IP Library Granted Patent US 10,864,555
Granted Patent B2
US 10,864,555 · App. 16/136,441 · Granted Dec 15, 2020

Systems and methods for robotic suction grippers

Inventors: John C. McCoy, Jr. (Thornton, CO); Matanya B. Horowitz (Golden, CO); James A. Bailey (Boulder, CO)
Assignee: AMP Robotics Corporation
B07C5/365B07C5/3422B25J15/0616B25J15/0658B25J15/0675B07C2501/0063
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Quick Facts
Patent No.
US 10,864,555
App. No.
16/136,441
Granted
Dec 15, 2020
Kind
B2
Abstract

In one example embodiment, a robotic vacuum sorting system comprises: a suction gripper mechanism mounted to a sorting robot; a vacuum system coupled to the suction gripper mechanism; robot control logic and electronics coupled to the sorting robot and the vacuum system; and an imaging device coupled to the robot control logic and electronics. In response to an image signal from the imaging device, the robot control logic and electronics outputs robot control signals to control the sorting robot, and outputs one or more airflow control signals to the vacuum system to execute a capture action on a target object using the suction gripper. During the capture action, the robot control logic and electronics outputs control signals such that the vacuum system pulls a vacuum at the gripping port of the suction gripper mechanism as the suction gripper mechanism is applied to capture and hold the target object.

Claims (52)

1. A robotic vacuum sorting system, the system comprising:

a suction gripper mechanism pivotally mounted to one or more robotic arms of a sorting robot;

a vacuum system coupled to the suction gripper mechanism;

robot control logic and electronics coupled to the sorting robot and the vacuum system; and

an imaging device coupled to the robot control logic and electronics;

wherein, in response to an image signal from the imaging device, the robot control logic and electronics outputs one or more robot control signals to control the one or more robotic arms of the sorting robot, and outputs one or more airflow control signals to the vacuum system, to execute a capture action on a target object using the suction gripper mechanism;

wherein during the capture action, the robot control logic and electronics outputs control signals such that the vacuum system pulls a vacuum at a gripping port of the suction gripper mechanism as the suction gripper mechanism is applied to capture and hold the target object; and

wherein the suction gripper mechanism comprises:

a body assembly that houses a linear bearing component;

a linear shaft element secured within the linear bearing component and having a freedom to travel axially up and down with respect to an axis of the linear bearing component;

an internal airflow passage within the linear shaft element configured to communicate an airflow between an airflow application port positioned at

a first end of the linear shaft element and the gripping port positioned at an opposing second end of the linear shaft element;

a suction cup assembly comprising a flexible cup element coupled to the gripping port by a removable coupler; and

a mounting assembly rigidly secured around the body assembly, the mounting assembly further comprising one or more mounting points pivotally coupled to the one or more robotic arms of the sorting robot.

2. The system of claim 1 , wherein during the capture action, the robot control logic and electronics outputs control signals such that the vacuum system first pulls the vacuum at the gripping port of the suction gripper mechanism as the suction gripper mechanism is applied to capture and hold the target object and subsequently reverses air pressure to purge air from the gripping port of the suction gripper mechanism.

3. The system of claim 1 , the vacuum system configured to couple to an air source, wherein the vacuum system is configured to selectively convert a positive pressure air flow provided from the air source into a vacuum suction at the suction gripper mechanism.

4. The system of claim 1 , wherein the vacuum system comprises a vacuum generator;

wherein the vacuum generator comprises a compressed air driven Venturi vacuum system or a compressed air driven Coanda vacuum system.

5. The system of claim 4 , wherein the vacuum generator is integrated within the suction gripper mechanism.

6. The system of claim 1 , wherein the suction gripper mechanism further comprises:

a spring mechanism positioned around an external circumference of the linear shaft element between the mounting assembly and a stop device;

wherein the spring mechanism is configured to extend the linear shaft element to a fully extended position when the suction gripper mechanism is not holding the target object.

7. The system of claim 1 , wherein the linear shaft element has freedom to travel through the linear bearing component to extend at least in part above the mounting assembly during execution of the capture action in response to a force on the suction cup assembly from contacting the target object.

8. The system of claim 7 , wherein the vacuum system comprises a vacuum generator coupled to the airflow application port of the suction gripper mechanism.

9. The system of claim 8 , wherein the vacuum generator comprises:

a chamber having a pressurized air input port, a controlled airflow port, and an exhaust port;

wherein the pressurized air input port is coupled to an air source; and

wherein the controlled airflow port is coupled to the airflow application port of the suction gripper mechanism.

10. The system of claim 9 , wherein one or more structural features within the chamber are configured to create a negative air pressure at the controlled airflow port that pulls air into the chamber from the suction gripper mechanism creating suction at the gripping port.

11. A robotic vacuum sorting system, the system comprising:

a suction gripper mechanism pivotally mounted to one or more robotic arms of a sorting robot;

a vacuum system coupled to the suction gripper mechanism;

robot control logic and electronics coupled to the sorting robot and the vacuum system; and

an imaging device coupled to the robot control logic and electronics;

wherein, in response to an image signal from the imaging device, the robot control logic and electronics outputs one or more robot control signals to control the one or more robotic arms of the sorting robot, and outputs one or more airflow control signals to the vacuum system, to execute a capture action on a target object using the suction gripper mechanism;

wherein during the capture action, the robot control logic and electronics outputs control signals such that the vacuum system pulls a vacuum at a gripping port of the suction gripper mechanism as the suction gripper mechanism is applied to capture and hold the target object; and

wherein the vacuum system comprises a vacuum generator, wherein the vacuum generator further comprises:

an airflow direction control piston responsive to an airflow control signal output from the robot control logic and electronics;

wherein the airflow direction control piston comprises:

an extensible shaft having a stopper, the extensible shaft aligned with an exhaust port of a chamber;

wherein during execution of the capture action, the robot control logic and electronics operates the airflow direction control piston to retract the extensible shaft to configure the vacuum generator to pull a negative pressure vacuum airflow at the gripping port of the suction gripper mechanism; and

wherein during execution of the capture action, the robot control logic and electronics operates the airflow direction control piston to extend the extensible shaft to plug the exhaust port of the chamber to configure the vacuum generator to push a positive pressure airflow out from the gripping port of the suction gripper mechanism.

12. A robotic vacuum sorting system, the system comprising:

a suction gripper mechanism pivotally mounted to one or more robotic arms of a sorting robot;

a vacuum system coupled to the suction gripper mechanism;

robot control logic and electronics coupled to the sorting robot and the vacuum system; and

an imaging device coupled to the robot control logic and electronics;

wherein, in response to an image signal from the imaging device, the robot control logic and electronics outputs one or more robot control signals to control the one or more robotic arms of the sorting robot, and outputs one or more airflow control signals to the vacuum system, to execute a capture action on a target object using the suction gripper mechanism;

wherein during the capture action, the robot control logic and electronics outputs control signals such that the vacuum system pulls a vacuum at a gripping port of the suction gripper mechanism as the suction gripper mechanism is applied to capture and hold the target object; and

wherein the suction gripper mechanism further comprises:

a plurality of body assemblies each housing a respective linear bearing component and a respective linear shaft element secured within the respective linear bearing component;

wherein each linear shaft element comprises an internal airflow passage configured to communicate an airflow between an airflow application port positioned at a first end of the linear shaft element and a gripping port positioned at an opposing second end of the linear shaft element.

Assignments (3)
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Jul 10, 2019
From: AMP ROBOTICS CORPORATION
To: SILICON VALLEY BANK
Reel/Frame 049721/0587 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 22, 2018
From: MCCOY, JOHN C.; HOROWITZ, MATANYA B.; BAILEY, JAMES A.
To: COGNITIVE ROBOTICS LLC
Reel/Frame 047257/0825 →
CHANGE OF NAME Recorded Oct 22, 2018
From: COGNITIVE ROBOTICS, LLC
To: AMP ROBOTICS CORPORATION
Reel/Frame 047278/0296 →
Continuity (2)
Provisional Application 62561400 · Sep 21, 2017
Related Publication 20190084012A1 · Mar 21, 2019
Cited By (9)
US 12,208,525 US 12,226,893 US 12,246,357 US 12,447,630 US 12,485,556 US 12,491,680 US 12,564,972 US 12,623,361 US 12,722,185