Claims
- 1. A method for selectively providing pneumatic pressure and vacuum to a system manifold with an air shifter that communicates between an atmosphere port and the system manifold, the method comprising:
for a selected one of pneumatic pressure and vacuum, pneumatically positioning the air shifter for the selected one by activating a first pneumatic source; after a delay for the pneumatically positioning of the air shifter, starting a second pneumatic source to increase the selected one of pneumatic pressure and vacuum to the system manifold.
- 2 The method of claim 1, wherein the air shifter has an intake chamber with a first and second intake port therein and an exhaust chamber with a first and second exhaust port therein, the method further comprising:
responding to a pressure command by:
activating the first pneumatic source between the first intake port and the first exhaust port, thereby causing the intake chamber to communicate with the atmosphere port and the exhaust chamber to communicate with the system manifold, and activating a second pneumatic source between the second intake port and the second exhaust port.
- 3. The method of claim 2, further comprising:
responding to a vacuum command by:
activating the second pneumatic source, thereby causing the intake chamber to communicate with the system manifold and the exhaust chamber to communicate with the atmosphere port, and activating the first pneumatic source.
- 4. The method of claim 1, wherein the air shifter has an intake chamber with a first and second intake port therein and an exhaust chamber with a first and second exhaust port therein, the method further comprising:
responding to a vacuum command by:
activating the second pneumatic source, thereby causing the intake chamber to communicate with the system manifold and the exhaust chamber to communicate with the atmosphere port, and activating the first pneumatic source.
- 5. A blower assembly for a pneumatic tube system, comprising:
a system manifold for selectively receiving pneumatic pressure and vacuum; an atmosphere port; an intake passage communicating between the system manifold and the atmosphere port; an exhaust passage communicating between the system manifold and the atmosphere port; a first pneumatic source communicating between the intake passage via a first intake port and the exhaust passage via a first exhaust port; a second pneumatic source communicating between the intake passage via a second intake port and the exhaust passage via a second exhaust port an intake closure device placed to close the intake passage to a selected one of the atmosphere port and the system manifold in pneumatic response to activation respectively of the first and second pneumatic source; and an exhaust closure device placed to close the exhaust passage to a selected one of the system manifold and the atmosphere port in pneumatic response to activation respectively of the first and second pneumatic source.
- 6. The blower assembly of claim 5, wherein the intake closure device comprises an intake spool slidably contained within the intake passage
- 7. The blower assembly of claim 6, wherein the exhaust closure device comprises an exhaust spool slidably contained within the exhaust passage.
- 8. The blower assembly of claim 5, wherein the exhaust closure device comprises an exhaust spool slidably contained within the exhaust passage.
- 9. A pneumatic tube system comprising:
a pneumatic carrier tube; a main station coupled to the pneumatic carrier tube configured to receive a carrier; a remote station coupled to the pneumatic carrier tube configured to receive the carrier; and a blower assembly coupled to the pneumatic carrier tube proximate to the main station and operable to provide pressure to convey the carrier from the main station to the remote station and to return the carrier; the blower assembly further comprising:
a first blower, a second blower, and an air shifter operably configured to pneumatically respond to the first blower being started before the second blower to provide pressure to the pneumatic carrier tube and to the second blower being started before the first blower to provide vacuum to the pneumatic carrier tube.
- 10. The pneumatic tube system of claim 9, wherein the blower assembly further comprises:
a system manifold in communication with the pneumatic carrier tube; an atmosphere port; an intake passage communicating between the system manifold and the atmosphere port; an exhaust passage communicating between the system manifold and the atmosphere port; the first blower communicating between the intake passage via a first intake port and the exhaust passage via a first exhaust port; the second blower communicating between the intake passage via a second intake port and the exhaust passage via a second exhaust port an intake closure device placed to close the intake passage to a selected one of the atmosphere port and the system manifold in pneumatic response to activation respectively of the first and second blower; and an exhaust closure device placed to close the exhaust passage to a selected one of the system manifold and the atmosphere port in pneumatic response to activation respectively of the first and second blower.
- 11. The pneumatic tube system of claim 10, wherein the intake closure device comprises an intake spool slidably contained within the intake passage
- 12. The pneumatic tube system of claim 11, wherein the exhaust closure device comprises an exhaust spool slidably contained within the exhaust passage.
- 13. The pneumatic tube system of claim 10, wherein the exhaust closure device comprises an exhaust spool slidably contained within the exhaust passage.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of, and hereby incorporates by reference in its entirety, the commonly owned U.S. Provisional Application Serial No. 60/296,216 that was filed on Jun. 6, 2001 by Kieran P. Nickoson: entitled: “AIR VALVE.”
Provisional Applications (1)
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Number |
Date |
Country |
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60296216 |
Jun 2001 |
US |