Claims
- 1. A material delivery system for applying fluent material to a receiving surface, the system comprising:
- a support structure disposed on said surface;
- a nozzle support member suspended from said support structure;
- a nozzle disposed on said nozzle support member and having an outlet end proximate said surface and an opposite inlet end;
- a first motor disposed on said nozzle support member for translating said nozzle support member in a first direction along said support structure and substantially parallel said surface;
- a second motor disposed on said nozzle support member for translating said nozzle in a second direction along said support structure and substantially orthogonal first direction and substantially parallel said surface;
- a third motor disposed on said nozzle support member for translating said inlet end of said nozzle in an arcuate path centered about said outlet end; and
- a controller in communication with said first, second and third motors.
- 2. The system according to claim 1, wherein said support structure comprises:
- an upper bracket disposed along an upper edge of said surface, said upper bracket having a channel disposed therein; and
- a lower bracket disposed along a lower edge of said surface, said lower bracket having a ridge element formed therein, said ridge element comprised of an arcuate portion and an underlying planar portion,
- said upper and lower brackets each having a toothed drive track extending along the respective bracket.
- 3. The system according to claim 2, wherein said support structure further comprises plural struts extending away from said upper bracket to a floor surface on a side of said surface opposite said nozzle support member.
- 4. The system according to claim 2, wherein said support structure comprises:
- a support column suspended between said upper and lower brackets, said support column substantially equidistant from said surface along the length of the column and having upper and lower ends.
- 5. The system according to claim 4, wherein said support column is further comprised of a lower brace member disposed at said lower end of said support column and having at least one lower wheel, said at least one lower wheel having a groove disposed in a circumferential surface thereof for travel on a cooperative arcuate portion of said lower bracket.
- 6. The system according to claim 5, wherein said lower brace member is further Comprised of at least one follower wheel proximate a respective one of said at least one lower wheel for travel adjacent said cooperative arcuate portion of said lower bracket.
- 7. The system according to claim 4, wherein said support structure further comprises an upper mounting portion disposed proximate said upper end of said support column.
- 8. The system according to claim 7, wherein said upper mounting portion further comprises at least one upper follower wheel extending from said upper mounting portion and into said channel.
- 9. The system according to claim 7, wherein said support structure further comprises a drive shaft substantially parallel to said support column and rotated by said first drive, said drive shaft having an upper drive gear assembly at an upper end thereof and a lower drive gear at a lower end thereof.
- 10. The system according to claim 9, wherein said upper drive gear assembly comprises:
- a first upper gear disposed at said upper end of said drive shaft;
- an idler gear disposed on said upper mounting portion in communication with said first upper gear; and
- a second upper gear disposed at said upper mounting portion in communication with said idler gear and with said upper bracket drive track,
- wherein rotation of said drive shaft by said first motor causes translation of said system with respect to said surface in said first direction.
- 11. The system according to claim 9, wherein said lower drive gear is in communication with said lower bracket drive track, and wherein rotation of said drive shaft by said first motor causes translation of said system with respect to said surface in said first direction.
- 12. The system according to claim 4, wherein said nozzle support member further comprises:
- a first pair of support column tracking wheels disposed on a first pair bracket, each wheel of said first pair circumferentially grooved and disposed on a side of said support column opposite another of said first pair;
- a second pair of support column tracking wheels disposed on a second pair bracket, each wheel of said second pair circumferentially grooved and disposed on a side of said support column opposite another of said second pair; and
- an interconnecting plate disposed between said first and second pair brackets,
- wherein said first pair of support column tracking wheels is disposed above said nozzle and said second pair of support column tracking wheels is disposed below said nozzle.
- 13. The system according to claim 12, wherein said nozzle comprises:
- an oblong funnel disposed on said at last one interconnecting plate and oriented with a divergent end proximate said surface and an opposite convergent end, wherein said oblong funnel defines said nozzle outlet end;
- a swivel joint disposed at said convergent end of said oblong funnel;
- a nozzle body having an anterior end and a posterior end, said anterior end rotatably mounted to said swivel joint, and said posterior end of said nozzle body defining said nozzle inlet end;
- a fluent material transport chamber defined by said oblong funnel, said swivel joint, and said nozzle body, said chamber thus extending from said nozzle body posterior end to said oblong funnel divergent end proximate said surface; and
- end plates disposed on opposite sides of said nozzle, wherein one of said end plates is attached to said interconnecting plate.
- 14. The system according to claim 13, wherein said nozzle support member further comprises:
- a lifter arm having a lower end disposed on one of said end plates and having an upper end extending above said nozzle body, said lifter arm lower end in mechanical communication with said third motor for extension and contraction of said lifter arm; and
- a lifting link disposed between said nozzle inlet end and said lifter arm upper end,
- wherein extension of said lifter arm by said third motor results in elevation of said nozzle inlet end relative to said nozzle outlet end, and contraction of said lifter arm by said third motor results in lowering said nozzle inlet end relative to said nozzle outlet end.
- 15. The system according to claim 14, wherein said nozzle further comprises:
- an upper actuator disposed on one of said end plates above said nozzle;
- an upper actuator linkage mechanically connected to said upper actuator; and
- an upper flap rotatably connected to a top edge of said funnel divergent end and rotated by said upper actuator via said upper actuator linkage.
- 16. The system according to claim 14, wherein said nozzle further comprises:
- a lower actuator disposed on one of said end plates below said nozzle;
- a lower actuator linkage mechanically connected to said lower actuator; and
- a lower flap rotatably connected to a bottom edge of said funnel divergent end and rotated by said lower actuator via said lower actuator linkage.
- 17. The system according to claim 13, wherein said oblong funnel further comprises a side dam disposed on and extending from said oblong funnel divergent end toward said surface and between upper and lower edges of said funnel divergent end.
- 18. The system according to claim 17, wherein said side dam is resiliently mounted on said oblong funnel to allow said side dam to be urged upward and downward with respect to said oblong funnel.
- 19. The system according to claim 13, wherein said nozzle further comprises:
- a plurality of first conduits disposed at said nozzle body posterior end; and
- a plurality of second conduits-disposed at said nozzle body anterior end,
- wherein said first and second conduits each have an entrance port and an exit port.
- 20. The system according to claim 19, wherein said entrance and exit ports of each of said first and second conduits are radially offset, wherein gas introduced through said conduits spirals within said chamber as said gas progresses from said nozzle inlet end to said nozzle outlet end.
- 21. The system according to claim 19, wherein said nozzle further comprises:
- at least one posterior end plenum surrounding said entrance ports of said first conduits; and
- at least one anterior end plenum surrounding said entrance ports of said second conduits.
- 22. The system according to claim 12, wherein said nozzle support member further comprises:
- a threaded orifice in at least one of said first and second pair brackets;
- a vertical screw shaft engaged within said threaded orifice and in mechanical communication with said second motor,
- wherein operation of said second motor in a first mode causes said vertical screw shaft to translate said nozzle support member toward said support column upper end and operation of said second motor in a second mode causes said vertical screw shaft to translate said nozzle support member toward said support column lower end.
- 23. The system according to claim 1, wherein said controller is comprised of a processor, an associated memory and a display.
- 24. The system according to claim 23, wherein said system further comprises an air compressor supplying compressed air to said nozzle via said at least one posterior end plenum and said at least one anterior end plenum.
- 25. The system according to claim 1, wherein said system further comprises a tracked vehicle proximate said system.
- 26. The system according to claim 25, wherein said tracked vehicle comprises:
- a platform;
- a cabin disposed on said platform and containing a controller for controlling said system;
- an air compressor disposed on said platform providing a source of compressed air to said nozzle;
- a pump disposed on said platform providing a source of pressurized fluent material to said nozzle; and
- a generator disposed on said platform providing power for said pump.
- 27. The system according to claim 25, wherein said tracked vehicle is propelled by a pneumatic motor using compressed air from said air compressor.
- 28. The system according to claim 26, wherein said pump supplies fluent material to said inlet end of said nozzle via a high pressure hose.
- 29. The system according to claim 28, wherein said high pressure hose is suspended from said tracked vehicle.
- 30. A wall finishing material application system for providing an even surface of solidifiable fluent material to a vertical wall, said system comprising:
- an upper bracket disposed proximate an upper edge of said wall;
- a lower bracket disposed proximate a lower edge of said wall and parallel to said upper bracket;
- a vertical support structure suspended from said upper and lower brackets and parallel to a first plane defined by said wall, said vertical support structure disposed on said upper and lower brackets for horizontal translating along said wall;
- a nozzle having an outlet end proximate said wall and an inlet end away from said wall, said nozzle having a neutral position lying substantially within a second horizontal second plane orthogonal to said first plane defined by said wall, said nozzle rotatable about said outlet end above and below said horizontal plane, said nozzle disposed on said vertical support structure for vertical translation along said wall;
- a first drive disposed on said vertical support structure for horizontally translating said vertical support structure across said wall in a first direction of motion;
- a second drive disposed on said vertical support structure for vertically translating said nozzle in a second direction of motion;
- a third drive disposed on said vertical support structure for rotating said nozzle inlet end about said nozzle outlet end; and
- a controller for controlling operation of said first, second and third drives.
- 31. The system according to claim 30, wherein said upper bracket further comprises a system of struts disposed on a side of said wall opposite said vertical support structure.
- 32. The system according to claim 30, wherein said vertical wall comprises:
- a planar, intermediate styrofoam layer;
- two planar, opposing wire mesh layers, said styrofoam layer disposed between and coplanar with said wire mesh layers, and
- a plurality of linear cross-members, each of said cross-members having two ends, each of said two ends fastened to one of said two wire mesh layers, said cross-members passing through said styrofoam layer.
- 33. The system according to claim 30, wherein said vertical support structure comprises:
- a vertical support column having an upper end and a lower end;
- a horizontal lower brace disposed proximate said vertical support column lower end and parallel said first plane; and
- an upper mounting plate disposed proximate said upper end of said vertical support column.
- 34. The system according to claim 33, wherein said upper bracket comprises a horizontal upper drive track having regularly spaced teeth.
- 35. The system according to claim 34, wherein said first drive comprises:
- a vertical drive shaft parallel said vertical support column;
- a first motor rotating said vertical drive shaft; and
- an upper drive gear assembly disposed on said upper mounting plate and actuated by rotation of said vertical drive shaft,
- said upper drive gear assembly having teeth in cooperative engagement with said regularly spaced teeth of said upper drive track.
- 36. The system according to claim 35, wherein said upper drive gear assembly comprises:
- a first upper drive gear disposed on said vertical drive shaft;
- an idler gear disposed on said upper mounting plate in mechanical communication with said first upper drive gear; and
- a second upper drive gear disposed on said upper mounting plate in mechanical communication with said idler gear and said upper drive track,
- wherein rotation of said vertical drive shaft rotates said second upper drive gear via said first upper drive gear and said idler gear, said second upper drive gear rotation horizontally translating said vertical support structure relative to said upper drive track.
- 37. The system according to claim 33, wherein said upper bracket further comprises a channel having parallel channel walls.
- 38. The system according to claim 37, wherein said vertical support structure further comprises at least one upper follower wheel rotatably attached to said upper mounting plate and disposed within said channel for rotation against said channel walls.
- 39. The system according to claim 33, wherein said lower bracket comprises:
- a horizontal lower drive track having regularly spaced teeth; and
- a ridge surface substantially parallel to said lower drive track, said ridge surface having an arcuate portion and an underlying planar portion.
- 40. The system according to claim 39, wherein said first drive comprises:
- a vertical drive shaft parallel said vertical support column;
- a first motor rotating said vertical drive shaft; and
- a lower drive gear disposed on said vertical drive shaft and having teeth in cooperative mechanical engagement with said regularly spaced teeth of said lower drive track,
- wherein rotation of said vertical drive shaft rotates said lower drive gear, said lower drive gear rotation horizontally translating said vertical support structure relative to said lower drive track.
- 41. The system according to claim 39, wherein said lower brace comprises at least one lower wheel having a groove in a circumferential surface thereof, said groove disposed for rolling engagement with said ridge surface arcuate portion.
- 42. The system according to claim 41, wherein said lower brace further comprises at least one follower wheel associated with a respective one of said at least one lower wheel, said at least one follower wheel extending from said lower brace proximate said respective at least one lower wheel for rolling engagement with said ridge surface underlying planar portion.
- 43. The system according to claim 33, wherein said nozzle further comprises:
- a mounting system disposed between said nozzle and said vertical support column, said mounting system comprised of
- a first pair of support column tracking wheels disposed on a first pair bracket, each wheel of said first pair circumferentially grooved and disposed on a side of said support column opposite another of said first pair for vertical translation along said support column,
- a second pair of support column tracking wheels disposed on a second pair bracket, each wheel of said second pair circumferentially grooved and disposed on a side of said support column opposite another of said second pair for vertical translation along said support column, and
- at least one interconnecting plate disposed between said first and second pair brackets,
- wherein said first pair of support column tracking wheels is disposed above said nozzle and said second pair of support column tracking wheels is disposed below said nozzle.
- 44. The system according to claim 43, wherein said second drive further comprises:
- a threaded orifice in at least one of said first and second pair brackets;
- a vertical screw shaft engaged within said threaded orifice; and
- a second motor disposed on said vertical support structure in mechanical communication with said vertical screw shaft,
- wherein operating said second motor in a first mode rotates said vertical shaft in a first direction to elevate said mounting system, and Operating said second motor in a second mode rotates said vertical shaft in a second direction to lower said mounting system.
- 45. The system according to claim 44, wherein said nozzle further comprises:
- an oblong funnel disposed on said at least one interconnecting plate having a divergent end proximate said wall and a convergent end opposite said divergent end, said funnel having a long dimension parallel said lower brace;
- a swivel joint disposed at said funnel convergent end, parallel said lower brace;
- a nozzle body having an anterior end rotatably attached to said swivel joint and a posterior end opposite said anterior end; and
- a fluent material transport chamber defined by outer surfaces of said funnel said, said swivel joint, and said nozzle body, said chamber thus extending from said nozzle body posterior end to said funnel divergent end.
- 46. The system according to claim 45, wherein said mounting system further comprises:
- end plates disposed on either side of and mechanically affixed to said nozzle and said at least one interconnecting plate;
- a lifter arm having a lower end disposed on one of said end plates and having an upper end extending above said nozzle, said lifter arm lower end in mechanical communication with said third drive for extension and contraction of said lifter arm; and
- a lifting link disposed between said nozzle body posterior end and said lifter arm upper end,
- wherein extension of said lifter arm by said third drive results in elevation of said nozzle body posterior end relative to said nozzle body anterior end, and contraction of said lifter arm by said third drive results in lowering said nozzle body posterior end relative to said nozzle body anterior end.
- 47. The system according to claim 46, wherein said nozzle further comprises:
- an upper actuator disposed on one of said end plates above said nozzle;
- an upper actuator linkage mechanically connected to said upper actuator; and
- an upper flap rotatably connected to a top edge of said funnel divergent end and rotated by said upper actuator via said upper actuator linkage, wherein an axis of rotation of said upper flap is parallel said lower brace.
- 48. The system according to claims 46, wherein said nozzle further comprises:
- a lower actuator disposed on one of said end plates below said nozzle;
- a lower actuator linkage mechanically connected to said lower actuator; and
- a lower flap rotatably connected to a bottom edge of said funnel divergent end and rotated by said lower actuator via said lower actuator linkage, wherein an axis of rotation of said lower flap is parallel said lower brace.
- 49. The system according to claim 46, wherein said funnel further comprises at least one side dam disposed on one of said end plates and extending from said oblong funnel divergent end toward said wall and between upper and lower edges of said funnel divergent end.
- 50. The system according to claim 49, wherein said at least one side dam is resiliently mounted to allow upward and downward urging of said side dam with respect to said oblong funnel.
- 51. The system according to claim 45, wherein said nozzle further comprises:
- a plurality of first conduits disposed at said nozzle body posterior end; and
- a plurality of second conduits disposed at said nozzle body anterior end,
- wherein said first and second conduits each have an entrance port and an exit port providing a flow path through said nozzle body outer surface into said chamber.
- 52. The system according to claim 51, wherein said entrance and exit ports if each of said first and second conduits are radially offset, wherein has introduced through said conduits spirals within said chamber as said gas progresses through said chamber from said nozzle body posterior end to said funnel divergent end.
- 53. The system according to claim 51, wherein said nozzle further comprises:
- at least one posterior end plenum surrounding said entrance ports of said first air conduits; and
- at least one anterior end plenum surrounding said input ends of said second air conduits.
- 54. The system according to claim 53, wherein said at least one anterior end plenum comprises a first plenum disposed on a top surface of said nozzle body and a second plenum disposed on a bottom surface of said nozzle body.
- 55. The system according to claim 33, wherein said controller is comprised of a processor, an associated memory and a display.
- 56. The system according to claim 53, wherein said system further comprises a tracked vehicle proximate said wall.
- 57. The system according to claim 56, wherein said tracked vehicle is propelled by a pneumatic air track motor using compressed air from an air compressor.
- 58. The system according to claim 56, wherein said tracked vehicle further comprises:
- a platform;
- a cabin disposed on said platform and housing said controller;
- an air compressor disposed on said platform providing a source of compressed air to said nozzle;
- a pump disposed on said platform providing a source of pressurized fluent material to said nozzle; and
- a generator disposed on said platform providing power for said pump.
- 59. The system according to claim 58, wherein said air compressor supplies compressed air to said nozzle via said at least one posterior end plenum and said at least one anterior end plenum.
- 60. The system according to claim 58, wherein said pump supplies fluent material to said posterior end of said nozzle body via a high pressure hose.
- 61. The system according to claim 60, wherein said high pressure hose is suspended from said tracked vehicle.
RELATED APPLICATION
This application is a continuation-in-part of U.S. patent application Ser. No. 08/331,284, filed Oct. 28, 1994 now U.S. Pat. No. 5,531,584.
US Referenced Citations (14)
Continuation in Parts (1)
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Number |
Date |
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331284 |
Oct 1994 |
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