ABSTRACT
In this paper we intend to quickly tune a PID controller for an aperiodic system. The aim is a quick tuning with only the step response in open loop. First we simplify the PID controller to keep only two parameters: a gain and a time constant. Secondly, the open loop system is modelized by a model with three or four parameters thatare not very correlated so they are easy to estimate by the open-loop step response.This gives a setting that imposes closed-loop stability with a limited overflow and the largest possible bandwidth. The method also extends to integrator systems or to the determination of a corrector having two integrations in order to cancel the tracking error. We present the application of the method to the control of a dryer.
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INTRODUCTION
PID control is the simplest and most widely used closed-loop control. It is suitable for aperiodic systems. Correct tuning, however, is a delicate matter, and requires the open-loop system to be modeled and identified. For this purpose, simplified models have been proposed, for example by Broïda or Strejc, which have few parameters that can be obtained from the index response.
We present here two other models applicable to aperiodic systems, whose parameters are obtained from an index response and which quickly lead to the setting of a PID corrector. The two models proposed
and
can represent a wide range of processes. They have only three or four parameters with low correlation. Each parameter has a physical meaning, making it easy to rule out aberrant identifications. From these parameters, we deduce the PID corrector setting best suited to the system.
The PID corrector is simplified to
with only two parameters (A and T, since r ≈ 12 varies little). The aim is not to obtain optimal control, but only to achieve fast and satisfactory adjustment of the corrector. The tuning imposes closed-loop stability with...
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KEYWORDS
Behavior model
| Aperiodic system
| PID control
Ongoing reading
Simplified models of aperiodic systems FOR their PID control. Tuning from the step response