This application claims priority to Taiwan Application Serial Number 108124374, filed Jul. 10, 2019, which is herein incorporated by reference.
The present disclosure relates to a pneumatic tool. More particularly, the present disclosure relates to a pneumatic tool capable of rotating in a clockwise direction and a counterclockwise direction.
The improvement of the technology increases the technique development of tools, and tools adapting power or automatic tools replace the conventional manual tools and are widely used in daily life, which increases the convenience in human world. A pneumatic tool uses the gas to drive the mechanism, and common pneumatic tools include wrenches and screw drivers. The torque continuously outputted by the pneumatic tool can rotate the element; as a result, the time and the labor can be saved.
A conventional pneumatic tool can be switched between a clockwise mode for rotating in a clockwise direction and a counterclockwise mode for rotating in a counterclockwise direction. In order to achieve the function, a swinging lever or a pushing lever is disposed in addition to the trigger. Through the operation of the swinging lever or the pushing lever, the rotating valve of the pneumatic tool can be rotated to switch the modes. However, in configuration, such a conventional pneumatic tool needs other elements to rotate the rotating valve, and, in operation, different elements have to be operated to switch the modes or to activate the tool; consequently, the conventional pneumatic tool is not convenient, and there is a need to improve the structure thereof.
Based on the abovementioned problems, how to efficiently improve the structure of the pneumatic tool to increase the convenience becomes a pursuit target for practitioners.
According to one aspect of the present disclosure, a pneumatic tool including a gun body, a rotating valve, a valve bushing and a trigger set is provided. The rotating valve is disposed at the gun body and includes at least one opening. The valve bushing sleeves the rotating valve and includes two ports. The trigger set is operably disposed at the gun body and is operably coupled to the rotating valve. A rotation of the trigger set causes the rotating valve to rotate to a first position relative to the valve bushing such that the at least one opening of the rotating valve is aligned to one of the two ports, and the rotation of the trigger set causes the rotating valve to rotate to a second position relative to the valve bushing such that the at least one opening of the rotating valve is aligned to the other one of the two ports.
According to another aspect of the present disclosure, a pneumatic tool including a gun body, a motor, a rotating valve and a trigger set is provided. The gun body includes a receiving space, a first gas channel and a second gas channel. The first gas channel and the second gas channel communicate with the receiving space, respectively. The motor is received in the receiving space. The rotating valve is disposed at the gun body and includes at least one opening. The trigger set is operably disposed at the gun body and is operably coupled to the rotating valve. A rotation of the trigger set causes the rotating valve to rotate to a first position such that the at least one opening of the rotating valve communicates with the first gas channel, and pressing the trigger set allows a gas to enter the first gas channel from the at least one opening thereby driving the motor to rotate in a clockwise direction. The rotation of the trigger set causes the rotating valve to rotate to a second position such that the at least one opening of the rotating valve is communicates with the second gas channel, and pressing the trigger set allows the gas to enter the second gas channel from the at least one opening thereby driving the motor to rotate in a counterclockwise direction.
The disclosure can be more fully understood by reading the following detailed description of the embodiments, with reference made to the accompanying drawings as follows:
It will be understood that when an element (or mechanism or module) is referred to as being “disposed on”, “connected to” or “coupled to” another element, it can be directly disposed on, connected or coupled to the other elements, or it can be indirectly disposed on, connected or coupled to the other elements, that is, intervening elements may be present. In contrast, when an element is referred to as be “directly disposed on”, “directly connected to” or “directly coupled to” another element, there are no intervening elements present.
In addition, the terms first, second, third, etc. are used herein to describe various elements or components, these elements or components should not be limited by these terms. Consequently, a first element or component discussed below could be termed a second element or component.
The gun body 100 includes a receiving space 130, a first gas channel 110 and a second gas channel 120. The first gas channel 110 and the second gas channel 120 communicate with the receiving space 130, respectively. The motor 400 is received in the receiving space 130. The rotating valve 200 is disposed at the gun body 100 and includes at least one opening 250. The trigger set 300 is operably disposed at the gun body 100 and is operably coupled to the rotating valve 200. A rotation of the trigger set 300 causes the rotating valve 200 to rotate to a first position such that the at least one opening 250 of the rotating valve 200 communicates with the first gas channel 110, and pressing the trigger set 300 allows a gas to enter the first gas channel 110 from the at least one opening 250 thereby driving the motor 400 to rotate in a clockwise direction. The rotation of the trigger set 300 causes the rotating valve 200 to rotate to a second position such that the at least one opening 250 of the rotating valve 200 communicates with the second gas channel 120, and pressing the trigger set 300 allows the gas to enter the second gas channel 120 from the at least one opening 250 thereby driving the motor 400 to rotate in a counterclockwise direction.
Hence, through the configuration, the trigger set 300 can perform functions of mode switch and activating; therefore, no other elements are needed for switching the modes and the convenience and the fluency of the pneumatic tool 10 can be improved. The details of the pneumatic tool 10 will be described hereafter.
The gun body 100 is hollow and thus includes the receiving space 130. The gun body 100 includes an inlet 140 and an outlet 150. The gas can enter the gun body 100 from the inlet 140 and leave the receiving space 130 from the outlet 150. The structure thereof is conventional and is not the improved feature of the present disclosure; consequently, no further description is needed. The gun body 100 can further include a disposing bore (not labeled) configured for the rotating valve 200 to be disposed thereon, and the disposing bore communicates with the inlet 140 and the outlet 150.
In the embodiment shown in
The rotating valve 200 can further include a linkage pin 230. The trigger set 300 can include a trigger lever 310, and a rotation of the trigger lever 310 drives the linkage pin 230 to rotate the rotating valve 200. The trigger lever 310 can include a rail 311, and the rail 311 radially penetrates a lever body (not labeled) of the trigger lever 310. The rotating valve 200 can further include two pin holes 240 arranged symmetrically. The linkage pin 230 inserts into the two pin holes 240 and is limited by the rail 311. When the trigger set 300 is pressed, the linkage pin 230 moves within the rail 311 and the rotating valve 200 is not affected by the linkage pin 230.
Precisely, the trigger set 300 includes a trigger 320 and the trigger lever 310. One end of the trigger lever 310 is connected to the trigger 320 along an axial direction, and the trigger lever 310 is moved when the trigger 320 is pressed or rotated. The rail 311 locates at the other end of the trigger lever 310. The rail 311 can have an oval cross-sectional shape along the axial direction, but the present disclosure is not limited thereto.
The tow pin holes 240 locate at one end of the tube 210. As the trigger lever 310 inserts into the axial channel of the tube 210, the two pin holes 240 will correspond to the rail 311, and then the linkage pin 230 can be inserted into the two pin holes 240.
In order to remain the position of the rotating valve 200, the gun body 100 can include two positioning grooves 160 and 170. The rotating valve 200 can further include a restricting member 220. When the rotating valve 200 is in the first position, the restricting member 220 is limited in the positioning groove 160, and when the rotating valve 200 is in the second position, the restricting member 220 is limited in the positioning groove 170.
As shown in
As shown in
The valve bushing 500 is also disposed at the disposing bore of the gun body 100. The port 510 communicates with the first gas channel 110, and the port 520 communicates with the second gas channel 120. Hence, as the opening 250 of the rotating valve 200 is aligned to the port 510, the opening 250 can communicate with the first gas channel 110. On the contrary, as the opening 250 of the rotating valve 200 is aligned to the port 520, the opening 250 can communicate with the second gas channel 120.
The pneumatic tool 10 can further include an adjusting valve 600 which inserts into the axial channel of the rotating valve 200 and includes two adjusting holes 610. The relationship between the adjusting holes 610 and the opening 250 can be changed by a rotation of the adjusting valve 600 relative to the rotating valve 200. As the adjusting hole 610 totally corresponds to the opening 250, the amount of the gas is large such that the speed of the pneumatic tool 10 is high, and as the adjusting hole 610 partially corresponds to the opening 250, the amount of the gas is small such that the speed of the pneumatic tool 10 is low. Moreover, in the embodiment shown in
During operation, a user can rotate the trigger 320 to cause a rotation of the trigger lever 310, and since the linkage pin 230 inserts into the pin holes 240 and the rail 311, the linkage pin 230 is moved with the trigger lever 310 such that the rotating valve 200 is rotated relative to the gun body 100 and the valve bushing 500 to switch between the first position and the second position, thereby changing the rotating direction of the pneumatic tool 10. In addition, as shown in
Subsequently, the user can rotate the adjusting valve 600 to adjust the speed of the pneumatic tool 10, and the relative position between the adjusting valve 600 and the rotating valve 200 can be remained by the restricting member 220.
As shown in
The trigger set 300a includes a trigger lever 310a, and the trigger lever 310a includes a through hole 312a. The rotating valve 200a further includes a linkage pin 230a and two guiding rails 260a arranged symmetrically. The linkage pin 230a inserts into the through hole 312a and is limited by the guiding rails 260a. When the trigger set 300a is rotated, the trigger lever 310a drives the linkage pin 230a to rotate the rotating valve 200a, and when the trigger set 300a is pressed, the linkage pin 230a is moved by the trigger lever 310a within the guiding rails 260a and the rotating valve 200a is not affected by the linkage pin 230a.
In other words, the linkage pin 230a is secured in the through hole 312a and can limitedly and axially move within the two guiding rails 260a; consequently, a rotation of the trigger lever 310a can cause a rotation of the rotating valve 200a, but axial movement of the trigger lever 310a cannot cause a rotation of the rotating valve 200a.
The trigger set 300b includes at least one linkage groove 321b. The rotating valve 200b further includes at least one linkage lever 270b, and the at least one linkage lever 270b is coupled to the at least one linkage groove 321b. When the trigger set 300b is rotated, a rotation of the at least one linkage lever 270b causes a rotation of the rotating valve 200b, and when the trigger set 300b is pressed, the at least one linkage lever 270b is limited moved within the at least one linkage groove 321b.
As shown in
Therefore, a rotation of the trigger 320b causes a rotation of the rotating valve 200b, and pressing the trigger 320b causes axial movement of the linkage lever 270b relative to the linkage groove 321b; as a result, the rotating valve 200b will not rotate. In other embodiment, the trigger set can include at least one linkage lever and the rotating valve can include at least one linkage groove. The present disclosure is not limited thereto.
Please be noted that, the structure that rotate the trigger set 180 degrees to switch rotating mode can be simplified to be used in an electrical tool.
Although the present disclosure has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the present disclosure covers modifications and variations of this disclosure provided they fall within the scope of the following claims.
Number | Date | Country | Kind |
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108124374 | Jul 2019 | TW | national |