IP Library Granted Patent US 7,464,630
Granted Patent B2
US 7,464,630 · App. 09/940,689 · Granted Dec 16, 2008

Apparatus for generating and manipulating a high-pressure fluid jet

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Quick Facts
Patent No.
US 7,464,630
App. No.
09/940,689
Granted
Dec 16, 2008
Kind
B2
Abstract

An apparatus for generating and manipulating a high-pressure fluid jet includes an end effector assembly coupled to a manipulator that imparts motion to the end effector. The end effector assembly includes a cutting head coupled to a source of high-pressure fluid and to a source of abrasive. A motion assembly is coupled to the cutting head via a clamp positioned around the cutting head. A nozzle body assembly is removably coupled to the cutting head assembly, which may be separated from the cutting head assembly to allow access to the orifice, without removing the cutting head assembly from the clamp. The clamp has a quick release mechanism and an alignment member. The motion assembly includes two motors coupled together to form a gimbal wrist, each motor having a horizontal axis of rotation. The two axes of rotation are perpendicular to each other, but are not necessarily aligned with the manipulator's axes of motion.

Claims (64)

1. An end effector assembly comprising:

a cutting head adapted to receive an orifice at an orifice location for generating a high-pressure fluid jet, and having a mixing tube coupled to the cutting head downstream of the orifice location;

a motion assembly coupled to the cutting head via a clamp positioned around the cutting head, the motion assembly being configured to be coupled to a bridge for motion parallel to a longitudinal axis of the bridge, the motion assembly further comprising a gimbal wrist provided with a first motor having a first axis of rotation and with a second motor having a second axis of rotation, the first and second axes of rotation being perpendicular to each other but neither parallel nor perpendicular to the longitudinal axis of the bridge when the motion assembly is coupled thereto; and

a raised member provided on one of an outer surface of the cutting head and an inner surface of the clamp and a recess provided on the other of the outer surface of the cutting head and the inner surface of the clamp, the raised member mating with the recess in a weight-bearing manner to vertically position and support the cutting head.

2. The end effector assembly according to claim 1 wherein the clamp has a quick-release mechanism allowing a portion of the clamp to be easily moved away from the cutting head.

3. The end effector assembly according to claim 1 , further comprising a nozzle body assembly removably coupled to the cutting head, the clamp holding the cutting head when the nozzle body assembly is separated from the cutting head, thereby allowing access to the orifice location without removing the cutting head from the clamp.

4. The end effector assembly according to claim 3 wherein the clamp further comprises an upper guide coupled to the nozzle body assembly, the upper guide vertically supporting the nozzle body assembly when the cutting head is removed from the clamp.

5. The end effector assembly according to claim 1 wherein the clamp is provided with a triangularly arranged alignment member to position the cutting head in a desired location.

6. The end effector assembly according to claim 5 wherein the triangularly arranged alignment member comprises pins that protrude inwardly from the inner surface of the clamp.

7. The end effector assembly according to claim 1 wherein a position sensor is coupled to the clamp adjacent the cutting head.

8. The end effector assembly according to claim 1 , further comprising a shield coupled to an end region of the cutting head, the shield surrounding an end region of the mixing tube and being made of a flexible material.

9. The end effector assembly according to claim 1 , further comprising a high-pressure fluid assembly coupled to the cutting head, the high-pressure fluid assembly having a swivel through which high-pressure tubing passes to deliver high-pressure fluid to the cutting head, the swivel allowing the high-pressure tubing to follow motion imparted by the motion assembly to the cutting head.

10. An end effector assembly comprising:

a cutting head having a body adapted to receive an orifice at an orifice location for generating a high-pressure fluid jet, and having a mixing tube coupled to the body of the cutting head downstream of the orifice location;

a motion assembly coupled to the cutting head via a clamp positioned around the body of the cutting head, the motion assembly being configured to be coupled to a bridge for motion along a longitudinal axis of the bridge, the motion assembly further comprising a gimbal wrist provided with a first motor having a first axis of rotation and with a second motor having a second axis of rotation, the first and second axes of rotation being perpendicular to each other but neither parallel nor perpendicular to the longitudinal axis of the bridge when the motion assembly is coupled thereto; and

a nozzle body assembly removably coupled to the cutting head, the clamp holding the cutting head when the nozzle body assembly is separated from the cuffing head, thereby allowing access to the orifice location without removing the cutting head from the clamp.

11. The end effector assembly according to claim 10 wherein the clamp has a quick-release mechanism allowing a portion of the clamp to be easily moved away from the body of the cutting head.

12. The end effector assembly according to claim 10 wherein the clamp is provided with a triangularly arranged alignment member to position the cutting head in a predefined location.

13. The end effector assembly according to claim 12 wherein the triangularly arranged alignment member comprises pins that protrude inwardly from the inner surface of the clamp.

14. The end effector assembly according to claim 12 wherein the inner surface of the clamp is configured to contact an outer surface of the cutting head at three locations around the circumference of the cutting head, such that the inner surface of the clamp forms the triangularly arranged alignment member.

15. The end effector assembly according to claim 10 wherein the clamp further comprises an upper guide coupled to the nozzle body assembly, the upper guide vertically supporting the nozzle body assembly when the cutting head is removed from the clamp.

16. The end effector assembly according to claim 10 wherein a position sensor is coupled to the clamp adjacent the cutting head.

17. The end effector assembly according to claim 16 wherein the position sensor is provided with a tip that is angled toward an end of the mixing tube, an end region of the tip being adjacent the end of the mixing tube.

18. The end effector assembly according to claim 10 , further comprising a shield coupled to an end region of the cutting head, the shield surrounding an end region of the mixing tube and being made of a flexible material.

19. The end effector assembly according to claim 18 wherein the shield is provided with a flange that matingly engages a groove provided in the end region of the cutting head.

20. The end effector according to claim 18 wherein a disk of hard material is positioned in an upper, inner region of the shield.

21. The end effector assembly according to claim 10 , further comprising a high-pressure fluid assembly coupled to the cutting head, the high-pressure fluid assembly having a swivel through which high-pressure tubing passes to deliver high-pressure fluid to the cutting head, the swivel allowing the high-pressure tubing to follow motion imparted by the motion assembly to the cutting head.

22. The end effector assembly according to claim 21 wherein the swivel is coupled to a valve having a diameter that is no more than 4.0 inches.

23. The end effector assembly according to claim 10 wherein the clamp is positioned around the body of the cutting head downstream of the orifice location.

24. An end effector assembly comprising:

a cutting head having a body adapted to receive an orifice at an orifice location for generating a high-pressure fluid jet, and having a mixing tube coupled to the body of the cutting head downstream of the orifice location; and

a motion assembly coupled to the cutting head via a clamp positioned around the body of the cutting head downstream of the orifice location, the clamp having a quick-release mechanism to allow a portion of the clamp to be easily moved away from the body of the cutting head, the motion assembly being configured to be coupled to a bridge for motion along a longitudinal axis of the bridge, the motion assembly further comprising a gimbal wrist provided with a first motor having a first axis of rotation and with a second motor having a second axis of rotation, the first and second axes of rotation being perpendicular to each other but neither parallel nor perpendicular to the longitudinal axis of the bridge when the motion assembly is coupled thereto.

25. The end effector assembly according to claim 24 , further comprising a nozzle body assembly removably coupled to the cutting head, the clamp holding the cutting head when the nozzle body assembly is separated from the cutting head, thereby allowing access to the orifice location without removing the cutting head from the clamp.

26. The end effector assembly according to claim 24 wherein the clamp is provided with a triangularly arranged alignment member to position the cutting head in a predefined location.

27. The end effector assembly according to claim 24 wherein the clamp further comprises an upper guide coupled to the nozzle body assembly, the upper guide vertically supporting the nozzle body assembly when the cutting head is removed from the clamp.

28. The end effector assembly according to claim 24 wherein a position sensor is coupled to the clamp adjacent the cutting head.

29. The end effector assembly according to claim 24 , further comprising a shield coupled to an end region of the cutting head, the shield surrounding an end region of the mixing tube and being made of a flexible material.

30. The end effector assembly according to claim 24 , further comprising a high-pressure fluid assembly coupled to the cutting head, the high-pressure fluid assembly having a swivel through which high-pressure tubing passes to deliver high-pressure fluid to the cutting head, the swivel allowing the high-pressure tubing to follow motion imparted by the motion assembly to the cutting head.

31. An end effector assembly comprising:

a cutting head having a body adapted to receive an orifice at an orifice location for generating a high-pressure fluid jet, and having a mixing tube coupled to the body of the cutting head downstream of the orifice location;

a motion assembly coupled to the cutting head via a clamp positioned around the body of the cutting head;

a nozzle body assembly removably coupled to the cutting head, the clamp holding the cutting head when the nozzle body assembly is separated from the cutting head, thereby allowing access to the orifice location without removing the cutting head from the clamp; and

a high-pressure fluid assembly coupled to the cutting head, the high-pressure fluid assembly having a swivel operable to rotate about two axes and through which high-pressure tubing passes to deliver high-pressure fluid to the cutting head, the swivel allowing the high-pressure tubing to follow motion imparted by the motion assembly to the cutting head.

32. The end effector assembly according to claim 31 wherein the motion assembly further is configured to be coupled to a bridge for motion along a longitudinal axis of the bridge, the motion assembly further comprising a gimbal wrist provided with a first motor having a first axis of rotation and with a second motor having a second axis of rotation, the first and second axes of rotation being perpendicular to each other but neither parallel nor perpendicular to the longitudinal axis of the bridge when the motion assembly is coupled thereto.

33. An apparatus for generating and manipulating a fluid jet comprising:

an end effector assembly coupled to a ram for motion along a vertical axis, the ram being coupled to a bridge for motion along an axis that is parallel to a longitudinal axis of the bridge, the bridge being moveable in a direction perpendicular to its longitudinal axis, the end effector assembly further comprising a cutting head having a body adapted to receive an orifice at an orifice location for generating a high-pressure fluid jet, and having a mixing tube coupled to the body of the cutting head downstream of the orifice location; and

a motion assembly coupled to the cutting head via a clamp positioned around the body of the cutting head, the motion assembly having a gimbal wrist provided with a first motor having a first axis of rotation and with a second motor having a second axis of rotation, the first and second axes of rotation being perpendicular to each other but neither parallel nor perpendicular to the longitudinal axis of the bridge.

34. The apparatus according to claim 33 , further comprising:

a shield coupled to an end region of the cutting head, the shield surrounding an end region of the mixing tube.

35. The apparatus according to claim 33 , further comprising:

a nozzle body assembly removably coupled to the cutting head, the clamp holding the cutting head when the nozzle body assembly is separated from the cutting head, thereby allowing access to the orifice location without removing the cutting head from the clamp.

36. The apparatus according to claim 33 wherein the cutting head is coupled to a source of high-pressure fluid and to a source of abrasive.

37. The apparatus according to claim 33 , further comprising:

a two-dimensional manipulator coupled to an end of the end effector assembly.

38. An end effector assembly comprising:

a cutting head having a body adapted to receive an orifice at an orifice location for generating a high-pressure fluid jet, and having a mixing tube coupled to the body of the cutting head downstream of the orifice location; and

a motion assembly coupled to the cutting head via a clamp positioned around the body of the cutting head, the clamp having a quick-release mechanism to allow a portion of the clamp to be easily moved away from the body of the cutting head; wherein

the motion assembly is configured to be coupled to a bridge for motion along a longitudinal axis of the bridge, the motion assembly further comprising a gimbal wrist provided with a first motor having a first axis of rotation and with a second motor having a second axis of rotation, the first and second axes of rotation being perpendicular to each other but neither parallel nor perpendicular to the longitudinal axis of the bridge when the motion assembly is coupled thereto.

39. An apparatus for generating and manipulating a fluid jet comprising:

a cutting head having a body adapted to receive an orifice at an orifice location for generating a high-pressure fluid jet, and having a mixing tube coupled to the body of the cutting head downstream of the orifice location; and

a high-pressure fluid assembly coupled to the cutting head, the high-pressure fluid assembly having a swivel operable to rotate about two axes and configured to allow high-pressure tubing to pass therethrough to deliver high-pressure fluid to the cutting head, the swivel allowing the high-pressure tubing to follow motion imparted to the cutting head.

40. An end effector assembly comprising:

a cutting head having a body adapted to receive an orifice at an orifice location for generating a high-pressure fluid jet, and having a mixing tube coupled to the body of the cutting head downstream of the orifice location; and

a motion assembly coupled to the cutting head and configured to be coupled to a bridge for motion along a longitudinal axis of the bridge, the motion assembly further comprising a gimbal wrist provided with a first motor having a first axis of rotation and with a second motor having a second axis of rotation, the first and second axes of rotation being perpendicular to each other but neither parallel nor perpendicular to the longitudinal axis of the bridge when the motion assembly is coupled thereto.

Assignments (17)
RELEASE OF SECURITY INTEREST Recorded Sep 18, 2024
From: UBS AG, STAMFORD BRANCH AS SUCCESSOR IN INTEREST TO CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH, AS COLLATERAL AGENT
To: SHAPE TECHNOLOGIES GROUP, INC.; FLOW INTERNATIONAL CORPORATION; H2O JET, INC.; KMT WATERJET SYSTEMS, INC.; DYNAMIC ROBOTIC SOLUTIONS, INC.; KMT AQUA-DYNE, INC.
Reel/Frame 068980/0809 →
RELEASE OF SECURITY INTEREST Recorded Sep 18, 2024
From: BARCLAYS BANK PLC
To: SHAPE TECHNOLOGIES GROUP, INC.; FLOW INTERNATIONAL CORPORATION; H2O JET, INC.; KMT WATERJET SYSTEMS, INC.; DYNAMIC ROBOTIC SOLUTIONS, INC.; KMT AQUA-DYNE, INC.
Reel/Frame 068980/0831 →
RELEASE OF SECURITY INTEREST Recorded Dec 13, 2018
From: ALLY BANK
To: KMT ROBOTIC SOLUTIONS, INC.; H2O JET, INC.; FLOW INTERNATIONAL CORPORATION; SHAPE TECHNOLOGIES GROUP, INC.
Reel/Frame 047829/0140 →
RELEASE OF SECURITY INTEREST Recorded Aug 22, 2018
From: WILMINGTON TRUST, NATIONAL ASSOCIATION
To: KMT WATERJET SYSTEMS, INC.
Reel/Frame 047482/0799 →
SECURITY INTEREST Recorded Apr 20, 2018
From: FLOW INTERNATIONAL CORPORATION; SHAPE TECHNOLOGIES GROUP, INC.; H2O JET, INC.; KMT WATERJET SYSTEMS, INC.; DYNAMIC ROBOTIC SOLUTIONS, INC.; KMT AQUA-DYNE, INC.
To: CREDIT SUISSE, AG, CAYMAN ISLANDS BRANCH, AS COLLATERAL AGENT
Reel/Frame 046438/0130 →
SECURITY INTEREST Recorded Apr 20, 2018
From: FLOW INTERNATIONAL CORPORATION; SHAPE TECHNOLOGIES GROUP, INC.; H2O JET, INC.; KMT WATERJET SYSTEMS, INC.; DYNAMIC ROBOTIC SOLUTIONS, INC.; KMT AQUA-DYNE, INC.
To: BARCLAYS BANK PLC, AS COLLATERAL AGENT
Reel/Frame 046438/0157 →
SECURITY AGREEMENT Recorded Feb 3, 2014
From: KMT WATERJET SYSTEMS, INC.; KMT ROBOTIC SOLUTIONS, INC.; FLOW INTERNATIONAL CORPORATION
To: ALLY COMMERCIAL FINANCE LLC, AS AGENT
Reel/Frame 032473/0187 →
SECURITY AGREEMENT Recorded Jan 31, 2014
From: KMT WATERJET SYSTEMS, INC.; KMT ROBOTIC SOLUTIONS, INC.; FLOW INTERNATIONAL CORPORATION
To: WILMINGTON TRUST, NATIONAL ASSOCIATION
Reel/Frame 032148/0692 →
RELEASE OF SECURITY INTEREST Recorded Jun 17, 2013
From: BANK OF AMERICA, N.A.
To: FLOW INTERNATIONAL CORPORATION
Reel/Frame 030628/0562 →
NOTICE OF GRANT OF SECURITY INTEREST Recorded Jun 12, 2009
From: FLOW INTERNATIONAL CORPORATION
To: BANK OF AMERICA, N.A.
Reel/Frame 022813/0733 →
SECURITY AGREEMENT Recorded Jun 24, 2008
From: FLOW INTERNATIONAL CORPORATION
To: BANK OF AMERICA, N.A.
Reel/Frame 021138/0738 →
RELEASE OF SECURITY INTEREST Recorded Nov 10, 2005
From: JOHN HANCOCK LIFE INSURANCE COMPANY
To: FLOW INTERNATIONAL CORPORATION
Reel/Frame 016761/0670 →
RELEASE OF SECURITY INTEREST Recorded Nov 9, 2005
From: BANK OF AMERICA, N.A.
To: FLOW INTERNATIONAL CORPORATION
Reel/Frame 016745/0881 →
SECURITY AGREEMENT Recorded Jul 20, 2005
From: FLOW INTERNATIONAL CORPORATION
To: BANK OF AMERICA, N.A.
Reel/Frame 016283/0522 →
SECURITY INTEREST Recorded Nov 8, 2002
From: FLOW INTERNATIONAL CORPORATION
To: JOHN HANCOCK LIFE INSURANCE COMPANY, AS COLLATERAL AGENT
Reel/Frame 013447/0301 →
SECURITY AGREEMENT Recorded Oct 1, 2002
From: FLOW INTERNATIONAL CORPORATION
To: BANK OF AMERICA, N.A..
Reel/Frame 013306/0063 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 11, 2002
From: KNAUPP, MICHAEL; BURNHAM, CHARLES D.; HASHISH, MOHAMED A.; MANN, ROBERT J.; SAHNEY, MIRA K.; BADER, C. DAVID; MEYER, ANDREAS; VAUGHAN, SEAN A.; PESEK, THOMAS A.; STEWART, JONATHAN M.
To: FLOW INTERNATIONAL CORPORATION
Reel/Frame 012796/0535 →