The present invention relates to an air pressure valve, and in particular to an universal air pressure valve module that is modularization and is adapted for different devices.
Air pressure valves are used to reduce the input pneumatic pressure to a desired output pneumatic pressure and are used widely in various devices. A conventional air pressure valves comprises piston, sealing element, elastic element and so on. Those elements need to be assembled into an applicable device to provide function. However, different devices have different dimension so that the elements of the conventional air pressure valves have to be made in different sizes to fit into different devices. Thus, the manufacturing process for the conventional air pressure valve is more complicated and is not adapted for mass production.
To overcome the shortcomings, the present invention provides an universal air pressure valve module to mitigate or obviate the aforementioned problems.
The main objective of the present invention is to provide an universal air pressure valve module that is suitable for different devices. The universal air pressure valve module has a hollow shell, a sealing element, a piston and an elastic element. The sealing element is mounted slidably in a low pressure chamber of the shell. The piston is mounted slidably in the low chamber and abuts against the sealing element. The elastic element is mounted longitudinally in the low pressure chamber and presses against the piston. With the pre-assembling the sealing element, the piston and the elastic element in the shell, the universal air pressure valve module is modularized and is easy to be assembled in a desired device.
Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
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The piston 30 is mounted slidably in the low pressure chamber 14, abuts against the sealing element 20 and has an central orifice 301 aligning with the passage 15 of the shell 10. In one embodiment, the piston 30 has an enlarged head 31 abuts against an inside wall of the low pressure chamber 14. The enlarged head 31 has a first annular recess 311 and a second annular recess 312 formed on an outside wall of the enlarged head 31 in sequence. The first annular recess 311 has a diameter larger than that of the second annular recess 312.
The elastic element 40 is mounted longitudinally in the low pressure chamber 14 and presses against the piston 30. In one embodiment, the elastic element 40 is mounted around the piston 30 and is compressed between the enlarged head 31 and the inside wall of the low pressure chamber 14. The elastic element 40 may be a spring, a plurality of resilient washers and so on.
The puncturing element 50 is mounted in the high pressure chamber 13 and has a central hole 51 and a needle part 52. The central hole 51 is formed through the puncturing element 50 and aligns with the passage 15. The needle part 52 is formed on an end of the puncturing element 50 to selectively puncture through the outlet of the high pressure source.
The sealing assembly is mounted in the shell 10 to provide air tight function and may comprise an inner O-ring 61, an inner block 62, an outer O-ring 63, an outer block 64 and a holder 65. The inner O-ring 61 is mounted in the low pressure chamber 14 and abuts against the sealing element 20 and the inside wall of the low pressure chamber 14. The inner block 62 is mounted in the low pressure chamber 14 and abuts against the inner O-ring 61 and the inside wall of the low pressure chamber 14 to hold the inner O-ring 61. The outer O-ring 63 is mounted in the first annular recess 311 of the piston 30 and abuts against the inside wall of the low pressure chamber 14. The outer block 64 is mounted in the second annular recess 312 of the piston and abuts against the inside wall of the low pressure chamber 14 to hold outer O-ring 63. The holder 65 is mounted around the needle part 52 of the puncturing element 50 to hold the puncturing element 50. The O-rings may be altered by disk, cone, washer, plate, ring bumper and so on.
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With the universal air pressure valve module 1 as described being modularization in the shell 10, the universal air pressure valve module 1 as described is assembled in advance and then is easy to be mounted in different devices to regulate the air pressure. Moreover, except for spring and puncturing element 50, all of the elements may be made of plastic so that the universal air pressure valve module 1 are easy to made by injection molding to allow quick and mass production. In addition, the annular recesses 311 and 312 of the piston 30 are formed during injection molding so that no more manufacturing process is performed to form the annular recesses 311 and 312 for disposing the O-ring. Thus, the manufacturing process is more simplified.
Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and features of the invention, the disclosure is illustrative only. Changes may be made in the details, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.