Electronic Science and Technology ›› 2023, Vol. 36 ›› Issue (8): 56-64.doi: 10.16180/j.cnki.issn1007-7820.2023.08.009
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DING Xiangxin,ZHANG Wei,WANG Yagang
Received:
2022-03-24
Online:
2023-08-15
Published:
2023-08-14
Supported by:
CLC Number:
DING Xiangxin,ZHANG Wei,WANG Yagang. PID Controller Tuning of Time Delay Integral System Based on Multi Dominant Pole Method[J].Electronic Science and Technology, 2023, 36(8): 56-64.
Table 3.
PID tuning rules for FOPTDI"
被控对象 | PID控制器 | PID参数及滤波器参数 |
---|---|---|
Gc=kc(1+1/τis) Gd=1+τds F(s)= | ||
kpkcτ=1.007 | ||
0.30≤ | ||
0.30≤ | ||
Table 5.
Performance comparison in terms of IAE and TV for step response (PIPTD)"
被控对象 | 方法 | 追踪 | 扰动抑制 | ||||
---|---|---|---|---|---|---|---|
IAE | TV | OS | IAE | TV | OS | ||
GP= | 本文 | 10.13 | 5.007 | 0.000 | 5.68 | 2.25 | 0.296 |
CH | 11.40 | 3.950 | 0.001 | 5.08 | 2.18 | 0.304 | |
AA | 7.154 | 39.18 | 0.075 | 6.19 | 2.77 | 0.323 | |
VV | 11.54 | 3.864 | 0.028 | 5.94 | 1.95 | 0.343 | |
ROP | 12.15 | 9.106 | 0.001 | 1.23 | 1.96 | 0.316 |
Table 11.
Performance comparison in terms of IAE and TV for step response (FOPTDI)"
被控对象 | 方法 | 追踪 | 扰动抑制 | ||||
---|---|---|---|---|---|---|---|
IAE | TV | OS | IAE | TV | OS | ||
Gp= | 本文 | 2.080 | 53.200 | 0.017 | 1.13 | 2.99 | 0.137 |
CH | 4.506 | 9.350 | 0.089 | 1.09 | 2.31 | 0.174 | |
AA | 3.130 | 42.130 | 0.256 | 2.84 | 1.83 | 0.259 | |
JL | 4.133 | 19.420 | 0.000 | 2.82 | 1.84 | 0.259 | |
ROP | 2.745 | 5.175 | 0.002 | 1.48 | 2.10 | 0.196 |
[1] |
Santosh Kumar D B, Padma Sree R. Tuning of IMC based PID controllers for integrating systems with time delay[J]. ISA Transactions, 2016, 63(4):242-255.
doi: 10.1016/j.isatra.2016.03.020 |
[2] | Zhang W D. Quantitative process control theory[M]. Boca Raton: CRC Press Inc, 2011:105-107. |
[3] |
Ali A, Majhi S. PID controller tuning for integrating processes[J]. ISA Transactions, 2010, 49(1):70-78.
doi: 10.1016/j.isatra.2009.09.001 pmid: 19782358 |
[4] |
Jin Q B, Liu Q. Analytical IMC-PID design in terms of performance/robustness tradeoff for integrating processes: From 2-Dof to 1-Dof[J]. Journal of Process Control, 2014, 24(3):22-32.
doi: 10.1016/j.jprocont.2013.12.011 |
[5] | 温晓花. 基于时滞系统IMC-PID的设计与整定[J]. 机械, 2019, 46(2):33-36. |
Wen Xiaohua. Design and tuning of IMC-PID based on time delay system[J]. Machine, 2019, 46(2):33-36. | |
[6] | 杜琛鑫. 时滞系统的PID稳定域及参数整定研究[D]. 大连: 大连海事大学, 2019:37-44. |
Du Chenxin. Research on PID stabilization and parameters tuning of time delay systems[D]. Dalian: Dalian Maritime University, 2019:37-44. | |
[7] | 任金霞, 蒋梦倩, 黄艺培. 一种复杂系统的分数阶内模PID控制器设计[J]. 江西理工大学报, 2020, 41(1):71- 76. |
Ren Jinxia, Jiang Mengqian, Huang Yipei. Design of a fractional internal model PID controller for a complex system[J]. Journal of Jiangxi University of Science and Technology, 2020, 41(1):71-76. | |
[8] | 朱景秀, 张伟, 王亚刚. 一类不稳定时滞对象的两自由度控制器设计[J]. 电子科技, 2021, 34(3):13-18. |
Zhu Jingxiu, Zhang Wei, Wang Yagang. Two degrees of freedom control structure for one classes of unstable process with time-delay[J]. Electronic Science and Technology, 2021, 34(3):13-18. | |
[9] | 赵仕艳, 谢子殿, 丁康康, 等. 粒子群优化BP-PID的矿井提升机调速系统[J]. 电子科技, 2021, 34(1):43-49. |
Zhao Shiyan, Xie Zidian, Ding Kangkang, et al. Particle swarm optimization BP-PID of rotor variable frequency speed in mine hoisting system[J]. Electronic Science and Technology, 2021, 34(1):43-49. | |
[10] |
Anil C, Padma Sree R. PID control of integrating systems using multiple dominant pole-placement method[J]. Asia-Pacific Journal of Chemical Engineering, 2015, 10(5):734-742.
doi: 10.1002/apj.v10.5 |
[11] | Viteckova M, Vitecek A. Use of multiple dominant pole method for controller tuning[C]. New York: Proceedings of the Thirteenth International Carpathian Control Conference, 2012:27-34. |
[12] |
Ajmeri M, Ali A. Simple tuning rules for integrating processes with large time delay[J]. Asian Journal of Control, 2015, 17(5):2033-2040.
doi: 10.1002/asjc.1119 |
[13] |
Anil C, Padma Sree R. Tuning of PID controllers for integrating systems using direct synthesis method[J]. ISA Transactions, 2015, 57(7):211-219.
doi: 10.1016/j.isatra.2015.03.002 |
[14] | 杨文刚. 适用于多种积分过程的鲁棒PID控制器设计方案[J]. 控制工程, 2016, 23(4):538-543. |
Yang Wengang. A robust PID controller design method for multiple kinds of integrating systems[J]. Control Engineering of China, 2016, 23(4):538-543. | |
[15] |
Vilanova R, Arrieta O, Ponsa P. Robust PI/PID controllers for load disturbance based on direct synthesis[J]. ISA Transactions, 2018, 81(3):177-196.
doi: 10.1016/j.isatra.2018.07.040 |
[16] |
Rao A S, Rao V S R, Chidambaram M. Direct synthesis based controller design for integrating processes with time delay[J]. Journal of the Franklin Institute, 2009, 346(1):38-56.
doi: 10.1016/j.jfranklin.2008.06.004 |
[17] | Ghousiya Begum K, Seshagiri Rao A, Radhakrishnan T K. Maximum sensitivity based analytical tuning rules for PID controllers for unstable dead time processes[J]. Chemical Engineering Research and Design, 2016, 10(9):593-606. |
[18] | Astrom K J, Hagglund T. PID controllers[M]. Amsterdam: ISA Publishers, 1995:66-68. |
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