This application claims priority of Taiwanese Application No. 101138718, filed on Oct. 19, 2012.
1. Field of the Invention
This invention relates to a pneumatic tool, and more particularly to a pneumatic tool having a two-stage gas flow control.
2. Description of the Related Art
Referring to
Upon application of an external force to the trigger 14, the trigger 14 moves along the axis (X) so that the pin 131 activates the gas blocking member 132 to open the passage 12, so that a first-stage movement of the pin 131 is ended. Subsequently, when movement of the pin 131 is continued, i.e., a second-stage movement of the pin 131 occurs, the opening degree of the passage 12 is increased gradually. By such a two-stage movement, the flow rate of the passage can be controlled.
However, since the gas blocking member 132 is disposed on the pin 131, and since the pin 131 is co-rotatable with the trigger 14, the pressure of the gas flowing in the passage 12 forms a resistance to movement of the pin 131 and the trigger 14, thereby resulting in difficulties in actuation of the trigger 14. As such, to open the passage 12, it is necessary to apply a comparatively large force to the trigger 14, thereby resulting in difficulties in controlling the second-stage movement of the pin 131.
Referring to
The object of this invention is to provide a two-stage gas flow control for a pneumatic tool, which can control the gas flow rate in an easy and more accurate manner and which can be operated smoothly.
According to this invention, a pneumatic tool includes a body, a switch valve, and a trigger. The body has a passage. The switch valve includes a plug sealing the passage, a plug rod connected to the plug, and a rod member extending in the body along an axis for driving the plug rod and the plug, such that movement of the rod member in the body in a direction results in a gradual increase in the flow rate of the gas in the passage. The plug rod is connected to the rod member. The trigger includes a first plate and a second plate. The first plate is operable manually to covert between a first position whereat the second plate cannot be driven by the first plate, and a second position whereat the second plate can be driven by the first plate.
Since the plug is not disposed directly on the rod member, the pressure of the gas flowing in the passage cannot affect smooth operation of the trigger. Furthermore, since the trigger includes the first and second plates, and since the second-stage movement of the rod member is started upon activation of the second plate, the second-stage movement of the rod member can be controlled easily.
These and other features and advantages of this invention will become apparent in the following detailed description of the preferred embodiments of this invention, with reference to the accompanying drawings, in which:
Before the present invention is described in greater detail in connection with the preferred embodiments, it should be noted that similar elements and structures are designated by like reference numerals throughout the entire disclosure.
Referring to
The body 2 has a passage 21 permitting a gas to flow there through.
The switch valve 3 includes a plug 31 sealing the passage 21, a plug rod 32 connected to the plug 31, and a rod member 33 extending in the body 2 along an axis (X) and movable for driving the plug rod 32 and the plug 31. The plug rod 32 is connected to the rod member 33 such that an angle is formed therebetween.
The trigger 4 includes a pivot pin 40, a first plate 41, and a second plate 42. Each of the first and second plates 41, 42 has a connecting portion 411, 421 adjacent to an end thereof, and a swinging portion 412, 422 adjacent to an opposite end thereof. The swinging portion 412 of the first plate 41 has a periphery formed with a notch 413, and an abutment surface 413′ defining the notch 413 so that an end of the rod member 33 is disposed movably within the notch 413, and abuts against the abutment surface 413′. The second plate 42 further has a depression 423 and an inner wall surface 423′ defining the depression 423. The pivot pin 40 extends through the connecting portions 411, 421 of the first and second plates 41, 42, so that the first and second plates 41, 42 are rotatable about a rotating axis. The pivot pin 40 has a central axis constituting the rotating axis.
The first resilient member 5 is configured as a coiled compression spring, and is disposed between the body 2 and the plug 31 for biasing the plug 31 to seal the passage 21.
The second resilient member 6 is configured as a coiled compression spring, and is disposed between the body 2 and the second plate 42, so as to bias the swinging portion 412 of the first plate 41 to project outwardly from the body 2 for manual operation, so that the first plate 41 is disposed at a first position shown by the phantom lines in
The third resilient member 6′ is configured as a torsion spring, and is disposed between the first and second plates 41, 42 for biasing the swinging portion 412 of the first plate 41 away from the swinging portion 422 of the second plate 42. The spring force of the third resilient member 6′ is smaller than that of the second resilient member 6.
An external force can be applied to the first plate 41 of the trigger 4 to overcome the spring force of the third resilient member 6′ to rotate the first plate 41 about the pivot pin 40 from the first position to a second position shown by the solid lines in
Subsequently, with further reference to
In this embodiment, the body 2 further has a track 22 extending in a direction parallel to the axis (X), and the trigger 4 includes a first plate 43 and a second plate 44 that has a connecting portion 441 engaging movably the track 22, a recess 442, and a through hole 443 in spatial communication with the recess 442. The first plate 43 is disposed within the recess 442. The rod member 33 extends through the through hole 443 to connect with the first plate 43. As such, the first and second plates 43, 44 are movable along the axis (X).
Each of the second and third resilient members 6, 6′ is configured as a coiled compression spring. The second resilient member 6 is disposed between the body 2 and the second plate 44. The third resilient member 6′ is disposed between the first and second plates 43, 44 and in the recess 442.
With further reference to
At the second stage, application of the external force to the first plate 43 is continued to move the first and second plates 43, 44 and, thus, the rod member 33 along the axis (X) by a second distance (L2).
In view of the above, the pneumatic tool of this invention has the following advantages:
With this invention thus explained, it is apparent that numerous modifications and variations can be made without departing from the scope and spirit of this invention. It is therefore intended that this invention be limited only as indicated by the appended claims.
| Number | Date | Country | Kind |
|---|---|---|---|
| 101138718 | Oct 2012 | TW | national |