Content area

Abstract

Purpose

The purpose of this paper is to propose and validate a robust industrial control system. The aim is to design a Multivariable Proportional Integral controller that accommodates multiple responses while considering the process's control and noise parameters. In addition, this paper intended to develop a multidisciplinary approach by combining computational science, control engineering and statistical methodologies to ensure a resilient process with the best use of available resources.

Design/methodology/approach

Taguchi's robust design methodology and multi-response optimisation approaches are adopted to meet the research aims. Two-Input-Two-Output transfer function model of the distillation column system is investigated. In designing the control system, the Steady State Gain Matrix and process factors such as time constant (t) and time delay (?) are also used. The unique methodology is implemented and validated using the pilot plant's distillation column. To determine the robustness of the proposed control system, a simulation study, statistical analysis and real-time experimentation are conducted. In addition, the outcomes are compared to different control algorithms.

Findings

Research indicates that integral control parameters (Ki) affect outputs substantially more than proportional control parameters (Kp). The results of this paper show that control and noise parameters must be considered to make the control system robust. In addition, Taguchi's approach, in conjunction with multi-response optimisation, ensures robust controller design with optimal use of resources. Eventually, this research shows that the best outcomes for all the performance indices are achieved when Kp11 = 1.6859, Kp12 = −2.061, Kp21 = 3.1846, Kp22 = −1.2176, Ki11 = 1.0628, Ki12 = −1.2989, Ki21 = 2.454 and Ki22 = −0.7676.

Originality/value

This paper provides a step-by-step strategy for designing and validating a multi-response control system that accommodates controllable and uncontrollable parameters (noise parameters). The methodology can be used in any industrial Multi-Input-Multi-Output system to ensure process robustness. In addition, this paper proposes a multidisciplinary approach to industrial controller design that academics and industry can refine and improve.

Details

Title
Designing multivariable PI controller with multi-response optimization for a pilot plant binary distillation column: a robust design approach
Author
Bhat, Vinayambika S 1 ; Thirunavukkarasu Indiran 2 ; Selvanathan, Shanmuga Priya 3 ; Bhat, Shreeranga 4 

 Department of Electronics and Communication Engineering, Mangalore Institute of Technology and Engineering, Moodabidre, India 
 Department of Instrumentation and Control Engineering, Manipal Institute of Technology, Manipal, India 
 Department of Chemical Engineering, Manipal Institute of Technology, Manipal, India, and 
 Department of Mechanical Engineeing, St Joseph Engineering College, Mangalore, India 
Volume
23
Issue
1
Pages
207-227
Number of pages
21
Publication year
2025
Publication date
2025
Publisher
Emerald Group Publishing Limited
Place of publication
Bingley
Country of publication
United Kingdom
Publication subject
ISSN
17260531
e-ISSN
17588901
Source type
Scholarly Journal
Language of publication
English
Document type
Journal Article
Publication history
 
 
Online publication date
2023-07-07
Milestone dates
2022-12-25 (Received); 2023-04-08 (Revised); 2023-05-05 (Revised); 2023-05-20 (Accepted)
Publication history
 
 
   First posting date
07 Jul 2023
ProQuest document ID
3150634877
Document URL
https://www.proquest.com/scholarly-journals/designing-multivariable-pi-controller-with-multi/docview/3150634877/se-2?accountid=208611
Copyright
© Emerald Publishing Limited.
Last updated
2025-07-22
Database
ProQuest One Academic