Title :
Multi-variable flatness-based control for an engine cooling system
Author :
Butt, Saif Siddique ; Prabel, Robert ; Grimmecke, Robert ; Aschemann, Harald
Author_Institution :
Dept. of Mechatron., Univ. of Rostock, Rostock, Germany
Abstract :
In this paper, a nonlinear control-oriented model of the thermal behaviour of an engine cooling system for vehicles is presented. The volume flow of an electrically driven coolant pump and the angular velocity of a radiator-fan unit serve as control inputs in a flatness-based nonlinear control approach. A constrained control problem arises due to the given physical bounds on the actuator inputs. Based on the derived system representation, a flatness-based control is designed that allows for tracking of desired trajectories for the engine outlet temperature as well as the radiator outlet temperature. The control structure is implemented in a time-discretised form. Furthermore, a discrete-time Extended Kalman Filter (EKF) is employed which estimates unmeasurable heat flows affecting the system. An experimental analysis using both feasible trajectories and infeasible trajectories, leading to actuator saturation, highlights the effectiveness of the model-based control approach.
Keywords :
Kalman filters; actuators; angular velocity; automotive components; control system synthesis; coolants; cooling; discrete time filters; fans; internal combustion engines; multivariable control systems; nonlinear control systems; nonlinear filters; pumps; EKF; actuator inputs; actuator saturation; angular velocity; constrained control problem; control inputs; discrete-time extended Kalman filter; electrically driven coolant pump; engine cooling system; engine outlet temperature; feasible trajectories; flatness-based control design; infeasible trajectories; model-based control approach; multivariable flatness-based nonlinear control approach; nonlinear control-oriented model; physical bounds; radiator outlet temperature; radiator-fan unit; system representation; thermal behaviour; time-discretised control structure; trajectory tracking; unmeasurable heat flow estimation; volume flow; Angular velocity; Cooling; Engines; Heating; Temperature measurement; Trajectory; Vectors;
Conference_Titel :
Control Applications (CCA), 2014 IEEE Conference on
Conference_Location :
Juan Les Antibes
DOI :
10.1109/CCA.2014.6981545