IP Library › Granted Patent US 12,515,347
Granted Patent B2
US 12,515,347 · App. 18/716,233 · Granted Jan 6, 2026

Device for performing at least one task on a structure to be worked on, said device comprising a telescopic presser element

Inventor: Sébastien Pereira-Santo (Charneca da Caparica, PT)
Assignees: SETI-TEC; KAWASAKI HEAVY INDUSTRIES, LTD.
B25J11/005B25J13/087B25J15/0019
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Quick Facts
Patent No.
US 12,515,347
App. No.
18/716,233
Granted
Jan 6, 2026
Kind
B2
Abstract

A device for performing at least one task on a structure to be worked on. The device includes: a frame; a fastener for fastening the frame to a motor-driven handling element capable of moving the device in space relative to a structure to be worked on; a spindle rotatably and/or translationally driven along a same axis to perform the at least one task; a presser element, coaxial with the spindle, capable of exerting a compressive force against the surface of the structure to be worked on. The presser element has a first and a second element connected by a ball-and-socket joint, the second element including a free end adapted to contact the surface and the first element being translationally movable along the axis of the spindle such that the second element is oriented orthogonally to the surface when compressed against the surface.

Claims (43)

1 . A device for performing at least one task on a structure to be worked on, said device comprising:

a frame;

a fastener for fastening said frame to a motor-driven handler capable of moving said device at least partly in space relative to a structure to be worked on;

a positioning/securing element for positioning and/or securing said frame to said structure to be worked on;

a spindle rotatably or translationally drivable along a same axis in order to perform said at least one task;

a presser element, coaxial with said spindle, capable of exerting a compressive force against the surface of said structure to be worked on when said device is secured to said structure by said fastener;

said presser element comprising a first and a second element connected by a ball-and-socket joint, said second element comprising a free end capable of contacting said surface and said first element being translationally movable along the axis of said spindle in such a way that the second element is oriented orthogonally to said surface when compressed against said surface.

2 . The device according to claim 1 comprising a translational driver for translationally driving said first element.

3 . The device according to claim 2 wherein said translational driver comprise a screw-nut system.

4 . The device according to claim 3 wherein said screw-nut system comprises a threaded portion provided at the periphery of said first element and a rotatably movable tapped ring of complementary shape, said translational driver comprising a rotational driver for rotatably driving said ring relative to said rotatably fixed first element, said ring being translationally fixed along its axis relative to the frame.

5 . The device according to claim 4 wherein said rotational driver comprises a motor connected to said ring by a cascade of pinions.

6 . The device according to claim 1 comprising a thrust sensor for measuring at least one piece of information representative of thrust along the axis of said spindle generated by said second element on said surface.

7 . The device according to claim 6 comprising means for detecting said thrust reaching:

a contacting value corresponding to a thrust value at the moment of the free end of the second element contacting said surface and,

a pressing value of said structure to be worked on.

8 . The device according to claim 1 comprising an inclination sensor for measuring at least one piece of information representative of inclination of said second element relative to the axis of said spindle.

9 . The device according to claim 8 wherein said inclination sensor comprises distance sensors carried by said frame and evenly distributed around said second element, said distance sensors being capable of measuring radial movement of said second element relative to the frame.

10 . The device according to claim 1 wherein said first and second elements are tubular.

11 . The device according to claim 1 wherein a reference frame is associated with said frame, said device comprising a translational movement sensor for measuring a translational movement of said first element relative to the reference frame of said frame along the axis of said spindle.

12 . The device according to claim 11 comprising a thrust sensor for measuring at least one piece of information representative of thrust along the axis of said spindle generated by said second element on said surface, wherein said translational movement sensor comprises an angle sensor for measuring rotation angle of a rotor of said motor.

13 . The device according to claim 12 , comprising:

a thrust sensor for measuring at least one piece of information representative of thrust along the axis of said spindle generated by said second element on said surface;

detection means for detecting said thrust reaching:

a contacting value corresponding to a thrust value at the moment of the free end of the second element contacting said surface; and

a pressing value of said structure to be worked on; and

means for determining the distance, along a direction parallel to the axis of said spindle, between the surface oriented towards said device of said structure to be worked on and a reference surface of said frame in said reference frame associated with said frame, said determining means determining said distance when said device is secured to said structure to be worked on by said securing means, by taking account of the value of the angle provided by said angle sensor at the moment when said detection means detect that said thrust has reached said contacting value corresponding to the thrust value at the moment when the free end of the second element contacts said surface.

14 . The device according to claim 7 comprising means for measuring deformation of said structure to be worked on under said compressive force, said deformation corresponding to translational movement of the first element between moments when said detection means detect that the value of said thrust passes from said contacting value to said pressing value.

15 . The device according to claim 1 wherein said device is of the multitask type and comprises:

at least two functional modules, each of said functional modules comprising at least one movable member capable of enabling performance of a given task;

a single drive spindle rotatably and/or translationally movable along a same axis and capable of cooperating individually with said movable members to give the movable members a rotational and/or translational motion enabling the movable members to perform their given task.

16 . The device according to claim 15 wherein said functional modules belong to the group consisting of:

drilling modules;

modules for setting sealant-coated rivets; and

modules for setting temporary fasteners.

17 . A method comprising:

performing at least one task on a structure to be worked on by using a device comprising:

a frame;

a fastener for fastening said frame to a motor-driven handler capable of moving said device at least partly in space relative to a structure to be worked on;

a positioning/securing element for positioning and/or securing said frame to said structure to be worked on;

a spindle rotatably or translationally drivable along a same axis in order to perform said at least one task;

a presser element, coaxial with said spindle, capable of exerting a compressive force against the surface of said structure to be worked on when said device is secured to said structure by said fastener;

said presser element comprising a first and a second element connected by a ball-and-socket joint, said second element comprising a free end capable of contacting said surface and said first element being translationally movable along the axis of said spindle in such a way that the second element is oriented orthogonally to said surface when compressed against said surface; and

wherein performing the task comprises translationally moving said first element along the axis of said spindle in such a way that the second element is oriented orthogonally to said surface when compressed against said surface.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 24, 2024
From: SETI-TEC
To: KAWASAKI HEAVY INDUSTRIES, LTD.
Reel/Frame 068070/0399 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 22, 2024
From: PEREIRA-SANTO, SÉBASTIEN
To: SETI-TEC
Reel/Frame 068043/0874 →
Priority Claims (1)
FR 2113240 · Dec 9, 2021 · national
Continuity (1)
Related Publication 20250033218A1 · Jan 30, 2025
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