Current controlled motor amplifier system

Electricity: motive power systems – Induction motor systems – Primary circuit control

Reexamination Certificate

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Details

C318S594000, C318S280000, C318S801000, C318S800000, C318S798000, C318S829000

Reexamination Certificate

active

06683437

ABSTRACT:

FIELD OF THE INVENTION
The present invention relates generally to a current controlled motor amplifier system.
BACKGROUND OF THE INVENTION
The conventional approach to transconductance or current controlled motor amplifier design includes current sensing, scaling, error amplification, compensation, and motor drive. One example of such an amplifier is shown in
FIG. 1
in which T
1
, T
2
, T
3
, and T
4
are solid-state switches (usually transistors), M is the electric motor (or one phase of the motor in the case of a multiphase motor), and I is the current in the motor. A reverse biased diode is connected to each switch. The upper and lower terminals of the H bridge are connected to maximum potentials.
The conventional approach is used specifically in areas where significant motor rotational velocities result in high motor back-EMF (electromagnetic force). By sensing the motor current, and developing a current signal proportional to the motor current, the instantaneous motor current can be compared with the commanded motor current. Any difference between the commanded and measured motor current is amplified as an error signal that is the command signal to the motor drive bridge. If the measured current is smaller than the commanded current, then the error signal will command a compensatory increase in motor current. In this way, the output current, and hence an output torque of the motor is proportional to the input command to the amplifier.
The conventional approach is usually well suited to driving motors over a wide range of loads and rotational velocities. A problem with the conventional approach is that it addresses a larger situation than that of the typical force-feedback application, such as wheel or joystick amplifiers in gaming applications, which tend to operate close to stall, or at comparatively low rotational velocities. The breadth of coverage in the conventional approach adds unnecessary complexity to the motor amplifier design for force-feedback applications.
Accordingly, what is needed is an approach to current controlled motor amplifier design that is less complex and more suitable for high fidelity force feedback applications.
SUMMARY OF THE INVENTION
Aspects of a current controlled motor amplifier system are provided. These aspects include a current source motor amplifier comprising current source means on each leg of a top half of the H bridge configuration and switching means on each leg of a bottom half of the H bridge configuration. A motor is coupled to the current source motor amplifier at a center portion of the H bridge configuration. Control circuitry is coupled to the current source motor amplifier for controlling the switching on of the current source motor amplifier for a predetermined time to operate the top half of the H bridge configuration essentially as a linear constant current source and the bottom half of the H bridge configuration in switching mode.
Through the present invention, significant current loop delays associated with conventional approaches are avoided. Further, the present invention provides a less complex and less costly solution that includes overvoltage protection and is more suitable for high fidelity force feedback when changing direction of motor rotation. The present invention also provides for a simple means of motor back EMF compensation. These and other advantages will become readily apparent from the following detailed description and accompanying drawings.


REFERENCES:
patent: 3157853 (1964-11-01), Hirsch
patent: 3220121 (1965-11-01), Culter
patent: 3497668 (1970-02-01), Hirsch
patent: 3517446 (1970-06-01), Corlyon et al.
patent: 3623064 (1971-11-01), Kagan
patent: 3902687 (1975-09-01), Hightower
patent: 3903614 (1975-09-01), Diamond et al.
patent: 3911416 (1975-10-01), Feder
patent: 4160508 (1979-07-01), Frosch et al.
patent: 4236325 (1980-12-01), Hall et al.
patent: 4513235 (1985-04-01), Acklam et al.
patent: 4581491 (1986-04-01), Boothroyd
patent: 4599070 (1986-07-01), Hladky et al.
patent: 4708656 (1987-11-01), de Vries et al.
patent: 4713007 (1987-12-01), Alban
patent: 4794392 (1988-12-01), Selinko
patent: 4891764 (1990-01-01), McIntosh
patent: 4930770 (1990-06-01), Baker
patent: 4934694 (1990-06-01), McIntosh
patent: 5019761 (1991-05-01), Kraft
patent: 5022407 (1991-06-01), Horch et al.
patent: 5035242 (1991-07-01), Franklin et al.
patent: 5038089 (1991-08-01), Szakaly
patent: 5078152 (1992-01-01), Bond et al.
patent: 5212473 (1993-05-01), Louis
patent: 5240417 (1993-08-01), Smithson et al.
patent: 5271290 (1993-12-01), Fischer
patent: 5275174 (1994-01-01), Cook
patent: 5299810 (1994-04-01), Pierce et al.
patent: 5309140 (1994-05-01), Everett, Jr. et al.
patent: 5334027 (1994-08-01), Wherlock
patent: 5466213 (1995-11-01), Hogan et al.
patent: 5547382 (1996-08-01), Yamasaki et al.
patent: 5766016 (1998-06-01), Sinclair et al.
patent: 5785630 (1998-07-01), Bobick et al.
patent: 5838515 (1998-11-01), Mortazavi et al.
patent: 6456024 (2002-09-01), Schmider et al.
patent: 0 349 086 (1990-01-01), None
Baigrie, “Electric Control Loading—A Low Cost, High Performance Alternative,”Proceedings of Interservice/Industry Training Systems Conference, pp. 247-254, Nov. 6-8, 1990.
Iwata, “Pen-based Haptic Virtual Environment,” 0-7803-1363-1/93 IEEE, pp. 287-292, 1993.
Russo, “The Design and Implementation of a Three Degree of Freedom Force Output Joystick,”MIT Libraries Archivespp. 1-131, May 1990, archived Aug. 14, 1990.
Brooks et al., “Hand Controllers for Teleoperation—A State-of-the-Art Technology Survey and Evaluation,”JPL Publication 85-11, NASA-CR-175890; N85-28559, pp. 1-84, Mar. 1, 1985.
Jones et al., “A perceptual analysis of stiffness,” ISSN 0014-4819 Springer International (Springer-Verlag);Experimental Brain Research, vol. 79, No. 1, pp. 150-156, 1990.
Burdea et al., “Distributed Virtual Force Feedback, Lecture Notes for Workshop on Force Display in Virtual Environments and its Application to Robotic Teleoperation,”1993 IEEE International Conference on Robotics and Automation, pp. 25-44, May 2, 1993.
Snow et al., “Model-X Force-Reflecting-Hand-Controller,” NT Control No. NPO-17851; JPL Case No. 7348, pp. 1-4 with 45 pages of attachments, Jun. 15, 1989.
Ouh-Young, “Force Display in Molecular Docking,” Doctoral Dissertation, University of North Carolina at Chapel Hill, UMI Order No. 9034744, p. 1-369, 1990.
Tadros, “Control System Design for a Three Degree of Freedom Virtual Environment Simulator Using Motor/Brake Pair Actuators,”MIT Archive, pp. 1-88, Feb. 1990, archived Aug. 13, 1990.
Caldwell et al., “Enhanced Tacile Feedback (Tele-Taction) Using a Multi-Functional Sensory System,” 1050-4729/93, pp. 995-960, 1993.
Adelstein et al., “Design and Implementation of a Force Reflecting Manipulandum for Manual Control research,” DSC-vol. 42,Advances in Robotics, pp. 1-12, 1992.
Gotow et al., “Controlled Impedance Test Apparatus for Studying Human Interpretation of Kinesthetic Feedback,” WA11-11:00, pp. 332-337.
Stanley et al., “Computer Simulation of Interacting Dynamic Mechanical Systems Using Distributed Memory Parallel Processors,” DSC-vol. 42,Advances in Robotics, pp. 55-61, ASME 1992.
Russo, “Controlling Dissipative Magnetic Particle Brakes in Force Reflective Devices,” DSC-vol. 42,Advances in Robotics, pp. 63-70, ASME 1992.
Kontarinis et al., “Display of High-Frequency Tactile Information to Teleoperators,”Telemanipulator Technology and Space Telerobotics, Won S. Kim, Editor, Proc. SPIE vol. 2057, pp. 40-50, Sep. 7-9, 1993.
Patrick et al., “Design and Testing of A Non-reactive, Fingertip, Tacile Display for Interaction with Remote Environments,”Cooperative Intelligent Robotics in Space, Rui J. DeFigueiredo et al, Editor, Proc. SPIE vol. 1387, pp. 215-222, 1990.
Adelstein, “A Virtual Environment System For The Study of Human Arm Tremor,”Ph.D. Dissertation, Dept. of Mechanical Engineering, MIT, Jun. 1989, archived Mar. 13, 1990.
Bejczy, “Sensors, Controls, and Man-Machine Interface for Advanced Teleoperation,”Science, vol. 208, No. 4450, pp. 1327-1335, 1980.
Bejczy et al., “Generalization of Bilateral Force-Ref

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