Claims
- 1. Apparatus for the hydrodemolition of a concrete surface, comprising:(a) a vehicle capable of movement along a direction of travel; (b) a bed extending transversely to the direction of travel of said vehicle; (c) a nozzle assembly so constructed to achieve hydrodemolition of said concrete surface having a plurality of nozzles spaced apart in a direction transverse to said bed wherein each nozzle is oriented so as to direct a fluid jet emitted therefrom at said concrete surface having its axis of flow at an acute angle to a notional line coincident to an axis of said nozzle perpendicular to said concrete surface and said nozzles are one of rotatable or oscillatory, whereby each nozzle cuts a swath of concrete by hydrodemolition; and (d) an actuating mechanism coupled to said nozzle assembly operative to move said nozzle assembly back and forth along said bed.
- 2. The apparatus of claim 1, wherein a separate fluid pump is provided for each nozzle.
- 3. The apparatus of claim 1, including at least one splitter in a pump outlet water line operative to split water flow equally between nozzles.
- 4. The apparatus of claim 1, wherein the number of nozzles is three.
- 5. The apparatus of claim 1, wherein the separation of each nozzle from an adjacent one is in the range of ½ inch to 10 inches.
- 6. The apparatus of claim 1, wherein said nozzles are aligned along a direction of travel of said vehicle and move together transversely.
- 7. The apparatus of claim 1, including a plurality of fluid flow controllers coupled to respective nozzles of said plurality of nozzles operative to control fluid flow to each nozzle independently of all other nozzles.
- 8. The apparatus of claim 1, wherein said vehicle moves along said direction of travel continuously or in incremental steps.
- 9. The apparatus of claim 1, wherein said plurality of nozzles are positionable at progressively lower positions with respect to said concrete surface.
- 10. A method of hydrodemolition of a swath of a concrete surface, comprising:(a) directing a jet of fluid under pressure emitted from a first nozzle against a first transverse region of said swath and moving said nozzle across said swath in a direction transverse to the direction of travel of the vehicle; (b) repeatedly moving said first nozzle ahead incrementally in a direction of travel and at each incremental position moving said first nozzle transversely across said swath until a second nozzle spaced rearwardly of said first nozzle overlies said first transverse region; (c) directing fluid from said first and second nozzles against said concrete surface, and moving them transversely to said direction of travel; (d) repeatedly moving said first and second nozzles ahead incrementally in a direction of travel and at each incremental position moving said first and second nozzles transversely across said swath until a third nozzle spaced rearwardly of said second nozzle overlies said first transverse region; (e) repeatedly moving said first, second and third nozzles ahead incrementally and directing fluid jets emitted from said first, second and third nozzles against said concrete surface and moving them transversely to said direction of travel at each incremental position until a desired swath has been covered by said first nozzle; (f) turning off fluid from said first nozzle and continuing to incrementally move said second and third nozzles forward and, at each incremental position to move said second and third nozzles transversely to the direction of travel until the last transverse position of said swath has been traversed by movement of said second nozzle; (g) turning off fluid from said second nozzle and continuing to incrementally move said third nozzle forward and, at each incremental position to move said third nozzle transversely to the direction of travel until the last transverse position of said swath has been traversed by movement of said third nozzle; and (h) turning off fluid from said third nozzle.
- 11. The method of claim 10, wherein the amount of incremental movement is substantially equal to the blast diameter of said fluid jets.
- 12. The method of claim 10, including mounting said first, second and third nozzles at an acute angle to notional lines through an axis of said nozzles and perpendicular to said concrete surface and wherein said first, second and third nozzles are one of rotating and oscillating.
- 13. The method of claim 10, wherein said plurality of nozzles are positioned at progressively lower positions with respect to said concrete surface.
- 14. A method of hydrodemolition of a swath of a concrete surface, comprising:(a) directing fluid under pressure from a first nozzle of N nozzles spaced by a predetermined amount in a direction of travel along said swath against a first transverse strip of said concrete surface and moving said first nozzle transversely to the direction of travel across said swath; (b) repeatedly, incrementally moving said N nozzles ahead in a direction of travel by an incremental distance and at each incremental position moving said first nozzle transversely to the direction of travel across said swath until a second nozzle spaced rearwardly of said first nozzle overlies said first transverse strip; (c) directing fluid under pressure from the first and second nozzles against a first and second strip of said concrete surface, and moving them transversely to said direction of travel; (d) repeatedly moving said N nozzles ahead by the incremental distance and successively directing fluid from the remaining nozzles of said N nozzles and moving the nozzles transversely across the direction of forward travel until all N nozzles have directed spray over said first transverse strip in turn; (e) repeatedly moving said N nozzles ahead by the incremental distances and directing fluid under pressure from all N nozzles against said concrete surface while all N nozzles make a transverse pass until said first nozzle reaches a last incremental position of said swath; (f) after said first nozzle has made a transverse pass spraying said last incremental position, turning off fluid from said first nozzle and moving said N nozzles ahead by the incremental distance; (g) repeatedly incrementing said second nozzle and moving it transversely across the swath at each incremental position until it reaches and traverses a last incremental position of said swath; and (h) turning off fluid from said second nozzle and moving said N nozzles ahead successively by incremental distances and completing transverse passes across said swath by each of said N nozzles and shutting off water to said each nozzle once it has completed a transverse pass.
- 15. The method of claim 14, wherein the N is three.
- 16. The method of claim 14, wherein said N nozzles are each at an acute angle to respective notional lines through axes of said nozzles and each of said N nozzles one of rotates and oscillates.
- 17. The method of claim 14, wherein said nozzles are aligned along the direction of travel and move transversely to the direction of travel together.
- 18. The method of claim 14, wherein fluid pressure to each of said nozzles is independently controlled.
- 19. The method of claim 14, wherein said N nozzles are positioned at progressively lower positions with respect to said concrete surface.
- 20. A method of hydrodemolition of a swath of a concrete surface, comprising:(a) directing fluid under pressure from a first nozzle of N nozzles spaced by a predetermined amount in a direction of travel along said swath against a first transverse strip of said concrete surface and moving said first nozzle transversely to the direction of travel across said swath; (b) continuously moving said N nozzles ahead in a direction of travel and moving said first nozzle transversely to the direction of travel across said swath until a second nozzle spaced rearwardly of said first nozzle overlies said first transverse strip of said swath; (c) directing fluid under pressure from the first and second nozzles against a first and second strip of said concrete surface, and moving them transversely to said direction of travel; (d) continuously moving said N nozzles ahead and successively directing fluid under pressure from each one of said N nozzles as each one of said N nozzles comes to overlie said first transverse strip of said swath and moving said N nozzles transversely across said swath until all N nozzles have directed spray over said first transverse strip in turn; (e) continuously moving said N nozzles ahead and directing fluid under pressure from all N nozzles against said concrete surface while all N nozzles make transverse passes across said swath until said first nozzle reaches a last position of said swath; (f) after said first nozzle has traversed and sprayed said last position of said swath, turning off fluid from said first nozzle and continuously moving said N nozzles ahead and transversely across said swath; (g) continuously moving said N nozzles ahead and transversely across said swath until said second nozzle reaches and traverses said last position of said swath; (h) turning off fluid from said second nozzle and continuously moving said N nozzles ahead and transversely across said swath; and (i) continuously moving said N nozzles ahead and transversely across said swath and successively shutting off fluid to each one of said N nozzles once each one of said N nozzles has traversed and sprayed said last position of said swath.
- 21. The method of claim 20, wherein N is three.
- 22. The method of claim 20, wherein said N nozzles are each at an acute angle to respective notional lines through axes of said nozzles and perpendicular to said concrete surface and wherein each of said N nozzles is one of rotating and oscillating.
- 23. The method of claim 20, wherein said nozzles are aligned along the direction of travel and move transversely to the direction of travel together.
- 24. The method of claim 20, wherein fluid pressure to each of said nozzles is independently controlled.
- 25. The method of claim 20, wherein said N nozzles are positioned at progressively lower positions with respect to said concrete surface.
RELATED APPLICATIONS
This application is a continuation-in-part of U.S. patent application Ser. No. 09/361,177, filed Jul. 27, 1999, U.S. Pat. No. 6,224,162 and entitled MULTIPLE JET HYDRODEMOLITION APPARATUS AND METHOD.
US Referenced Citations (8)
Foreign Referenced Citations (1)
Number |
Date |
Country |
3325909 |
Jan 1985 |
DE |
Continuation in Parts (1)
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09/361177 |
Jul 1999 |
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09/814761 |
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