Patent classifications
B25J17/025
Utilizing optical data to dynamically control operation of a snake-arm robot
Methods and systems for controlling a snake-arm robot. In an embodiment, a server computer receives real-time image data associated with at least one of an operating environment and a location of a workpiece from an optical sensor mounted on a robot head of a snake-arm robot, and receives, input data describing a desired pose of the robot head from a user device. The server computer then computes a desired velocity of the robot head using an image Jacobian, translates the desired velocity of the robot head into incremental displacement data and rotation data within a control cycle, computes a position of each of a plurality of links comprising a snake-arm of the snake-arm robot to follow motion of the robot head, computes a current position of each of the plurality of links utilizing a forward dynamics model, and computes force and torque data required to move at least one of a plurality of joints connecting the links to move the snake-arm robot to the desired pose. The method also includes generating movement instructions based on the force and torque data, and transmitting the movement instructions to at least one of a drive motor associated with an introduction device and a plurality of controllers associated with servo-motors operably connected to joints connecting the links of the snake arm causing the robot head to move to the desired pose.
JOINT ASSEMBLY
A joint assembly for a robot, comprising a housing connected with an output part. The housing comprising a housing wall and a strain wave gearing system. The strain wave gearing system comprising a wave generator, a flexspline, and a circular spline connected to the output part. The wave generator is rotated by a rotor shaft. The rotor shaft is driven by an electric motor comprising a rotor magnet and a stator. The rotor magnet being affixed to the rotor shaft. The joint assembly further comprises one or more sensors comprising one or more magnetic field sensors and one or more pole rings arranged to measure a position of the output part in relation to the housing.
MULTI-CHAMBER ROTARY PISTON ACTUATOR
The subject matter of this specification can be embodied in, among other things, a fluid actuator including a housing defining a first chamber having a first cavity and a first open end, a first piston assembly including a tubular first piston defining a second chamber having a second cavity and a second open end, disposed in said first housing for reciprocal movement in the first chamber through the first open end, wherein a first seal, the first cavity, and the first piston define a first pressure chamber, and a second piston assembly having an second piston disposed in said first piston assembly for reciprocal movement in the second chamber through the second open end, wherein a second seal, the second cavity, and the second piston define a second pressure chamber, and a first portion of the second piston contacts a first end effector.
Articulated mechanism with protective sleeve at joint
An assembly of links and motorized joint unit of a mechanism comprises one or more pairs of links, each said link having a tubular body, at least one end of each of the tubular body being an open end having at least one connector. A motorized joint unit has a first portion received in the open end of the tubular body of a first of the links, the motorized joint unit secured to the at least one connector of the first of the links, a second portion rotatable relative to the first portion by actuation of the motorized joint unit, the second portion received in the open end of the tubular body of a second of the links, the motorized joint unit secured to the at least one connector of the second of the links. A protective sleeve has a tubular body rotatably mounted over the at least one connector of each of the first and the second link, the protective sleeve concealing the connectors and a joint between the pair of links.
ROTARY ACTUATOR AND ROBOTIC FORCEPS
A rotary actuator includes: a housing including an interior space in which a vane is disposed; and a cover that is attached to the housing and covers the interior space. An annular seal groove having a triangular cross-sectional shape is formed between the housing and the cover in a manner to surround the interior space, and an outer sealing member is inserted in the seal groove.
MULTI-AXIS ROBOTIC ARM
A multi-axis robotic arm includes a pedestal, a plurality of knuckle module and at least one detachable arm module. One of the plurality of the knuckle modules is connected with the pedestal. Two knuckle modules are connected to a first connecting element and a second connecting element. The first connecting element has a first docking portion, and the second connecting element has a second docking portion. The first docking portion and the second docking portion are detachably docked with each other by a plurality of fasteners. The at least one arm module have a third docking portion and a fourth docking portion. The third docking portion is detachably docked with the first docking portion by the plurality of the fasteners. The fourth docking portion is detachably docked with the second docking portion by the plurality of the fasteners.
Articulated robot arm
The invention relates to an articulated robot arm (1) which comprises a plurality of trapezoidal truncated cylinders (2) disposed in succession around an internal holding member (4), each trapezoidal truncated cylinder (2) being configured to pivot about the internal holding member (4), the internal holding member (4) having angular control means for controlling the rotation of each trapezoidal truncated cylinder (2).
Joint assembly
The present invention relates to a joint assembly (1) for a robot (100), comprising a housing (26) connected with an output part (8), the housing comprising a housing wall (26A), a strain wave gearing system (90) comprising a wave generator (7), a flexspline (13), and a circular spline (36) connected to the output part (8), wherein the wave generator (7) is rotated by a rotor shaft (3), the rotor shaft being driven by an electric motor (140) comprising a stator (15) and a rotor magnet (16), the rotor magnet (16) being affixed to the rotor shaft (3), and wherein the joint assembly (1) further comprises a rotor brake (30) configured to stop/prevent relative movement between the rotor shaft (3) and the flexspline (13), and sensors arranged to measure the position of the housing (26) in relation to the output part (8). Furthermore, the present invention also relates to a robotic arm (100) comprising a joint assembly according to the present invention and to the use of the joint assembly according to the present invention.
Multi-Axis Gripper For Lab Automation Robot
A lab automation robot is provided including a stationary base, a swiveling tower rotatably mounted to the stationary base about a first vertical axis, an arm vertically translatably mounted to the tower, an articulating forearm coupled to the arm at an elbow joint and pivotal relative thereto about a second vertical axis, and a wrist assembly including a multi-axis gripper operatively coupled to the forearm at a wrist joint and rotatable relative thereto about a third vertical axis. The gripper is further rotatable relative to at least the forearm about a first horizontal axis and about a second horizontal axis.
Under-actuated robotic manipulators
Underactuated robotic manipulators may include a plurality of links rotatably or rigidly coupled to one another at a plurality of joints. The links may include driven links that are driven to grasp an object to be held, driving links that are actuated by an actuator to drive movement of the driven links, and a plurality of connecting links that couple the driving links to the driven links. Such manipulators may include a plurality of driven links and associated touch points, and a plurality of independent degrees of freedom, and be driven by a single actuator, making them underactuated.