IP Library › Granted Patent US 12,485,536
Granted Patent B2
US 12,485,536 · App. 17/725,316 · Granted Dec 2, 2025

Vacuum tube assembly for material removal

Inventors: Jonathan M. Byars (Lafayette, CO); Matthew Stanton (Denver, CO); James Gregory Braeckel, III (Highlands Ranch, CO); Stefan Michael Elsener (Erie, CO); Samuel Creighton (Golden, CO); Simon Patrick Hall (Denver, CO); Jacob John Schmidt (Denver, CO); Peter Edward Gayler (Arvada, CO); Richard Reisbick (Westminster, CO); Kevin Taylor (Boulder, CO); Jacob Fitzgerald (Wheat Ridge, CO)
Assignee: AMP Robotics Corporation
B25J9/1653B25J9/163B25J9/1666B25J9/1697B25J15/0616B65G47/917
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Quick Facts
Patent No.
US 12,485,536
App. No.
17/725,316
Granted
Dec 2, 2025
Kind
B2
Abstract

A vacuum tube assembly for removing material is disclosed, including: a vacuum generator configured to generate a vacuum airflow; one or more tubes coupled to the vacuum generator and configured to channel the vacuum airflow; and an actuation mechanism coupled to the one or more tubes, wherein the actuation mechanism is configured to actuate at least one tube from a first position relative to a material stream to a second position relative to the material stream, wherein the first position is farther from the material stream than the second position.

Claims (78)

1 . A sorting system, comprising:

a vacuum generator configured to generate a vacuum airflow;

one or more tubes coupled to the vacuum generator and configured to channel the vacuum airflow;

an actuation mechanism coupled to the one or more tubes, wherein the actuation mechanism is configured to actuate at least one tube from a first position relative to a material stream to a second position relative to the material stream, wherein the first position is farther from the material stream than the second position; and

a processor configured to:

detect a clog has occurred in a first tube in the one or more tubes; and

cause a positive airflow to be channeled through the first tube to remove the clog.

2 . The sorting system of claim 1 , wherein the processor is further configured to:

obtain sensed data of objects on the material stream; and

apply machine learning to the sensed data to identify a target object from the material stream, wherein the at least one tube is actuated from the first position to the second position to capture the target object.

3 . The sorting system of claim 2 , wherein the sensed data comprises one or more images.

4 . The sorting system of claim 2 , wherein the sensed data comprises hyperspectral data.

5 . The sorting system of claim 2 , wherein the processor is further configured to:

receive a control signal comprising one or more capture parameters, wherein the at least one tube is actuated from the first position to the second position to capture the target object based at least in part on the one or more capture parameters.

6 . The sorting system of claim 1 , further comprising a clearing ring that the at least one tube is configured to pass through as the at least one tube is actuated from the second position to the first position.

7 . The sorting system of claim 1 , further comprising a wherein the processor is further configured to:

increase a pressure on the vacuum airflow that is channeled through the first tube to remove the clog.

8 . The sorting system of claim 1 , wherein the processor is further configured to:

cause a cap to cover an end of the first tube to cause a buildup of pressure.

9 . The sorting system of claim 8 , wherein the processor is further configured to cause the cap to be removed from covering the end of the first tube to release the clog under the buildup of pressure.

10 . The sorting system of claim 1 , further comprising a gravity trap that is coupled to the one or more tubes.

11 . The sorting system of claim 1 , further comprising an array of air orifices that is configured to channel airflow towards the material stream.

12 . The sorting system of claim 1 , wherein the at least one tube comprises a knife edge at an end of the at least one tube.

13 . A sorting system, comprising:

a sensor configured to obtain sensed data of objects in a material stream; and

a processor configured to:

identify target objects in the material stream based at least in part on the sensed data;

determine a timing associated with a target object entering a target area relative to a vacuum tube, wherein the vacuum tube is operable to be actuated, wherein the vacuum tube is configured to translate relative to the material stream, wherein the vacuum tube is translated towards or away from the material stream based on the timing;

detect a clog has occurred in the vacuum tube; and

cause a positive airflow to be channeled through the vacuum tube to remove the clog.

14 . The sorting system of claim 13 , wherein the processor is further configured to:

determine a large object in the material stream, wherein the large object comprises an object that meets a set of large object criteria; and

wherein the vacuum tube is configured to translate away from the material stream to avoid colliding with the large object.

15 . The sorting system of claim 13 , wherein the identification of the target objects in the material stream is based at least in part on applying machine learning to the sensed data.

16 . The sorting system of claim 13 , wherein the vacuum tube is configured to channel a vacuum airflow that entrains objects into the vacuum tube.

17 . The sorting system of claim 13 , wherein the timing associated with the target object entering the target area relative to the vacuum tube is determined based at least in part on determining a trajectory associated with the target object based at least in part on the sensed data.

18 . A sorting system, comprising:

a vacuum generator configured to generate a vacuum airflow;

a tube coupled to the vacuum generator, wherein the tube is configured to channel the vacuum airflow from the vacuum generator through the tube, wherein the tube is configured to be actuatable from a first position relative to a material stream to a second position relative to the material stream, wherein the first position is farther from the material stream than the second position;

a sensor configured to determine a clog in the tube, wherein the vacuum airflow is controlled to remove the clog from the tube; and

a processor configured to:

detect the clog has occurred in the tube; and

cause a positive airflow to be channeled through the tube.

19 . The sorting system of claim 18 , wherein the sensor is an optical sensor or a pressure sensor.

20 . The sorting system of claim 18 , wherein the vacuum airflow is controlled including by increasing a pressure of the vacuum airflow.

21 . A sorting system, comprising:

a vacuum generator configured to generate a vacuum airflow;

one or more tubes coupled to the vacuum generator and configured to channel the vacuum airflow;

an actuation mechanism coupled to the one or more tubes, wherein the actuation mechanism is configured to actuate at least one tube from a first position relative to a material stream to a second position relative to the material stream, wherein the first position is farther from the material stream than the second position; and

a clearing ring that the at least one tube is configured to pass through as the at least one tube is actuated from the second position to the first position.

22 . A sorting system, comprising:

a vacuum generator configured to generate a vacuum airflow;

one or more tubes coupled to the vacuum generator and configured to channel the vacuum airflow;

an actuation mechanism coupled to the one or more tubes, wherein the actuation mechanism is configured to actuate at least one tube from a first position relative to a material stream to a second position relative to the material stream, wherein the first position is farther from the material stream than the second position; and

a processor configured to:

detect a clog has occurred in a first tube in the one or more tubes; and

increase a pressure on the vacuum airflow that is channeled through the first tube to remove the clog.

23 . A sorting system, comprising:

a vacuum generator configured to generate a vacuum airflow;

one or more tubes coupled to the vacuum generator and configured to channel the vacuum airflow;

an actuation mechanism coupled to the one or more tubes, wherein the actuation mechanism is configured to actuate at least one tube from a first position relative to a material stream to a second position relative to the material stream, wherein the first position is farther from the material stream than the second position; and

a processor configured to:

detect a clog has occurred in a first tube in the one or more tubes; and

cause a cap to cover an end of the first tube to cause a buildup of pressure.

24 . A sorting system, comprising:

a vacuum generator configured to generate a vacuum airflow;

one or more tubes coupled to the vacuum generator and configured to channel the vacuum airflow;

an actuation mechanism coupled to the one or more tubes, wherein the actuation mechanism is configured to actuate at least one tube from a first position relative to a material stream to a second position relative to the material stream, wherein the first position is farther from the material stream than the second position; and

a gravity trap that is coupled to the one or more tubes.

25 . A sorting system, comprising:

a vacuum generator configured to generate a vacuum airflow;

one or more tubes coupled to the vacuum generator and configured to channel the vacuum airflow;

an actuation mechanism coupled to the one or more tubes, wherein the actuation mechanism is configured to actuate at least one tube from a first position relative to a material stream to a second position relative to the material stream, wherein the first position is farther from the material stream than the second position; and

an array of air orifices that is configured to channel airflow towards the material stream.

26 . A sorting system, comprising:

a vacuum generator configured to generate a vacuum airflow;

one or more tubes coupled to the vacuum generator and configured to channel the vacuum airflow, wherein at least one tube comprises a knife edge at an end of the at least one tube; and

an actuation mechanism coupled to the one or more tubes, wherein the actuation mechanism is configured to actuate the at least one tube from a first position relative to a material stream to a second position relative to the material stream, wherein the first position is farther from the material stream than the second position.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 20, 2022
From: BYARS, JONATHAN M.; STANTON, MATTHEW; BRAECKEL, JAMES GREGORY, III; ELSENER, STEFAN MICHAEL; CREIGHTON, SAMUEL; HALL, SIMON PATRICK; SCHMIDT, JACOB JOHN; GAYLER, PETER EDWARD; REISBICK, RICHARD; TAYLOR, KEVIN; FITZGERALD, JACOB
To: AMP ROBOTICS CORPORATION
Reel/Frame 060252/0811 →
Continuity (2)
Provisional Application 63182162 · Apr 30, 2021
Related Publication 20220347842A1 · Nov 3, 2022
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Cited By (3)
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