Abstract:
A robotic attacher comprises a main arm, a supplemental arm coupled to the main arm, and a gripping portion coupled to the supplemental arm. The gripping portion comprises at least one nozzle and is operable to rotate such that during a first time, the nozzle is positioned away from the top of the gripping portion, and during a second time, the nozzle is positioned generally on the top of the gripping portion.
Abstract:
An apparatus comprises a milking box having a stall to accommodate a dairy livestock and a robotic attacher. The robotic attacher comprises a main arm that is suspended vertically from a rail of the milking box, and a supplemental arm that is coupled to and extends horizontally from the main arm along a longitudinal axis. The supplemental arm comprises a pivot assembly that pivots a gripping portion around a vertical axis that is substantially parallel to the main arm of the robotic attacher, in a direction transverse to the longitudinal direction of the supplemental arm.
Abstract:
A system includes a robotic attacher comprising a main arm and a supplemental arm operable to extend into a stall portion of a milking box. A camera couples to the supplemental arm. The supplemental arm comprises a camera-facing nozzle operable to spray the camera with a cleanser.
Abstract:
An apparatus comprises a milking box having a stall to accommodate a dairy livestock and a robotic attacher. The robotic attacher comprises a main arm that is suspended vertically from a rail of the milking box, and a supplemental arm that is coupled to and extends horizontally from the main arm along a longitudinal axis. The supplemental arm comprises a pivot assembly that pivots a gripping portion around a vertical axis that is substantially parallel to the main arm of the robotic attacher, in a direction transverse to the longitudinal direction of the supplemental arm.
Abstract:
A system comprises a robotic arm operable to extend between the legs of a dairy livestock located in a milking stall of a rotary milking platform, a camera operable to generate an image signal corresponding to a rear of the dairy livestock, and a controller communicatively coupled to the robotic arm and the camera. The controller determines whether a milking claw is attached to the teats of the dairy livestock by receiving the image signal generated by the camera and processing the image signal. If it is determined based on the image signal that the milking claw is not attached, the controller controls the robotic arm to extend between the legs of the dairy livestock. If it is determined based on the image signal that the milking claw is attached, the controller controls the robotic arm not to extend between the legs of the dairy livestock.
Abstract:
A system comprises a memory operable to store light intensity information for a plurality of neighboring pixels of an image that includes a dairy livestock. The system further comprises a processor communicatively coupled to the memory. The processor determine that a difference between the light intensity information for a first pixel of the plurality of neighboring pixels and at least some of the other neighboring pixels exceeds a threshold. The processor further discards the first pixel and determines a location of a teat of the dairy livestock based on the image, excluding the discarded pixel.
Abstract:
A spray tool coupled to a robotic arm includes a linear member, a first spray nozzle and a second spray nozzle. The linear member rotates about an axis that is perpendicular to the robotic arm. The linear member has a perimeter that lies within an outer perimeter of the robotic arm when the robotic arm extends between the legs of a dairy livestock. The first spray nozzle is coupled to the linear member proximate a first end of the linear member. The second spray nozzle is coupled to the linear member proximate a second end of the linear member.
Abstract:
A system comprises a memory operable to store light intensity information for a plurality of neighboring pixels of an image that includes a dairy livestock. The system further comprises a processor communicatively coupled to the memory. The processor determine that a difference between the light intensity information for a first pixel of the plurality of neighboring pixels and at least some of the other neighboring pixels exceeds a threshold. The processor further discards the first pixel and determines a location of a teat of the dairy livestock based on the image, excluding the discarded pixel.
Abstract:
A method, comprises receiving a flow of milk at an inlet of a manifold. The inlet comprises a first end coupled to a hose that receives a flow of milk from a teat cup and a second end terminating in a chamber of the manifold. The manifold comprises one or more other inlets and a plurality of outlets. The plurality of outlets includes one or more milk collector outlets and one or more drain outlets. The method proceeds by causing the flow of milk to be directed to a corresponding milk collector outlet by causing a shut-off valve corresponding to the inlet to open, and by causing a drain valve corresponding to the inlet to close. The method concludes by causing the flow of milk to be directed to a corresponding drain outlet by causing the shut-off valve corresponding to the inlet to close, and by causing the drain valve corresponding to the inlet to open.
Abstract:
A milking robot comprises a movable arm having a length in a longitudinal direction, and at least one gripper swivably mounted to the movable arm such that it moves between a first position parallel to the movable arm's longitudinal direction and a second position at which the gripper extends sideways in a horizontal plane away from the movable arm's longitudinal direction.