IL197992A

Maneuvering robotic vehicles having a positionable sensor head

Abstract

This record has no abstract on file.

IL197992A, drawing sheet 1
Sheet 1 of 45

Term

No projected expiry on record.

  1. Priority
  2. Filed
  3. Published
  4. Today

40 claims: 13 independent, 27 dependent

  1. 1
    CLAIMS:]. A robot capable of addressing various obstacles and comprising: a chassis supporting a skid steered drive and having a leading end, a trailing end, and a chassis center of gravity between the leading and trailing ends;a set of driven flippers, each flipper having a distal end, a pivot end, and a flipper center of gravity between the distal and pivot ends of the flippers, each flipper being pivotable about a first pivot axis common with a drive axis near the leading end of the chassis;a neck having a distal end, a pivot end, and a neck center of gravity between the distal and pivot ends of the neck, the neck pivotable about a second pivot axis substantially at the leading end of the chassis;and a sensor head pivotally coupled to the neck, the sensor head having a distal end, a pivot end, and a head center of gravity between the distal and pivot ends of the neck;wherein the chassis, flippers, neck and head: (i) have a combined center of gravity disposed in a forwardrearward sense between the distal and pivot ends of the flippers when the flippers are in a stowed position with their distal ends between the leading and trailing ends of the chassis, and (ii) are each independently movable between a first position and a second position to reposition the combined center of gravity for negotiating an obstacle.
  2. 14
    The robot of any one of claims 12-13, wherein the neck comprises at least a longitudinally elongated first piece and a longitudinally elongated second piece, the second piece being offset approximately parallel to the first piece and connected to the first piece such that when the sensor head is in the stowed position, the second piece is positioned below the first piece.
  3. 15
    The robot of any one of claims 12-14, wherein the second tilt axis actuator is rotatable through 360 degrees.
  4. 16
    The robot of any one of claims 12-15, wherein the first tilt actuator, the second tilt actuator, and the one-axis actuator each comprise an actuator motor, a motor driver, digital logic circuitry for controlling the motor driver, and transceiver circuitry for communicating with an actuator control bus. 01924992\21-01
  5. 22
    The robot of any one of claims 18-21, wherein the neck defines a pass-through region through which a power cable extends to provide power from batteries in the chassis or steerable drive to the controller and other circuitry in the sensor head.
  6. 24
    The robot of any one of claims 22-23, further comprising power management circuitry disposed in the chassis and operably coupled to circuitry in the sensor head through a power management bus at least partially disposed in the pass- through region.
  7. 28
    The robot of any one of claims 17-27, wherein the first tilt axis actuator transceiver circuitry includes first and second transceivers communicating with the shoulder tilt axis actuator and the one-axis actuator, respectively.
  8. 29
    The robot of any one of claims 17-28, wherein the transceiver circuitry of each actuator, includes first and second transceivers, and wherein the actuators arc provided with additional actuator control links to form an actuator control network in which each actuator acts as a node to receive commands through at least the first transceiver and transmit selected commands to an adjacent node through at least the second transceiver.
  9. 30
    The robot of any one of claims 17-29, wherein the neck includes an offset for receiving the head in line with a portion of the neck in a stowed position in which the head and neck are substantially within a footprint of the chassis.
  10. 34
    A method of controlling a robot to overcome an obstacle, the method comprising directing the robot to perform the following tasks:approach the obstacle;raise robot flippers to an angle to mount the obstacle;mount the obstacle to a first position where a robot chassis is oriented approximately at a first pitch;adjust the flippers to shift a robot center of gravity at least laterally toward the obstacle;and adjust a robot center of gravity by moving a neck forward into an obstacle mounting position.
  11. 36
    The method of any one of claims 34-35, wherein the robot comprises an articulated neck including a sensor head.
  12. 37
    The method of any one of claims 34-36, wherein the flippers house at least part of a robot energy storage device and have a density higher than an average density of the robot.
  13. 38
    The method of any one of claims 34-37, wherein the robot comprises an articulated neck further including payload-carrying fixtures.