Patent classifications
B25J9/1687
System and methods for robotic precision placement and insertion
A system and methods are disclosed for precision placement or insertion of an object using robotic manipulation. A robotic tool includes at least three members, including a first member and a second member that grip the object between opposing faces and a third member that exerts a force on a proximate end of the object to push the object out of the robotic tool. A series of maneuvers is performed with the robotic tool in order to place the object on a surface or insert the object in a hole. The maneuvers include positioning the object against the surface, rotating the object around a contact point between the object and the surface, rotating the robotic tool around a contact point between the object and either the first or second member of the robotic tool, sliding the object horizontally along a surface, and tucking the object into a final desired position.
Automated machine for inserting wires into grommet cavity locations of an electrical connector and methods of operating
An automated wire insertion machine for inserting wires into grommet cavity locations of an electrical connector includes a controllable wire insertion robot and a processor to generate pre-generated plug maps based upon an original plug map of the grommet cavity locations and to control the wire insertion robot based upon one pre-generated plug map to insert the wires into the grommet cavity locations. The pre-generated plug maps are generated by defining a range of potential error of the grommet cavity locations that includes at least one of a potential rotational error and a potential translational error, defining an acceptable tolerance of the grommet cavity locations that includes at least one of an acceptable rotational tolerance and an acceptable translational tolerance, and calculating offset values of the grommet cavity locations based on the range of potential error and the acceptable tolerance, thereby generating the plurality of pre-generated plug maps.
DISCONTINUOUS GRID SYSTEM FOR USE IN SYSTEMS AND METHODS FOR PROCESSING OBJECTS INCLUDING MOBILE MATRIX CARRIER SYSTEMS
- Thomas Wagner ,
- Kevin Ahearn ,
- John Richard Amend, Jr. ,
- Benjamin Cohen ,
- Michael Dawson-Haggerty ,
- William Hartman Fort ,
- Christopher Geyer ,
- Jennifer Eileen King ,
- Thomas Koletschka ,
- Michael Cap Koval ,
- Kyle Maroney ,
- Matthew T. Mason ,
- William Chu-Hyon McMahan ,
- Gene Temple Price ,
- Joseph Romano ,
- Daniel Smith ,
- Siddhartha Srinivasa ,
- Prasanna Velagapudi ,
- Thomas Allen
An automated carrier system is disclosed for moving objects to be processed. The automated carrier system includes a discontinuous plurality of track sections on which an automated carrier may be directed to move, and the automated carrier includes a base structure on which an object may be supported, and at least two wheels assemblies being pivotally supported on the base structure for pivoting movement from a first position to a second position to effect a change in direction of movement of the carrier.
SYSTEMS AND METHODS FOR HIGH ACCURACY FIXTURELESS ASSEMBLY
An approach to positioning one or more robotic arms in an assembly system may be described herein. For example, a system for robotic assembly may include a first robot, a second robot, and a control unit. The control unit may be configured to receive a first target location proximal to a second target location. The locations may indicate where the robots are to position the features. The control unit may be configured to calculate a first calculated location of the first feature of the first subcomponent, measure a first measured location of the first feature of the first subcomponent, determine a first transformation matrix between the first calculated location and the first measured location, reposition the first feature of the first subcomponent to the first target location using the first robot, the repositioning based on the first transformation matrix.
ROBOT AND ROBOT-BASED CONTAINER STORAGE AND REMOVAL METHOD
A robot and a robot-based container storage and removal method. The robot comprises: a master control processing unit (110), a pick-and-place mechanism (120) and a marker detection unit (130), wherein according to target storage and removal position information of a target inventory container, the master control processing unit (110) controls a robot body to move to a first horizontal position and controls the pick-and-place mechanism (120) to move to a first height position; when the robot body and the pick-and-place mechanism (120) stop moving, the marker detection unit (130) determines a target pick-and-place marker from a target inventory support to which the target inventory container belongs; and the master control processing unit (110) also calibrates the position of the pick-and-place mechanism (120) according to the position of the target pick-and-place marker, so as to control the calibrated pick-and-place mechanism (120) to perform a storage operation or a removal operation on the target inventory container. By means of the solution, a pick-and-place position of a pick-and-place mechanism (120) of the robot can be precisely positioned and moved, such that the pick-and-place mechanism (120) can quickly and accurately store or remove a target inventory container.
POSITION SETTING DEVICE FOR SETTING WORKPIECE STACKING POSITION AND ROBOT APPARATUS PROVIDED WITH POSITION SETTING DEVICE
Provided is a position setting device that sets a position for stacking a second workpiece on a plurality of first workpieces. This position setting device is provided with a search unit that searches for a position where the second workpiece is allowed to be disposed on the first workpieces. The search unit includes a determination unit that determines whether to allow the second workpiece to be disposed so as to be supported on one of the first workpieces and another one of the first workpieces when the upper surface of the one first workpiece and the upper surface of the other first workpiece are different from each other in height. The determination unit allows the second workpiece to be disposed so as to be supported on both of the one first workpiece and the other first workpiece when the height difference is within a determination range.
ROBOT SYSTEM, CONTROL METHOD AND NON-TRANSITORY STORAGE MEDIUM STORING CONTROL PROGRAM THEREON
This robot system includes a robot on which a driver bit for rotating a screw is mountable, and a robot controller that controls the robot. The robot controller gives a command to the robot to insert a teaching jig into a screw hole which is to be threaded with the screw in a state where the teaching jig is mounted instead of the driver bit, and determines a direction in which the driver bit is inserted by adjusting a direction in which the teaching jig is inserted so as not to cause a load due to interference between the teaching jig and the screw hole.
METHODS, APPARATUSES AND COMPUTER PROGRAM PRODUCTS FOR PROVIDING A DYNAMIC CLEARANCE SYSTEM FOR DEPALLETIZING OBJECTS
Methods, apparatuses, systems, computing devices, and/or the like are provided. An example method may include determining a height value associated with a highest object on a pallet; causing a light detection and ranging (LiDAR) sensor to travel to a height based at least in part on the height value; determining whether a detection signal from the LiDAR sensor indicates a first clear status; in response to determining that the detection signal indicates the first clear status, causing a robotic arm to lift the object until the detection signal indicates a blocked status and then a second clear status.
ROBOT FOR TYING REBAR ON A REBAR GRID
Disclosed is a rebar automating robot for rebar tying on at least one rebar intersection. The rebar automating robot includes a control box 120 and a processing device 108. The control box 108 includes at least one intersection detection sensor 104 and at least one positioning sensor 106. The at least one intersection detection sensor 104 and the at least one positioning sensor 106 identifies a location of the at least one rebar intersection of a work area. The method includes (a) navigating, the rebar automating robot to a first rebar intersection for tying the first rebar intersection, (b) tying, by a rebar tying tool, the first rebar intersection of the work area, and (c) navigating, the rebar automating robot, from the first rebar intersection to a second rebar intersection for performing rebar tying at the second rebar intersection of the work area.
PHOTOGRAPHING METHOD FOR PICKING OR PLACING, PHOTOGRAPHING SYSTEM, AND TRANSPORT ROBOT
A photographing method for picking or placing, applied includes: obtaining first multi-dimensional image information of a target position in a target shelf; determining, according to the first multi-dimensional image information, whether there is a first item in the target position; and determining a photographing strategy of the photographing module according to a determining result, wherein the photographing strategy includes one of: the photographing module not moving with the handling apparatus in a telescopic direction for continued photographing, the photographing module moving a preset distance along the telescopic direction with the handling apparatus, and performing an operation of starting a solution; the solution includes at least one of stopping photographing, sending a warning signal, and reporting to a server to which the transport robot belongs.