IP Library Granted Patent US 10,509,388
Granted Patent B2
US 10,509,388 · App. 15/320,975 · Granted Dec 17, 2019

Reshaping of deformed components for assembly

Inventors: Laurent Regnault (Montreal, CA); Sebastien Sirois (Mirabel, CA)
Assignee: C SERIES AIRCRAFT LIMITED PARTNERSHIP
G05B19/402B64F5/10B23P2700/01G05B2219/31068G05B2219/37356G05B2219/50062Y02P90/04
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Quick Facts
Patent No.
US 10,509,388
App. No.
15/320,975
Granted
Dec 17, 2019
Kind
B2
Abstract

There is described a method and system for reshaping a component for assembly that may have been deformed pre-assembly and post-fabrication. As-fabricated measurements are used to determine a baseline for the component and as-mounted measurements are used to determine a deformation parameter as a function of the baseline. The component may be reshaped using correction displacements applied to a positioning device of an assembly tool to which the component is mounted for assembly.

Claims (54)

1. A computer-implemented method for reshaping a component mounted on an assembly tool having a positioning device, the method comprising,

receiving a set of as-fabricated measurements of the component;

receiving a set of as-mounted measurements of the component, the as-mounted measurements taken at a same position on the component as the as-fabricated measurements;

determining a baseline for a shape of the component based on the as-fabricated measurements by calculating an initial twist angle for a floor structure by adding a first angle formed between a first pair of measurements and a horizontal plane to a second angle formed between a second pair of measurements and the horizontal plane;

determining a deformation parameter for the component based on the as-mounted measurements, the as-fabricated measurements, the as-mounted measurements, and the baseline;

determining a set of correction displacements for the positioning device to reshape the component using the deformation parameter; and

generating control signals for applying the correction displacements to the positioning device.

2. The method of claim 1 , wherein determining a deformation parameter comprises calculating an actual twist angle by adding a third angle formed between the third pair of measurements and the horizontal plane and a fourth angle formed between the fourth pair of measurements and the horizontal plane to obtain a sum, and subtracting the sum from the initial twist angle.

3. The method of claim 1 , wherein generating control signals comprises generating vertical displacement signals and using a weight of the component combined with the vertical displacement signals to reshape the component.

4. A computer-implemented method for reshaping a component mounted on an assembly tool having a positioning device, the method comprising:

receiving a set of as-fabricated measurements of the component by receiving a first pair of measurements reflecting a position of a first pair of pre-established points located at a first end of the component and a second pair of measurements reflecting a position of a second pair of pre-established points located at a second end of the component opposite to the first end;

receiving a set of as-mounted measurements of the component, by receiving a third pair of measurements reflecting the position of the first pair of pre-established points from the first end of the component and a fourth pair of measurements reflecting the position of the second pair of pre-established points of the second end of the component, the as-mounted measurements taken at a same position on the component as the as-fabricated measurements;

determining a deformation parameter for the component based on the as-placed measurements and the as-fabricated measurements;

determining a set of correction displacements for the positioning device to reshape the component using the deformation parameter; and

generating control signals for applying the correction displacements to the positioning device, wherein determining a set of correction displacements comprises defining a rotation point on the component, selecting one end of the component to remain fixed, and determining displacements in x, y, and z for another end of the component about the rotation point.

5. The method of claim 4 , wherein defining a rotation point comprises selecting a center point between one of the third pair of measurements and the fourth pair of measurements as the rotation point.

6. The method of claim 4 , wherein determining displacements in x, y, and z comprises determining displacements for at least two separate actuators of the positioning device.

7. A computer-implemented method for reshaping a component mounted on an assembly tool having a positioning device, the method comprising:

receiving a set of as-fabricated measurements of the component;

receiving a set of as-mounted measurements of the component, the as-mounted measurements taken at a same position on the component as the as-fabricated measurements;

determining a deformation parameter for the component based on the as-placed measurements and the as-fabricated measurements;

determining a set of correction displacements for the positioning device to reshape the component using the deformation parameter; and

generating control signals for applying the correction displacements to the positioning device, wherein generating control signals comprises combining correction displacements with assembly displacements of the positioning device to perform reshaping and assembly concurrently.

8. The method of claim 7 , wherein generating control signals comprises comparing the correction displacements to a correction threshold and generating the control signals when the correction threshold is exceeded.

9. The method of claim 8 , further comprising:

receiving updated as-mounted measurements of the component after the control signals have been applied to the positioning device;

determining an updated deformation parameter based on the updated as-mounted measurements and the as-fabricated measurements;

determining updated correction displacements based on the updated deformation parameter;

comparing the updated correction displacements to the correction threshold; and

generating updated control signals when the correction threshold is exceeded.

10. The method of claim 9 , further comprising repeating steps of receiving updated as-mounted measurements, determining an updated deformation parameter, determining updated correction displacements, comparing the updated correction displacements to the correction threshold, and generating updated control signals until the updated correction displacements fall below the correction threshold.

11. A system for reshaping a component mounted on an assembly tool having a positioning device, the system comprising:

a memory;

a processor coupled to the memory; and

at least one application stored in the memory and executable by the processor for:

receiving a set of as-fabricated measurements of the component;

receiving a set of as-mounted measurements of the component, the as-mounted measurements taken at a same position on the component as the as-fabricated measurements;

determining a baseline for a shape of the component based on the as-fabricated measurements by calculating an initial twist angle for a floor structure by adding a first angle formed between a first pair of measurements and a horizontal plane to a second angle formed between a second pair of measurements and the horizontal plane;

determining a deformation parameter for the component based on the as-mounted measurements, the as-fabricated measurements, and the baseline;

determining a set of correction displacements for the positioning device to reshape the component using the deformation parameter; and

generating control signals for applying the correction displacements to the positioning device.

12. The system of claim 11 , wherein determining a deformation parameter comprises calculating an actual twist angle by adding a third angle formed between the third pair of measurements and the horizontal plane and a fourth angle formed between the fourth pair of measurements and the horizontal plane to obtain a sum, and subtracting the sum from the initial twist angle.

13. A system for reshaping a component mounted on an assembly tool having a positioning device, the system comprising:

a memory;

a processor coupled to the memory; and

at least one application stored in the memory and executable by the processor for

receiving a set of as-fabricated measurements of the component by receiving a first pair of measurements reflecting a position of a first pair of pre-established points located at a first end of the component and a second pair of measurements reflecting a position of a second pair of pre-established points located at a second end of the component opposite to the first end;

receiving a set of as-mounted measurements of the component, by receiving a third pair of measurements reflecting the position of the first pair of pre-established points from the first end of the component and a fourth pair of measurements reflecting the position of the second pair of pre-established points of the second end of the component, the as-mounted measurements taken at a same position on the component as the as-fabricated measurements;

determining a deformation parameter for the component based on the as-mounted measurements and the as-fabricated measurements;

determining a set of correction displacements for the positioning device to reshape the component using the deformation parameter; and

generating control signals for applying the correction displacements to the positioning device, wherein determining a set of correction displacements comprises defining a rotation point on the component, selecting one end of the component to remain fixed, and determining displacements in x, y, and z for another end of the component about the rotation point.

14. The system of claim 13 , wherein defining a rotation point comprises selecting a center point between one of the third pair of measurements and the fourth pair of measurements as the rotation point.

15. The system of claim 13 , wherein determining displacements in x, y, and z comprises determining displacements for at least two separate actuators of the positioning device.

16. The system of claim 13 , wherein generating control signals comprises combining correction displacements with assembly displacements of the positioning device to perform reshaping and assembly concurrently.

Assignments (3)
CHANGE OF NAME Recorded Oct 8, 2020
From: C SERIES AIRCRAFT LIMITED PARTNERSHIP
To: AIRBUS CANADA LIMITED PARTNERSHIP
Reel/Frame 054023/0582 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 6, 2018
From: BOMBARDIER INC.
To: C SERIES AIRCRAFT LIMITED PARTNERSHIP
Reel/Frame 046282/0587 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 22, 2016
From: REGNAULT, LAURENT; SIROIS, SEBASTIEN
To: BOMBARDIER INC.
Reel/Frame 040741/0632 →
Continuity (2)
Provisional Application 62018047 · Jun 27, 2014
Related Publication 20170205800A1 · Jul 20, 2017
Cited By (2)
US 12,371,190 US 12,485,488