Sensor Fusion for Improved Control of Piezoelectric Tube Scanners

被引:46
作者
Fleming, Andrew J. [1 ]
Wills, Adrian G. [1 ]
Moheimani, S. O. Reza [1 ]
机构
[1] Univ Newcastle, Sch Elect Engn & Comp Sci, Callaghan, NSW 2308, Australia
基金
澳大利亚研究理事会;
关键词
Displacement estimation; Kalman filter; nanopositioner; piezoelectric strain sensor; piezoelectric tube scanner; receding horizon control; sensor fusion;
D O I
10.1109/TCST.2008.921798
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In nanopositioning applications, capacitive or inductive sensors are used to measure displacement and provide feedback to eliminate actuator nonlinearity, dynamics, cross-coupling between axes, and thermal drift. Due to their noise density, typically 20 pm/root Hz for 100-mu m range transducers, feedback loops are restricted to a few tens of Hertz if nanometer precision is required. In this study, a capacitive displacement sensor is used with a piezoelectric strain voltage measurement to reduce sensor noise at frequencies above 1 Hz. The piezoelectric strain voltage is derived from an open-circuit electrode on a four-quadrant piezoelectric tube actuator and requires no additional hardware. The noise density of the piezoelectric strain voltage is measured to be three orders of magnitude lower than the capacitive sensor. This allows a large increase in closed-loop bandwidth with no penalty on sensor-induced noise. The advantageous properties of the capacitive sensor and piezoelectric strain voltage are discussed and utilized to design a Kalman filter that combines the two signals in a statistically optimal way. A receding horizon control strategy is then introduced as a technique for controlling the tube scanner. A wide-bandwidth controller is implemented that provides reference tracking and damping of the actuator resonance, with root-mean-square displacement noise below 0.4 nm.
引用
收藏
页码:1265 / 1276
页数:12
相关论文
共 29 条
[1]  
Bhushan B., 2004, HDB NANOTECHNOLOGY
[2]   SINGLE-TUBE 3-DIMENSIONAL SCANNER FOR SCANNING TUNNELING MICROSCOPY [J].
BINNIG, G ;
SMITH, DPE .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1986, 57 (08) :1688-1689
[3]  
Bonnell D., 2001, SCANNING PROBE MICRO
[4]  
BROWN R. G., 2012, INTRO RANDOM SIGNALS
[5]   Performance of stochastic and deterministic dithered quantizers [J].
Carbone, P ;
Petri, D .
IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2000, 49 (02) :337-340
[6]   ELECTROMECHANICAL DEFLECTIONS OF PIEZOELECTRIC TUBES WITH QUARTERED ELECTRODES [J].
CHEN, CJ .
APPLIED PHYSICS LETTERS, 1992, 60 (01) :132-134
[7]   Creep, hysteresis, and vibration compensation for piezoactuators: Atomic force microscopy application [J].
Croft, D ;
Shed, G ;
Devasia, S .
JOURNAL OF DYNAMIC SYSTEMS MEASUREMENT AND CONTROL-TRANSACTIONS OF THE ASME, 2001, 123 (01) :35-43
[8]   Optimal tracking of piezo-based nanopositioners [J].
Croft, D ;
Stilson, S ;
Devasia, S .
NANOTECHNOLOGY, 1999, 10 (02) :201-208
[9]  
CROFT D, 1998, T ASME, V120, P617
[10]   A survey of control issues in nanopositioning [J].
Devasia, Santosh ;
Eleftheriou, Evangelos ;
Moheimani, S. O. Reza .
IEEE TRANSACTIONS ON CONTROL SYSTEMS TECHNOLOGY, 2007, 15 (05) :802-823