Claims
- 1. An apparatus for introducing pulverulent material into a tire, said apparatus comprising:
- a container for receiving and confining an amount of pulverulent material, said container including a pulverulent material inlet in selective fluid communication with a source of pulverulent material, a pulverulent material outlet in selective communication with at least one tire, and at least one pressure variation orifice;
- a means for measuring a pre-determined amount of said pulverulent material within said container;
- whereby pulverulent material is dispensed into said container from said source of pulverulent material when said pressure variation orifice of said container is connected in fluid communication with a vacuum source to thereby establish a low pressure condition, relative to ambient conditions, within said container, and whereby pulverulent material confined within said container is expelled therefrom and introduced into said at least one tire when said at least one pressure variation orifice is connected in fluid communication with a source of compressed air to thereby establish a high pressure condition, relative to ambient conditions within said container.
- 2. An apparatus as recited in claim 1, wherein said apparatus further comprises a vacuum generator in selective fluid communication with said at least one pressure variation orifice.
- 3. An apparatus as recited in claim 2, wherein said vacuum generator is a venturi having an inlet port in selective fluid communication with a source of compressed air, an outlet port, and a vacuum port in selective fluid communication with said at least one pressure variation orifice of said container.
- 4. An apparatus as recited in claim 3, wherein said source of pulverulent material is provided by a hopper, and wherein said outlet port of said venturi is in selective fluid communication with said hopper such that compressed air exhausted from said venturi impinges upon pulverulent material within said hopper.
- 5. An apparatus as recited in claim 4, wherein a valve is connected between said outlet port of said venturi and said hopper such that said valve blocks fluid communication between said outlet port of said venturi and said hopper.
- 6. An apparatus as recited in claim 5, wherein said valve is a pneumatically controlled pinch valve.
- 7. An apparatus as recited in claim 3, wherein said apparatus includes at least one compressed air inlet for connection to a source of compressed air, and wherein said inlet port of said venturi is in selective fluid communication with said at least one compressed air inlet through a solenoid valve.
- 8. An apparatus as recited in claim 7, wherein a pressure regulator is provided between said inlet port of said venturi and said compressed air inlet of said apparatus.
- 9. An apparatus as recited in claim 7, wherein a check valve is provided between said solenoid valve and said inlet port of said venturi to prevent the migration of pulverulent material into said solenoid valve from said venturi.
- 10. An apparatus as recited in claim 7, wherein said apparatus further comprises at least one microcontroller, and wherein said solenoid valve is connected to said at least one microcontroller such that said solenoid valve opens and closes in response to signals received from said microcontroller.
- 11. An apparatus as recited in claim 2, wherein said at least one pressure variation orifice of said container is also in selective fluid communication with a source of compressed air such that a high pressure condition, relative to ambient conditions, is established within said container when compressed air is communicated into said container through said at least one pressure variation orifice.
- 12. An apparatus as recited in claim 11, wherein a solenoid valve is connected between said at least one pressure variation orifice and a source of compressed air to selective block fluid communication of compressed air from said source into said container.
- 13. An apparatus as recited in claim 12, wherein said apparatus further comprises a microcontroller, and wherein said solenoid connected between said at least one pressure variation orifice and said source of compressed air is connected to said at least one microcontroller such that said solenoid opens and closes in response to signals received from said microcontroller.
- 14. An apparatus as recited in claim 1, wherein said at least one pressure variation orifice is provided by a single pressure variation orifice.
- 15. An apparatus as recited in claim 1, wherein said container is a cylinder.
- 16. An apparatus as recited in claim 15, wherein said cylinder includes a first end and a second end, and wherein said inlet port is formed in said first end of said cylinder and said outlet port is formed in said second end of said cylinder.
- 17. An apparatus as recited in claim 16, wherein said first and second ends of said cylinder are provided respectively by first and second bulkheads, and wherein said pulverulent material inlet port and said at least one pressure variation orifice are formed through said first bulkhead, and said pulverulent material outlet port is formed through said second bulkhead.
- 18. An apparatus as recited in claim 17, wherein said cylinder has a longitudinal axis and wherein said pulverulent material inlet port is formed coaxial with said longitudinal axis.
- 19. An apparatus as recited in claim 17, wherein said cylinder is oriented substantially vertically such that said first end is above said second end.
- 20. An apparatus as recited in claim 1, wherein said pulverulent material outlet port is also in selective fluid communication with said source of pulverulent material, such that pulverulent material confined within said container can be selectively returned to said source thereof.
- 21. An apparatus as recited in claim 20, wherein a valve is connected between said pulverulent material outlet port of said container and said source of pulverulent material to selective block fluid communication between said container to said source of pulverulent material.
- 22. An apparatus as recited in claim 21, wherein said valve is a pneumatically controlled pinch valve.
- 23. An apparatus as recited in claim 1, wherein said source of pulverulent material is provided by a hopper connected to said apparatus.
- 24. An apparatus as recited in claim 23, wherein said hopper is in selective fluid communication with a source of fluid under positive pressure, such that said fluid is introduced into said hopper while pulverulent material is being dispensed therefrom, to thereby form an admixture of fluid and pulverulent material within said hopper.
- 25. An apparatus as recited in claim 24, wherein said hopper includes a lower portion and wherein compressed air is directed into said hopper through said lower portion thereof, such that pulverulent material contained in said hopper forms an admixture with said compressed air directed into said lower portion of said hopper to thereby facilitate the distribution of said pulverulent material from said hopper into said container.
- 26. An apparatus as recited in claim 25, wherein said lower portion of said hopper includes a diffuser therein, said diffuser including a plurality of holes formed therethrough, wherein said holes are in fluid communication with said source of compressed air.
- 27. An apparatus as recited in claim 26, wherein said diffuser is non-planar.
- 28. An apparatus as recited in claim 1, further comprising:
- a valve connected between said inlet of said container and said source of pulverulent material to selectively block fluid communication between said source and said container;
- a valve connected between said pulverulent material outlet of said container and said at least one tire to selectively block fluid communication between said container and said at least one tire.
- 29. An apparatus as recited in claim 28, wherein said valve connected between said inlet of said container and said source of pulverulent material and said valve connected between said pulverulent material outlet of said container and said at least one tire are pneumatically controlled pinch valves.
- 30. An apparatus as recited in claim 29, wherein said apparatus further comprises:
- at least one microcontroller;
- at least one electrically controlled pilot valve connected to each pneumatically controlled pinch valve, said pilot valves selectively blocking fluid communication of compressed air to said pinch valves,
- such that each of said pilot valves is opened and closed in response to electrical signals received from said at least one microcontroller.
- 31. An apparatus as recited in claim 1, further comprising:
- a microcontroller;
- a weight sensor connected to said microcontroller such that said microcontroller receives data from said weight sensor regarding the weight of pulverulent material within said container,
- such that said microcontroller terminates the flow of pulverulent material into said container when a predetermined amount of pulverulent material is contained within said container.
- 32. An apparatus as recited in claim 31, wherein said weight sensor is a load cell.
- 33. An apparatus as recited in claim 1, further comprising:
- at least one mainframe component including said container connected thereto;
- at least one workstation component spaced from said mainframe component and connected in selective fluid communication through a distribution conduit to said container of said at least one mainframe component.
- 34. An apparatus as recited in claim 33, wherein said at least one workstation component includes a pulverulent material inlet connected to said distribution conduit, and includes a pulverulent material outlet connected through an outlet conduit to a tire valve stem of said at least one tire.
- 35. An apparatus as recited in claim 34, wherein said outlet conduit of said at least one workstation component is connected to said tire valve stem through an air chuck.
- 36. An apparatus as recited in claim 34, wherein said workstation component further comprises a compressed air inlet for connection to a source of compressed air wherein said compressed air inlet is in selective fluid communication with said outlet conduit of said workstation component such that compressed air is selectively communicated into said tire.
- 37. An apparatus as recited in claim 36, wherein said workstation component further comprises an air pressure sensor connected in fluid communication with said tire valve stem.
- 38. An apparatus as recited in claim 37, further comprising:
- at least one microcontroller; and,
- a solenoid valve connected between said compressed air inlet and said outlet conduit of said at least one workstation component,
- wherein said air pressure sensor and said solenoid valve are connected to said at least one microcontroller such that said microcontroller opens and closes said solenoid valve in response to the air pressure sensed within said at least one tire.
- 39. An apparatus as recited in claim 34, wherein said workstation component further comprises an exhaust outlet in selective fluid communication with said outlet conduit of said workstation such that compressed air is selectively exhaustible from said at least one tire.
- 40. An apparatus as recited in claim 39, further comprising a microcontroller and a solenoid valve provided between said outlet conduit and said exhaust outlet of said workstation component, wherein said solenoid valve is connected to said at least one microcontroller and is opened and closed in response to electrical signals received from said microcontroller to thereby provide selective fluid communication of compressed air from within said at least one tire to said exhaust outlet.
- 41. An apparatus as recited in claim 34, wherein said workstation component comprises a runout sensor for sensing at least the radial runout of said at least one tire.
- 42. An apparatus as recited in claim 41, wherein said runout sensor senses the lateral runout of said at least one tire.
- 43. An apparatus as recited in claim 1, wherein said means for measuring a predetermined amount of said pulverulent is a weight scale.
- 44. A method of introducing a pulverulent material into a tire, said method comprising the steps of:
- providing a container having an inlet in selective fluid communication with a source of pulverulent material and having an outlet in selective fluid communication with a tire;
- measuring a pre-determined amount of said pulverulent material within said container;
- dispensing pulverulent material into said container by establishing an air-pressure differential between said source of pulverulent material and said container;
- exhausting pulverulent material from said container by pressurizing said container.
- 45. A method as recited in claim 44, wherein said dispensing step is carried out by selectively connecting said container to a vacuum source such that a low-pressure condition, relative to ambient pressure, is established within said container such that pulverulent material is suctioned from said source into said container.
- 46. A method as recited in claim 45, wherein said vacuum source is provided by a venturi having an inlet in fluid communication with a source of compressed air, an outlet, and an vacuum port in fluid communication with said container.
- 47. A method as recited in claim 46, wherein said container includes a pressure-variation orifice, and wherein said vacuum port of said venturi is connected to said pressure-variation orifice.
- 48. A method as recited in claim 44, wherein said step of exhausting pulverulent material from said container is carried out by selectively connecting said container to a source of compressed air such that a high-pressure condition, relative to the air pressure within said tire, is established within said container.
- 49. A method as recited in claim 48, wherein said container includes a pressure variation orifice, and wherein said source of compressed air is connected to said pressure variation orifice.
- 50. A method as recited in claim 44, wherein said step of providing a container is carried out by providing a cylinder having a pulverulent material inlet, a pulverulent outlet, and a pressure variation orifice formed therein.
- 51. A method as recited in claim 44, wherein said step of dispensing pulverulent material into said container comprises the steps of:
- monitoring the weight of pulverulent material dispensed into said container;
- terminating the flow of pulverulent material into said container upon the existence of a predetermined weight of pulverulent material therein.
- 52. A method as recited in claim 49, wherein said step of exhausting pulverulent material from said container comprises the steps of:
- monitoring the amount of pulverulent material remaining within said container by monitoring the weight of pulverulent material within said container; and,
- terminating said step of pressurizing said container when said container is at least substantially empty of pulverulent material.
- 53. A method as recited in claim 52, wherein said step of monitoring the weight of pulverulent material dispensed into said container and said step of monitoring the amount of pulverulent material remaining within said container are carried out by supporting said container on a weigh scale.
- 54. A method as recited in claim 53, wherein said weigh scale is a load cell.
- 55. A method as recited in claim 54, wherein said step of terminating the step of pressurizing said container when said container is at least substantially empty of pulverulent material is carried out by:
- providing a microcontroller; and,
- connecting said load cell to said microcontroller such that said microcontroller receives data regarding the weight of pulverulent material within said container and such that said microcontroller terminates the pressurization of said container when said pulverulent has been exhausted therefrom.
- 56. A method as recited in claim 51, wherein said step of monitoring the weight of pulverulent material dispensed into said container is carried out by supporting said container on a weigh scale.
- 57. A method as recited in claim 56, wherein said weigh scale is load cell.
- 58. A method as recited in claim 57, wherein said step of terminating the flow of pulverulent material into said container is carried out by:
- providing a microcontroller; and,
- connecting said load cell to said microcontroller such that said microcontroller receives data regarding the weight of pulverulent material within said container and such that said microcontroller terminates said air pressure differential upon the occurrence of a predetermined weight of pulverulent material within said container.
- 59. An apparatus for introducing pulverulent material into a tire, said apparatus comprising:
- a container for receiving and confining an amount of pulverulent material, said container including a pulverulent material inlet in selective fluid communication with a source of pulverulent material, a pulverulent material outlet in selective communication with at least one tire, and at least one pressure variation orifice;
- a means for measuring a pre-determined amount of said pulverulent material within said container;
- whereby pulverulent material is pneumatically dispensed into said container from said source of pulverulent material up to said pre-determined amount and subsequently pneumatically expelled therefrom and introduced into said at least one tire.
- 60. A method of introducing a pulverulent material into a tire, said method comprising the steps of:
- providing a container having an inlet in selective fluid communication with a source of pulverulent material and having an outlet in selective fluid communication with a tire;
- introducing an amount of pulverulent material into said container;
- measuring a pre-determined amount of said pulverulent material;
- substantially suspending said pre-determined amount of pulverulent material within a volume of fluid;
- dispensing pulverulent material into said container by establishing an air pressure differential between said source of pulverulent material and said container;
- pneumatically exhausting pulverulent material from said container.
CROSS REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of U.S. patent application of Robert D. Fogal et al., Ser. No. 08/566,018 filed Dec. 1, 1995, now abandoned, which application is a continuation of U.S. Pat. No. 5,472,023 issued to Fogal, Sr. et al., filed Dec. 5, 1995 Ser. No. 08/229, 536 filed Apr. 19, 1992 and a continuation-in-part of U.S. Pat. No. 5,386,857 issued to Fogal, Sr., et al., Feb. 7, 1995 Ser. No. 08/040,289 filed Mar. 30, 1993. U.S. patent application 08/566,018, and U.S. Pat. Nos. 5,472,023 and 5,386,857 are expressly incorporated by reference herein.
US Referenced Citations (10)
Continuations (1)
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229536 |
Apr 1994 |
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Continuation in Parts (1)
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566018 |
Dec 1995 |
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