Claims
- 1. A vacuum cup assembly including a vacuum cup comprising a stem member and a flexible, substantially conical body, a port in said body for a vacuum source, at least two annular ridges projecting downwardly from said body for intimately contacting a base surface, and at least one port for introducing lubricant to an interface of at least one of said ridges and the base surface.
- 2. A vacuum cup assembly of claim 1 including a filter in said vacuum source port.
- 3. A vacuum cup assembly of claim 1 wherein said flexible body has at least three annular ridges, said annular ridges being substantially concentric.
- 4. A vacuum cup assembly of claim 1 mounted on a chassis including means for attaching a task-performing device to said chassis.
- 5. A vacuum cup assembly of claim 4 including powered wheels for moving said chassis.
- 6. A vacuum cup assembly of claim 5 wherein said wheels are powered by motors on said vehicle and are capable of being independently steered.
- 7. Method of manipulating a robot on a working surface comprising drawing a vacuum on at least one vacuum cup having a flexible surface for adhering to a working surface, feeding a lubricant to said flexible surface to form a film between said flexible surface and said working surface, and activating a locomotion means to propel said robot in a desired direction.
- 8. Method of claim 7 wherein said locomotion means are wheels.
- 9. Method of claim 7 wherein the reaction force RSC of said vacuum cup is determined at least partly by the relationship
- 10. A robot comprising at least one robot module comprising (a) a locomotion section comprising locomotion means for moving said module on a work surface, and (b) a slidable adherence section for adhering said module to a work surface while said module is moving thereon.
- 11. A robot of claim 10 wherein said locomotion section comprises at least one wheel, a motor therefor, and means for steering said wheel.
- 12. A robot of claim 10 wherein said slidable adherence section comprises a vacuum cup having a top side and an underside, a lubricant port therein, and a duct for delivering lubricant through said duct to the underside of said vacuum cup.
- 13. A robot of claim 10 wherein said slidable adherence section comprises a vacuum cup having a stem member, a flexible, substantially conical body, a port in said body for a vacuum source, at least two substantially concentric annular ridges projecting downwardly therefrom for intimately contacting a base surface, and at least one port for introducing lubricant to the interface of at least one of said ridges and the base surface.
- 14. A robot of claim 10 including at least one spring for urging said wheel toward said work surface.
- 15. A robot of claim 10 including a berth for a specific task-performing device.
- 16. A robot of claim 10 including an antenna for receiving control signals.
- 17. A robot of claim 10 including a flexible tube for connection to a remote source of vacuum.
- 18. A robot of claim 10 including a flexible wire for connection to a remote source of electric power.
- 19. A robot of claim 10 including a flexible tube for connection to a remote source of lubricant.
- 20. A robot of claim 10 including a microprocessor for controlling at least one function on said robot.
- 21. A robot comprising at least one robot module comprising (a) a locomotion section comprising locomotion means for moving said module on a work surface, (b) a robot body, and (c) a slidable adherence section for adhering said module to a work surface while said module is moving thereon, said slidable adherence section including a pair of opposing springs for flexibly stabilizing the distance of said robot body from a working surface.
- 22. A robot of claim 21 wherein said opposing springs are on opposite sides of said robot body.
- 23. A robot of claim 21 wherein said slidable adherence section comprises at least one vacuum cup.
- 24. A robot of claim 21 wherein said slidable adherence section comprises at least two vacuum cups.
- 25. A robot of claim 22 including a stem on said vacuum cup for holding a passage for a source of vacuum to said vacuum cup, said springs are coil springs, and said stem passes through said opposing springs.
- 26. A robot of claim 21 wherein said locomotion section comprises at least one wheel turned by an electric motor.
- 27. A robot of claim 23 wherein said vacuum cup comprises a stem member and a flexible, substantially conical body, a port in said body for a vacuum source, at least two annular ridges projecting downwardly from said body for intimately contacting a workpiece surface, and at least one port for introducing lubricant to an interface of at least one of said ridges and said workpiece surface.
- 28. A robot of claim 23 wherein said stem member defines a vacuum passage for providing vacuum to said vacuum cup.
- 29. A vacuum cup assembly for a robot having a robot body, comprising a vacuum cup, a stem member thereon, said stem member passing through at least a portion of said robot body, a lower stem housing below said robot body portion, an upper stem housing above said robot body portion, and springs within said upper and lower stem housings for flexibly stabilizing said vacuum cup assembly with respect to said robot body.
- 30. A vacuum cup assembly of claim 29 wherein said stem member defines a passage from a source of vacuum to said vacuum cup.
- 31. A vacuum cup assembly of claim 29 wherein said vacuum cup includes a port for feeding lubricant to said vacuum cup.
- 32. A vacuum cup assembly of claim 30 including a filter in said passage.
- 33. A vacuum cup assembly of claim 29 wherein said springs are coil springs and said stem passes through said springs.
RELATED APPLICATION
[0001] This application is a continuation-in-part of copending application Ser. No. 09/505,409 filed Feb. 16, 2000.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09505409 |
Feb 2000 |
US |
Child |
09783834 |
Feb 2001 |
US |