, 本文以位置式PID算法为基础, 以模糊控制算法为辅助调节手段, 提出了一种 模糊控制PID算法, 从而通过调整气体压力来实现对气体流量的高精度控制, 并设计开展了不同性能验证实验。实验 结果表明, 与传统PID 算法相比, 本文所提出的模糊控制PID 算法响应速度快、超调量小、调节精度高, 可根据压力控 制设定值与实际值的误差来计算比例阀开合大小, 以达到高效控制气体流量的设计目标, 最终实现空气污染区域非 甲烷总烃浓度的精确测量。利用该控制算法, 可以将各路气体控制压力误差控制在 ±0.1 kPa 以内。该算法稳定性高, 实现较为简单, 且易应用于嵌入式系统, 为非甲烷总烃分析仪在环境监测方面的应用提供了参考。

关键词: 非甲烷总烃, PID算法, 气体压力控制, 模糊控制

Abstract: Non-methane total hydrocarbon (NMHC) has long been a class of the most harmful air pollutants, which are often monitored using NMHC analyzer. The working principle of NMHC analyzer determines its high requirements for response speed and control precision to the gas flow. In order to meet the requirements of NMHC analyzer and the instantaneous characteristics of actual gas flow, a high precision gas pressure control algorithm is proposed in this work taking the position PID algorithm as a base and the fuzzy control algorithm as an auxiliary adjustment means. The algorithm can achieve high precision control of gas flow by adjusting the gas pressure, and different experiments are designed to verify the performance of the algorithm. Experimental results show that compared with traditional PID algorithms, the proposed fuzzy control PID algorithm has faster response speed, smaller overshoot and higher regulation precision. It can calculate the opening and closing size of proportional valve according to the error between the set value and the actual value of pressure control, thus achieving the design goal of efficient control of gas flow and realizing the accurate measurement of NMHC concentration in air pollution areas. By using this control algorithm, the error of each gas control pressure can be controlled within ±0.1 kpa. The proposed algorithm has high stability and simple implementation, and is easy to be applied to embedded systems. It provides a reference for the application of NMHC analyzer in environmental monitoring.

Key words: non-methane total hydrocarbon, PID algorithm, gas pressure control, fuzzy control

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