IP Library › Granted Patent US 12,605,834
Granted Patent B2
US 12,605,834 · App. 18/553,961 · Granted Apr 21, 2026

Robotic cells

Inventors: Jane Alexandra Byford (Balderstone, GB); Martin Knott (Balderstone, GB); Daniel James Middleton (Balderstone, GB); Jake Butterworth (Preston, GB); Craig Philip Turnbull (Hawarden Flintshire Wales, GB)
Assignee: BAE Systems plc
B25J9/1666B25J9/0084B25J9/0096B25J9/1694
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Quick Facts
Patent No.
US 12,605,834
App. No.
18/553,961
Granted
Apr 21, 2026
Kind
B2
Abstract

A robot cell, having a cell floor defining an array of nodes corresponding with a predetermined two-dimensional coordinate system and defining a volume for receiving a workpiece W therein and accessible by a human operator, is described. The robot cell comprises: a set of robots, including a first robot, having respective bases, end effectors and working envelopes and defining respective three-dimensional coordinate systems, located according to the array of nodes; a set of detectors, including a first detector, configured to detect respective locations and/or bearings of the set of robots using a set of targets disposed on and/or in the cell floor; a safety system, configured to alert the human operator; and a controller, communicatively coupled to the set of robots and to the set of detectors, configured to control movement of the set of robots using the detected respective locations and/or bearings of the set of robots.

Claims (32)

1 . A robot cell, comprising:

a cell floor defining an array of nodes corresponding with a predetermined two-dimensional coordinate system and defining a volume for receiving a workpiece therein, the cell floor being accessible by a human operator;

a set of robots, including a first robot, each robot in the set of robots having a respective base, an end effector, and a working envelope, and defining a respective three-dimensional coordinate system, located according to the array of nodes;

a set of detectors, including a first detector, the set of detectors being configured to detect respective re-locations and/or re-bearings of the set of robots using a set of targets disposed on and/or in the cell floor;

a safety system configured to alert the human operator, said safety system comprising a set of visual alerts provided in and/or on the cell floor and configured to indicate a safe path for the human operator; and

a controller, communicatively coupled to the set of robots, to the set of detectors, and to the safety system, the controller being configured to:

accept information from the set of detectors regarding the re-locations and/or re-bearings of the set of robots;

according to the re-locations and/or re-bearings of the set of robots, determine changes of the respective working envelops of the set of robots; and

according to the changes of the working envelops of the set of robots, selectively enable or disable the visual alerts, so as to make two-dimensional changes to the safe path the safe path being thereby rerouted to avoid the changed working envelopes of the set of robots.

2 . The robot cell according to claim 1 , wherein the respective bases of the set of robots are releasably attached to the cell floor.

3 . The robot cell according to claim 1 , wherein respective nodes of the array thereof are mutually equispaced on the predetermined two-dimensional coordinate system.

4 . The robot cell according to claim 1 , wherein the first detector is provided on and/or integrated with the first robot.

5 . The robot cell according to claim 1 , wherein the first detector is a non-contact detector configured to detect the location and/or bearing of the first robot using the set of targets disposed on and/or in a corresponding node in the cell floor.

6 . The robot cell according to claim 1 , wherein the first detector is a camera, a RFID tag reader, a barcode reader, a fiducial marker reader and/or a proximity sensor.

7 . The robot cell according to claim 1 , wherein:

the set of detectors is configured to detect respective re-locations and/or re-bearings of the set of robots; and

the controller is configured to rearrange the safety system using the detected respective re-locations and/or re-bearings and the respective working envelopes of the set of robots.

8 . The robot cell according to claim 1 , wherein the safety system comprises a set of audio alerts, including a first audio alert, and wherein the controller is configured to arrange the safety system by selectively enabling or disabling the first audio alert.

9 . The robot cell according to claim 1 , wherein the safety system comprises a set of identifiers, including a first identifier, configured to identify a disposition of the human operator and wherein the controller is configured to arrange the safety system based on the identified disposition of the human operator.

10 . The robot cell according to claim 9 , wherein the controller is configured to control respective movements of the set of robots based on the identified disposition of the human operator.

11 . The robot cell according to claim 1 , wherein the controller is configured to obtain a master three-dimensional coordinate system and to control the movement of the set of robots according to the obtained master three-dimensional coordinate system.

12 . The robot cell according to claim 11 , wherein the obtained master three-dimensional coordinate system is defined, at least in part, by a workpiece received in the defined volume.

13 . The robot cell according to claim 1 , wherein:

the set of robots includes a second robot;

the respective working envelopes of the first robot and the second robot intersect; and the controller is configured to control movement of the first robot and the second robot in mutual coordination using the detected respective locations and/or bearings.

14 . A method of controlling a robot cell, having a cell floor defining an array of nodes corresponding with a predetermined two-dimensional coordinate system and defining a volume for receiving a workpiece therein, the cell floor being accessible to a human operator, the method comprising:

activating by a controller of a set of visual alerts provided in and/or on the cell floor so as to indicate a safe path to the human operator;

detecting, by a set of detectors and a set of targets disposed on and/or in the cell floor, respective re-locations and/or re-bearings of a set of robots having respective bases, end effectors, and working envelopes and defining respective three-dimensional coordinate systems, located according to the array of nodes;

accepting by a controller of information from the set of detectors regarding the re-locations and/or re-bearings of the set of robots;

according to the re-locations and/or re-bearings of the set of robots, determining by the controller of changes of the respective working envelops of the set of robots; and

and

according to the changes of the working envelops of the set of robots, selectively enabling or disabling by the controller of the visual alerts so as to cause the safe path to be rerouted in two dimensions, and thereby to avoid the changed working envelopes of the set of robots.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 18, 2023
From: BYFORD, JANE A; KNOTT, MARTIN; MIDDLETON, DANIEL J; BUTTERWORTH, JAKE; TURNBULL, CRAIG P
To: BAE SYSTEMS PLC
Reel/Frame 065899/0894 →
Priority Claims (2)
EP 21275041 · Apr 14, 2021 · regional
GB 2105343 · Apr 14, 2021 · national
Continuity (1)
Related Publication 20240367318A1 · Nov 7, 2024
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