IP Library Granted Patent US 12686087
Granted Patent B2
US 12686087 · App. 18/326,269 · Granted Jul 21, 2026

Manufacturing system including mobile cart with trunnion axis control

Inventors: Chris A. Ihrke (Hartland, MI); Miguel Arturo Saez (Clarkston, MI); John Patrick Spicer (Plymouth, MI); Ahmad Almarkhi (Farmington Hills, MI); Tom Malburg (Romeo, MI)
Assignee: GM GLOBAL TECHNOLOGY OPERATIONS LLC
B23P21/004B25J11/0055B23K37/0426B23P2700/50B62D65/022
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Quick Facts
Patent No.
US 12686087
App. No.
18/326,269
Granted
Jul 21, 2026
Kind
B2
Abstract

A manufacturing system configured for processing a workpiece. The manufacturing system includes a mobile cart with: a first mounting assembly and a second mounting assembly both configured to support the workpiece, and the first mounting assembly further configured to rotate the workpiece; and a first mechanical coupling in cooperation with the first mounting assembly such that rotation of the first mechanical coupling rotates the first mounting assembly. A docking station includes a second mechanical coupling and a motor configured to rotate the second mechanical coupling, the second mechanical coupling configured to cooperate with the first mechanical coupling such that rotation of the second mechanical coupling rotates the first mechanical coupling and the workpiece supported by the first mounting assembly and the second mounting assembly.

Claims (56)

1 . A manufacturing system configured for processing a workpiece, the manufacturing system comprising:

a mobile cart including:

a first mounting assembly and a second mounting assembly both configured to support the workpiece, and the first mounting assembly further configured to rotate the workpiece; and

a first mechanical coupling in cooperation with the first mounting assembly such that rotation of the first mechanical coupling rotates the first mounting assembly; and

a docking station including a second mechanical coupling and a motor configured to rotate the second mechanical coupling, the second mechanical coupling configured to cooperate with the first mechanical coupling such that rotation of the second mechanical coupling rotates the first mechanical coupling and the workpiece supported by the first mounting assembly and the second mounting assembly,

wherein the first mounting assembly includes a first brake and the second mounting assembly includes a second brake, the first brake and the second brake are configured to prevent rotation of the first mounting assembly and the second mounting assembly respectively when the mobile cart is disconnected from the docking station.

2 . The manufacturing system of claim 1 , wherein the first mounting assembly and the second mounting assembly are configured to rotate to any position about an axis up to 360°.

3 . The manufacturing system of claim 1 , wherein:

the mobile cart further includes a first pneumatic coupling and a first electrical coupling; and

the docking station further includes a second pneumatic coupling and a second electrical coupling configured to couple with the first pneumatic coupling and the first electrical coupling respectively to transfer pneumatic power and control signals from the docking station to the mobile cart.

4 . The manufacturing system of claim 1 , wherein:

the docking station includes a first encoder configured to measure a first rotational position of the second mechanical coupling and generate a first signal identifying the first rotational position, the first rotational position corresponds to a rotational orientation of the first mounting assembly;

the second mounting assembly includes a second encoder configured to measure a second rotational position of the second mounting assembly and generate a second signal identifying the second rotational position; and

a control module configured to receive the first signal and the second signal, and generate a notification when a difference between the first rotational position and the second rotational position exceeds a predetermined difference, the notification indicating that a workpiece mounted to the first mounting assembly and the second mounting assembly is being twisted.

5 . The manufacturing system of claim 1 , wherein:

between the first mounting assembly and the second mounting assembly is a base defining a clean out for material cut from the workpiece; and

the base is adjustable lengthwise and widthwise to accommodate different sized workpieces.

6 . The manufacturing system of claim 1 , wherein the mobile cart further includes wheels.

7 . The manufacturing system of claim 6 , wherein the mobile cart further includes a handle and is configured to be pushed by a user.

8 . The manufacturing system of claim 1 , wherein the workpiece is a vehicle chassis.

9 . The manufacturing system of claim 8 , wherein the first mounting assembly and the second mounting assembly are on opposite ends of the mobile cart and are configured to couple to opposite ends of the vehicle chassis to rotate the vehicle chassis about a longitudinal axis thereof.

10 . The manufacturing system of claim 1 , wherein the docking station is mounted in a work cell including a cutting robot configured to cut the workpiece and a measuring robot configured to track movement of the workpiece.

11 . The manufacturing system of claim 10 , further comprising a control module configured to control the measuring robot and the motor of the docking station to control rotation of the workpiece when the mobile cart is in cooperation with the docking station.

12 . The manufacturing system of claim 10 , further comprising a control module configured to control both the cutting robot and the motor of the docking station to simultaneously control rotation of the workpiece and cutting of the workpiece by the cutting robot.

13 . A manufacturing system configured for processing a vehicle chassis, the manufacturing system comprising:

work cell including:

a cutting robot;

a measuring robot; and

a docking station including a drive unit;

a mobile cart configured to be moved into and out of the work cell, the mobile cart including:

a first rotatable member spaced apart from a second rotatable member, both the first rotatable member and the second rotatable member are configured to support and rotate the vehicle chassis about a trunnion axis of the vehicle chassis; and

a mechanical coupling in cooperation with the first rotatable member, the mechanical coupling configured to cooperate with the drive unit of the docking station such that rotation of the drive unit rotates the mechanical coupling and the first rotatable member; and

a control module configured to control the measuring robot and the drive unit, and incorporate the trunnion axis as an axis of the measuring robot;

wherein:

after rotation of the vehicle chassis by the first rotatable member and the second rotatable member about the trunnion axis, the control module is configured to identify a rotated position of the vehicle chassis and input the rotated position to the measuring robot; and

the control module is configured to identify the rotated position based on at least one of a degree of rotation of the drive unit and location of a datum point on the vehicle chassis identified by the measuring robot.

14 . The manufacturing system of claim 13 , wherein:

the docking station includes a first encoder configured to measure a first rotational position of the drive unit and generate a first signal identifying the first rotational position, the first rotational position corresponds to a rotational orientation of the first rotatable member;

the second rotatable member is in cooperation with a second encoder configured to measure a second rotational position of the second rotatable member and generate a second signal identifying the second rotational position; and

a control module configured to receive the first signal and the second signal, and generate a notification when a difference between the first rotational position and the second rotational position exceeds a predetermined difference, the notification indicating that the vehicle chassis is being twisted.

15 . The manufacturing system of claim 13 , wherein the control module is further configured to control the cutting robot and incorporate the trunnion axis as an axis of the cutting robot; and

wherein the control module is configured to simultaneously control the drive unit to rotate the vehicle chassis about the trunnion axis and control the cutting robot to cut the vehicle chassis.

16 . The manufacturing system of claim 13 , wherein the mobile cart further includes wheels.

17 . The manufacturing system of claim 16 , wherein the mobile cart further includes a handle and is configured to be pushed by a user.

18 . A manufacturing system configured for processing a vehicle chassis, the manufacturing system comprising:

work cell including:

a cutting robot;

a measuring robot;

a docking station including a drive unit; and

a control module configured to simultaneously control the drive unit and the cutting robot; and

a mobile cart configured to be moved into and out of the work cell and docked with the docking station, the mobile cart including:

a first rotatable member spaced apart from a second rotatable member, both the first rotatable member and the second rotatable member are configured to support the vehicle chassis for rotation about a trunnion axis of the vehicle chassis; and

a mechanical coupling in cooperation with the first rotatable member, the mechanical coupling configured to cooperate with the drive unit of the docking station such that rotation of the drive unit rotates the mechanical coupling and the first rotatable member;

wherein the control module is configured to:

incorporate the trunnion axis as an axis of the cutting robot; and

simultaneously control the drive unit to rotate the vehicle chassis about the trunnion axis and control the cutting robot to cut the vehicle chassis.