Design and experimental evaluation of a nonlinear position controller for a pneumatic actuator with friction
Mark Karpenko, Nariman Sepehri
Abstract
Mark Karpenko, Nariman Sepehri
Abstract
This paper documents the development and experimental evaluation of a practical nonlinear position controller for a typical industrial pneumatic actuator that gives good performance for both regulating and reference tracking tasks. The system is comprised of a low-cost 5-port proportional valve with flow deadband and a double-rod actuator exhibiting significant friction. Quantitative feedback theory is employed to design a simple fixed-gain PI control law that minimizes the effects of the nonlinear control valve flows, uncertainty in the physical system parameters and variations in the plant operating point. Easy to implement nonlinear modifications to the designed PI control law are then tuned experimentally in a step-by-step fashion to reduce overshoot and to negate the effects of the control valve deadband and actuator friction. Experimental results clearly illustrating the efficacy of the approach are presented.
OpenAlex reports 31 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
This paper documents the development and experimental evaluation of a practical nonlinear position controller for a typical industrial pneumatic actuator that gives good performance for both regulating and reference tracking tasks. The system is comprised of a low-cost 5-port proportional valve with flow deadband and a double-rod actuator exhibiting significant friction. Quantitative feedback theory is employed to design a simple fixed-gain PI control law that minimizes the effects of the nonlinear control valve flows, uncertainty in the physical system parameters and variations in the plant operating point. Easy to implement nonlinear modifications to the designed PI control law are then tuned experimentally in a step-by-step fashion to reduce overshoot and to negate the effects of the control valve deadband and actuator friction. Experimental results clearly illustrating the efficacy of the approach are presented.
Key concepts: Control theory (sociology), Actuator, Pneumatic actuator, Overshoot (microwave communication), Nonlinear system, Plant, Controller (irrigation), Position (finance)