Although conventional model reference adaptive control (MRAC) achieves good tracking performance for cylinder control, the controller structure is much more complicated and has less robustness to disturbance in real applications. This paper discusses the use of simple adaptive control (SAC) for positioning a water hydraulic servo cylinder system. Compared with MRAC, SAC has a simpler and lower order structure, i.e., higher feasibility. The control performance of SAC is examined and evaluated on a water hydraulic servo cylinder system. With the recent increased concerns over global environmental problems, the water hydraulic technique using pure tap water as a pressure medium has become a new drive source comparable to electric, oil hydraulic, and pneumatic drive systems. This technique is also preferred because of its high power density, high safety against fire hazards in production plants, and easy availability. However, the main problems for precise control in a water hydraulic system are steady state errors and overshoot due to its large friction torque and considerable leakage flow. MRAC has been already applied to compensate for these effects, and better control performances have been obtained. However, there have been no reports on the application of SAC for water hydraulics. To make clear the merits of SAC, the tracking control performance and robustness are discussed based on experimental results. SAC is confirmed to give better tracking performance compared with PI control, and a control precision comparable to MRAC (within 10 μm of the reference position) and higher robustness to parameter change, despite the simple controller. The research results ensure a wider application of simple adaptive control in real mechanical systems.
[1]
Luciana R. Barroso,et al.
Structural performance improvement using MR dampers with adaptive control method
,
2009,
2009 American Control Conference.
[2]
Andrew Plummer,et al.
Robust Adaptive Control for Hydraulic Servosystems
,
1990
.
[3]
I. Bar-Kana.
Parallel feedforward and simplified adaptive control
,
1987
.
[4]
Kazuhisa Ito,et al.
Robust Control Performance Comparison on Water Hydraulic Servo Motor System
,
2008
.
[5]
George T.-C. Chiu,et al.
Adaptive robust motion control of single-rod hydraulic actuators: theory and experiments
,
2000
.
[6]
Mingcong Deng,et al.
A parallel feedforward compensator virtually realizing almost strictly positive real plant
,
1994,
Proceedings of 1994 33rd IEEE Conference on Decision and Control.
[7]
J. Broussard,et al.
Feedforward control to track the output of a forced model
,
1978
.
[8]
Kazuhisa Ito,et al.
Robust Speed Control of Water Hydraulic Servomotor System with Load Fluctuations
,
2003
.
[9]
Zenta Iwai,et al.
Intracameral Pressure in PEA stabilized by Simple Adaptive Control with a Down-Sized Gear Pump
,
2004
.
[10]
Shen Tielong,et al.
Nonlinear Robust Velocity Control for Water Hydraulic Servomotor System with Uncertainty
,
2005
.
[11]
Kazushi Sanada.
A method of designing a robust force controller of a water-hydraulic servo system
,
2002
.
[12]
Kazuhisa Ito,et al.
Positioning Control of Hydraulic Actuator with Uncertain Input Nonlinearity
,
2006
.