Patent classifications
B25J11/0065
Robotic systems and methods to treat vertical external surface of structure
A frame body may be parallel to and proximate with an external surface of a structure and extend substantially horizontally from a first side to a second side. A connecting portion may be provided to be attached to a cable to provide for vertical movement of the frame body. A robotic arm may be affixed proximate to a bottom of the frame body and be able to move horizontally during treatment of the external surface. Moreover, the robotic arm may extend to an end proximate with the external surface, and a cleaning portion may be attached to the robotic arm near the end proximate with the external surface. The robotic arm may rotate, vertically moving the cleaning portion during treatment of the external surface. In addition, the cleaning portion may be separately rotated to remain substantially parallel to and proximate with the external surface during rotation of the robotic arm.
Machine tool for robot-assisted surface finishing
The invention relates to a machine tool for robot-assisted surface finishing. According to one embodiment, the machine tool comprises a first support plate and a second support plate. The first support plate is designed for mounting on a manipulator. An output shaft for receiving a rotatable tool is mounted on the second support plate. The machine tool additionally comprises a linear actuator that acts between the first support plate and the second support plate, as well as a motor which is mounted on the first support plate. The machine tool additionally comprises a telescopic shaft with a first shaft portion and a second shaft portion that can be displaced relative to said first shaft portion. The first shaft portion is coupled to a motor shaft of the motor, and the second shaft portion as mounted on the second support plate. The telescopic shaft is coupled to the output shaft by means of a gear mechanism.
Machining system having a tool for finishing airfoils
An abrasive profiling tool that may be part of a robotic machining system for machining a trailing edge of an airfoil, includes a shank extending along a rotational axis, a bearing guide rotationally secured to a distal end of the shank for riding upon the airfoil; and an abrasive profiler projecting radially and rigidly outward from the shank for grinding at least the trailing edge as the shank rotates. The profiler may include a round-over portion for grinding the trailing edge and a chamfered blending portion for grinding adjacent surfaces of the airfoil to produce a smooth transition from the adjacent surfaces and to the trailing edge.
AUTO EXTRUDED SPLIT/SPHERICAL TEE AND FULL ENCIRCLEMENT SADDLE
The disclosure describes an automated system and method to manufacture extruded split tees, spherical tees, and full encirclement saddle (FES) component parts. The system and method provide for the manufacture of pipe reinforcement components from raw material plates, comprising: an input storage for the raw material plates; one or more ovens for heating the plates; one or more extrusion presses for extruding the heated raw material plates into one or more pipe reinforcement components and an output storage for the pipe reinforcement components. A robotic device is adapted to automatically access and perform operations at the input storage, at the one or more ovens, at the one or more extrusion presses, and at the output storage.
MULTI-PROCEDURE INTEGRATED AUTOMATIC PRODUCTION LINE FOR HARD ALLOY BLADES UNDER ROBOT CONTROL
A multi-procedure integrated automatic production line for hard alloy blades under robot control is provided. The production line includes a rail-guided robot. A cutter passivation device and a blade cleaning and drying device are arranged on one side of the rail-guided robot. A blade-coating transfer table, a blade coating device, a blade boxing transfer table, a blade-tooling dismounting device and a blade boxing device are sequentially arranged on another side of the rail-guided robot. The blade-tooling dismounting device is arranged on one side of the blade boxing transfer table. The production line further includes squirrel-cage toolings for carrying the blades. The squirrel-cage tooling that are loaded with the blades can run among the cutter passivation device, the blade cleaning and drying device, the blade-coating transfer table and the blade boxing transfer table. The blades after being treated through the blade-tooling dismounting device are sent to the blade boxing device.
QUICK-CHANGE GRIPPER APPARATUS FOR A GRINDING SYSTEM
A gripper apparatus for loading workpieces to a grinding system includes a mount, a gas-supply coupler, a gas manifold, pneumatic cylinders, and grippers. The gas-supply coupler is supported by the mount and has a first end that detachably mates with a corresponding coupler attached to an external gas-supply conduit. The gas manifold is supported by the mount and is coupled to a second end of the gas-supply coupler. The pneumatic cylinders are supported by the mount, with each pneumatic cylinder being arranged to receive a supply of gas via the gas manifold. The grippers are respectively attached to the pneumatic cylinders. Each gripper has an opened state and a closed state brought about by controlled actuation of a corresponding pneumatic cylinder. The mount includes openings, with each of the openings being structured to receive a corresponding shaft for attaching the mount to a gantry assembly of the grinding system.
METHOD TO INCORPORATE COMPLEX PHYSICAL CONSTRAINTS IN PATH-CONSTRAINED TRAJECTORY PLANNING FOR SERIAL-LINK MANIPULATOR
A method of generating robot trajectories for a robot device includes generating surface parameters and/or measurements for the surface of the object; receiving one or more parameters to maximize or minimize robot objectives; receiving one or more motion parameters for the robot to perform the task on the surface of the object and/or receiving one or more workspace parameters; receiving a plurality of constraint parameters; and generating an initial parametric representation of a trajectory for the robot in performing the task. The method further includes generating an initial trajectory based on the initial parametric representation of the trajectory, one or more workspace parameters, the one or more motion parameters, and/or the one or more parameters to maximize or minimize robot objectives; selecting a first set of constraint parameters; and performing trajectory generation by applying the selected first set of constraint parameters to create one or more first robot trajectories.
ROBOTIC SYSTEMS AND METHODS TO TREAT VERTICAL EXTERNAL SURFACE OF STRUCTURE
A frame body may be parallel to and proximate with an external surface of a structure and extend substantially horizontally from a first side to a second side. A connecting portion may be provided to be attached to a cable to provide for vertical movement of the frame body. A robotic arm may be affixed proximate to a bottom of the frame body and be able to move horizontally during treatment of the external surface. Moreover, the robotic arm may extend to an end proximate with the external surface, and a cleaning portion may be attached to the robotic arm near the end proximate with the external surface. The robotic arm may rotate, vertically moving the cleaning portion during treatment of the external surface. In addition, the cleaning portion may be separately rotated to remain substantially parallel to and proximate with the external surface during rotation of the robotic arm.
Working system including a pneumatic actuator
Working system for an application of force onto a workpiece, with a pneumatic actuator having an actuator housing designed to be fixed to a manipulator and a moveable element designed to couple an end effector and movably received on the actuator housing, and with a controller having a valve arrangement for a compressed air supply to the pneumatic actuator, has a position sensor system for determining a spatial position of the pneumatic actuator and for providing position-dependent electrical position sensor signals, and a processing system for processing the position sensor signals and for providing control signals to the valve arrangement, the processing system being designed for controlling a pneumatic supply to the pneumatic actuator as a function of the position sensor signals.
ROPE TRACTION TYPE GRINDING, CLEANING, AND COATING INTEGRATED OPERATION ROBOT
The present disclosure relates to a rope traction type grinding, cleaning, and coating integrated operation robot. The operation robot includes a hanging basket, a first traction mechanism connected to the hanging basket, a grinding mechanism arranged in front of the hanging basket, and a cleaning and spraying mechanism and a spring reaction force regulation mechanism arranged in the hanging basket. The first traction mechanism includes first ropes for connecting the hanging basket and first rope winding mechanisms. The cleaning and spraying mechanism includes a first vertical plate and a second vertical plate that are arranged in parallel in a vertical direction. A cleaning nozzle and a spraying nozzle are mounted on the first vertical plate. From the above technical solution, it can be seen that the operation robot adopts a rope traction manner, and has the advantages of large work space, low mechanism inertia, and accurate and reliable location.