DocumentCode :
741954
Title :
Modeling, Simulation, and Experimental Investigation of an Electrohydraulic Closed-Center Power Steering System
Author :
DellAmico, Alessandro ; Krus, Petter
Author_Institution :
Div. of Fluid & Mechatron. Syst., Linkοping Univ., Linkόping, Sweden
Volume :
20
Issue :
5
fYear :
2015
Firstpage :
2452
Lastpage :
2462
Abstract :
In steering-related active safety systems, active steering is a key component. Active steering refers to the possibility to control the road wheel angle or the required torque to turn the wheels by means of an electronic signal. Due to the high axle loads in heavy vehicles, hydraulic power is needed to assist the driver in turning the wheels. One solution to realize active steering is, then, to use electronically controlled valves that are of closed-center type. This means that the assistance pressure, or force, can be set to any feasible value and still benefit from the high power density of fluid power systems. A closed-center solution also implies that a significant reduction in fuel consumption is possible. This paper investigates such an electrohydraulic power steering system, and a comparison with the original system is also made. The findings have shown that while a high response of the pressure control loop is desired for a good steering feel, instability might occur at higher steering wheel torque levels. This has effectively been shown and explained by simulation and hardware-in-the-loop simulation, together with linear analysis. For any desired boost curve, the response of the pressure control loop must be designed to preserve stability over the entire working range.
Keywords :
electrohydraulic control equipment; force control; pressure control; road vehicles; stability; steering systems; torque control; valves; active steering; assistance force; assistance pressure; axle load; boost curve; closed-center type valves; electrohydraulic closed-center power steering system; electronic signal; electronically controlled valves; fluid power system; fuel consumption; hardware-in-the-loop simulation; heavy vehicle; hydraulic power; instability; linear analysis; pressure control loop; road wheel angle control; steering feel; steering wheel torque; steering-related active safety system; torque control; wheel turning; Electrohydraulics; Friction; Power steering; Torque; Valves; Vehicles; Wheels; Active steering; hardware-in-the-loop simulation; nonlinear simulation; power steering system;
fLanguage :
English
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
Publisher :
ieee
ISSN :
1083-4435
Type :
jour
DOI :
10.1109/TMECH.2014.2384005
Filename :
7035065
Link To Document :
بازگشت