Title :
Multiobjective Optimal Design and Soft Landing Control of an Electromagnetic Valve Actuator for a Camless Engine
Author :
Yee-Pien Yang ; Jieng-Jang Liu ; Da-Hau Ye ; Yi-Ruei Chen ; Pai-Hsiu Lu
Author_Institution :
Dept. of Mech. Eng., Nat. Taiwan Univ., Taipei, Taiwan
Abstract :
This paper presents a multiobjective optimal design and an energy compensation control for the soft valve landing of an electromagnetic valve actuator in internal combustion engines. This axisymmetric and cylindrical actuator is used to achieve continuous and independent valve timing and lifting without mechanical cams, which features a hybrid magnetomotive force with permanent magnet (PM) and electromagnet, and a secondary air gap to prevent the PM irreversibly demagnetizing. The dynamics of the electromagnetic valve are modeled with an equivalent magnetic circuit, which is used to perform both sensitivity analysis and an optimal design function to satisfy multiple objectives, such as magnetic holding force, release current, and its rising time. The energy compensation control in which the positive and negative work of an armature stroke is equalized enables a zero landing velocity to be achieved. The experimental results from a prototype actuator show that the landing velocity can be greatly reduced by adjusting the duty cycle of the landing current, and the actuating power is greatly reduced after the energy compensation control is applied.
Keywords :
compensation; control system synthesis; electromagnetic actuators; force control; internal combustion engines; optimal control; sensitivity analysis; valves; velocity control; armature stroke; camless engine; duty cycle; electromagnet; electromagnetic valve actuator; energy compensation control; hybrid magnetomotive force; internal combustion engine; magnetic circuit; magnetic holding force; mechanical cams; multiobjective optimal design; permanent magnet; release current; rising time; sensitivity analysis; soft landing control; soft valve landing; valve lifting; valve timing; zero landing velocity; Actuators; Coils; Electromagnetics; Force; Magnetic circuits; Springs; Valves; Camless engine; electromagnetic valve actuator; energy compensation control; hybrid magnetic force; soft landing;
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
DOI :
10.1109/TMECH.2012.2195728