Because small pneumatically operated devices require a supply of pressurized gas at constant pressure, current technology requires the use of external tanks or compressors in conjunction with a separate gas pressure regulator. In order to supply the regulated gas to the device, either a hose is required from the regulated supply to the inlet port of the device, or the tank and regulator must be externally attached to the device. This requirement limits both usability and portability.
For devices that only require a small volume of gas, a miniature, self-contained, regulated gas supply is desired. Current high-pressure regulators are large and bulky, and require a means of attaching them to a high-pressure gas reservoir. Further, current reservoirs themselves are too large to be practical for use with portable and small pneumatically operated systems.
The present invention is a regulated gas supply system incorporating a high-pressure gas regulator assembly to regulate gas distributed from a pressurized gas reservoir. The system is miniature and self-contained to fit inside any number of small pneumatically operated devices. Furthermore, the regulated gas supply can be designed to facilitate rapid replacement of the entire assembly in order to replenish the gas supply once the reservoir is depleted, and the gas reservoir is easily replenish with gas after being emptied.
An apparatus embodying features of the claimed invention are depicted in the accompanying drawing which form a portion of this disclosure and wherein:
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Comparing
In order to counteract the force of the high pressure against the portion of the piston 3 that is constantly exposed to the high pressure in the gas reservoir 4, the present design further includes a secondary or balancing chamber 9 that is engaged by one end of the piston 3. In particular, the piston 3 includes a piston body 3b and a piston extension 3c, wherein piston extension 3c engages the secondary chamber 9 in a substantially snug connection. A secondary channel 12 is employed in the body 1 to connect the secondary chamber 9 with the gas reservoir 4. This secondary channel 12 allows the high-pressure gas to flow directly into the secondary chamber 9. The area of the piston 3 acted upon by the gas in secondary chamber 9 is equal to the area of the piston 3 that is constantly exposed to the same high-pressure gas. This arrangement causes the piston 3 to be balanced, so that changes in the pressure of the gas in the reservoir 4, such as when gas is withdrawn during use, or due to temperature changes in the gas, do not affect the regulated pressure at the outlet port 2. The gas pressure at the outlet 2 is therefore proportional to the force of the spring 5. If the force of spring 5 is increased, the regulated pressure is also increased; conversely, if the force of the spring 5 is decreased, the regulated pressure is also decreased. Consequently, the user is able to determine the gas pressure at the outlet 2 as desired for the particular purpose of the gas regulated supply system 100.
It is foreseen that the present gas regulated supply system 100 can be used in multiple designs of pneumatically operated devices that require a portable supply of pressurized gas at constant pressure for convenient operation of the particular device. In one embodiment, the gas regulated supply system 100 could be used with firearm simulators 30, such as the one illustrated in
Thus, although there have been described particular embodiments of the present invention of a new and useful REGULATED GAS SUPPLY SYSTEM, it is not intended that such references be construed as limitations upon the scope of this invention except as set forth in the following claims.
The present application is a continuation in part of co-pending U.S. patent application Ser. No. 10/631,944, filed on Jul. 31, 2003, entitled “Regulated Gas Supply System.”
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Number | Date | Country | |
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20050115613 A1 | Jun 2005 | US |
Number | Date | Country | |
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Parent | 10631944 | Jul 2003 | US |
Child | 10970668 | US |