This application claims priority of Taiwanese Application No. 103111475, filed on Mar. 27, 2014.
The disclosure relates to a switching device, and more particularly to an air-tight switching device for use in a pneumatic tool.
Referring to
During operation of the conventional pneumatic tool 1, the switching valve 13 needs to contact air-tightly the cylinder 123 by high air pressure of compressed air entering the tool body 11 via the air inlet 111 to ensure the work efficiency of the compressed air. However, since the switching valve 13 is directly connected to the operating bar 14, the switching valve 13 may not be in air-tight contact with the cylinder 123 due to structural interference among the tool body 11, the operating bar 14 and the switching valve 13. Moreover, the switching valve 13 may be moved to generate a gap between the switching valve 13 and the cylinder 123 due to unintended operation or touch of the operating bar 14.
Therefore, an object of the disclosure is to provide a switching device that can overcome at least one of the aforesaid drawbacks associated with the prior art.
According to the disclosure, the switching device is for use in a pneumatic tool. The pneumatic tool includes a tool body and a pneumatic motor. The tool body includes a handle portion that extends along an X axis, and a head portion that is connected to an end of the handle portion. The handle portion has an inlet flow path that extends along the X axis and that is formed through an opposite end of the handle portion for permitting compressed air to flow thereinto. The pneumatic motor is disposed in the head portion, and includes a cylinder that defines an air chamber, and first and second flow channels communicating fluidly with the air chamber, and a rotor that is disposed rotatably in the air chamber. The switching device includes a valve member, a connecting member and an operating unit. The valve member is disposed in the inlet flow path, is in contact with the cylinder, and has a valve body that defines an intermediate flow path therethrough. The valve member is rotatable relative to the tool body between a first position where the intermediate flow path communicates fluidly the inlet flow path and the first flow channel, and a second position where the intermediate flow path communicates fluidly the inlet flow path and the second flow channel, such that the rotor is rotatable in two opposite directions. The connecting member is disposed in the inlet flow path, and is coupled to an end of the valve member opposite to the pneumatic motor in a manner such that the connecting member drives the rotation of the valve member between the first and second positions and that an assembly of the valve member and the connecting member is flexible, so as to establish an air-tight seal between the valve member and the cylinder. The operating unit is mounted operably on the handle portion and coupled co-rotatably to the connecting member.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiments with reference to the accompanying drawings, of which:
Before the disclosure is described in greater detail, it should be noted that like elements are denoted by the same reference numerals throughout the disclosure.
Referring to
The valve member 3 is disposed in the inlet flow path 213, is in contact with the tube section 222 of the cylinder 221, and has a valve body 31, an intermediate flow path 30 that is formed through the valve body 31, an intermediate groove 32 that is formed in an outer surface of the valve body 31, and a transmission structure 33 that is provided on an end of the valve body 31 opposite to the cylinder 221. The valve member 3 is rotatable relative to the tool body 21 about the X axis (X) between a first position (see
The connecting member 4 is disposed in the inlet flow path 213, and is rotatable relative to the tool body 21 about the X axis (X). The connecting member 4 has a transmission structure 42 that is provided at an end thereof and that is coupled to the transmission structure 33 of the valve member 3, and a split coupling flange unit 41 that is provided at an opposite end thereof distal from the valve member 3. The coupling flange unit 41 is coupled to the handle portion 211 such that the connecting member 4 is prevented from moving along the X axis (X) relative to the handle portion 211. To be more specific, the coupling flange unit 41 includes a plurality of resilient barbs 41′ hooked into the handle portion 211. In this embodiment, the transmission structure 42 is configured as a plurality of protrusions that surround the X axis (X), and that engage the transmission structure 33 of the valve member 3. However, in the variation of this embodiment, the transmission structure 42 is configured as a plurality of recesses. The transmission structures 33, 42 of the valve member 3 and the connecting member 4 are coupled in a manner such that the connecting member 4 drives the rotation of the valve member 3 between the first and second positions and that an assembly of the valve member 3 and the connecting member 4 is flexible. In this embodiment, an intentional gap occurs between each of the protrusions and a wall defining the corresponding recess.
The operating unit 5 includes an annular operating member 51 that is sleeved rotatably on the handle portion 211, and a linking member 52 that interconnects co-rotatably the operating member 51 and the connecting member 4, such that the operating unit 5 is operable to rotate the valve member 3 between the first and second positions.
The resilient member 6 has opposite ends abutting respectively against the valve member 3 and the connecting member 4 for biasing resiliently the valve member 3 to contact the tube section 222 of the cylinder 221.
When the compressed air flows into the intermediate flow path 30 via the inlet flow path 213, high air pressure of the compressed air pushes the valve member 3 to move toward the tube section 222 of the cylinder 221. Since the assembly of the valve member 3 and the connecting member 4 is flexible, the valve member 3 and the tube section 222 are in air-tight contact with each other regardless of structural interference among the valve member 3, the connecting member 4 and the operating unit 5. The resilient member 6 further enhances the air-tight seal between the valve member 3 and the tube section 222.
By rotating the operating member 51 of the operating unit 5, the valve member 3 is switchable between the first and second positions such that the rotor 225 is rotatable in two opposite directions. The working principle of the pneumatic motor 22 is well-known in the art, and will not be explained hereinafter.
Referring to
The advantages of this disclosure are as follows:
1. Since the assembly of the valve member 3 and the connecting member 4 is flexible, the valve member 3 and the tube section 222 are in air-tight contact with each other even when the operating member 51 of the operating unit 5 is touched unintendedly. Therefore, the work efficiency of the compressed air is enhanced.
2. By virtue of the resilient member 6, the valve member 3 and the tube section 222 can be in air-tight contact with each other even though the compressed air does not flow into the intermediate flow path 30.
While the disclosure has been described in connection with what are considered the exemplary embodiments, it is understood that this disclosure is not limited to the disclosed embodiments but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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103111475 | Mar 2014 | TW | national |