The present invention relates to pneumatic tools and, more particularly, to a silencing mechanism of a pneumatic tool.
Pressurized gas is introduced into pneumatic tools to serve as driving power. However, the pneumatic tools produce noise while discharging the pressurized gas to cause the detriment of performance and workers' health. Hence, the pneumatic tools always come with a silencer to reduce the noise.
A common, conventional silencer has therein a silencing cotton made of a nonwoven fabric or cotton. The porous structure of the silencing cotton not only allows passage of a gas current but also generates slight resistance required to slow down the passing gas current, thereby reducing the noise. However, the pneumatic tools are often used in workplaces full of suspended particles, such as dust and chip, as well as impurities, such as water vapor and oil vapor, which are admitted into the pneumatic tools together with the gas current, thereby ending up in the pores of the silencing cotton. The clogged silencing cotton hinders the passage of the gas current, reduces the driving efficiency of the pneumatic tools, and even renders them useless.
It is an objective of the present invention to provide a silencing mechanism of a pneumatic tool, characterized in that an exhaust gas current channel is divided into at least two sub-channels so that a gas current can flow in the sub-channels freely, thereby reducing exhaust-related noise.
Another objective of the present invention is to replace a conventional silencing cotton with the silencing mechanism whereby noise is greatly reduced without undermining the driving efficiency of the pneumatic tool.
In order to achieve the above and other objectives, the present invention provides a silencing mechanism of a pneumatic tool, disposed in an exhaust pipe of the pneumatic tool, the silencing mechanism comprising:
an annular wall extending along the exhaust pipe, enclosing a first space, and having a plurality of first slits whereby the first space and a second space formed between the annular wall and a pipe wall of the exhaust pipe are in communication with each other;
and at least one flange disposed around the annular wall and protruding radially to partition the second space into a plurality of segments, wherein the at least one flange each has a plurality of second slits whereby adjacent segments are in communication with each other.
In an embodiment, the first slits extend in an extension direction of the annular wall.
In an embodiment, the two flanges are disposed on an outer surface of the annular wall and spaced apart to partition the second space into three segments each of which at least one said first slit corresponding in position to is disposed on the annular wall.
In an embodiment, an end wall is disposed at each of two ends of the annular wall.
In an embodiment, the annular wall has a notch corresponding in position to a bump disposed on the pipe wall of the exhaust pipe.
Referring to
Disposed on the annular wall 1 is a plurality of first slits 14 whereby the first space 11 and the second space 12 are in communication with each other. In this embodiment, the first slits 14 are each a slender linear opening which extends in the extension direction of the annular wall 1. A plurality of flanges 15 is disposed on the outer surface of the annular wall 1. The flanges 15 each protrude from the annular wall 1 radially. The flanges 15 are spaced apart by a distance required for a gas current to take a specific time period to pass; hence, the quantity of the flanges 15 depends on the length of the annular wall 1. This embodiment is exemplified by two flanges 15 which partition the second space 12 into a first segment 121, a second segment 122 and a third segment 123. Each segment 121, 122, 123 has at least one said first slit 14 whereby each segment 121, 122, 123 is in communication with the first space 11.
The flanges 15 each have a plurality of second slits 16 whereby adjacent segments of the second space 12 are in communication with each other. The second slits 16 are each a slender linear opening.
Referring to
Referring to
The exhaust pipe 21 essentially comprises an inner channel and an outer channel, namely the first space 11 and the second space 12. The gas current flows freely between the inner and outer channels through slender slits and thereby forms a plurality of branches. The branches collide with each other and graze against each other in the course of their flow, thereby reducing the noise produced by the gas current being discharged from the vent 24. Test results show that the silencing mechanism of the present invention is not only capable of silencing, without a conventional silencing cotton, as well as or even better than the conventional silencing cotton, but also effective in discharging the gas current from pneumatic tools and preventing damage otherwise caused to the pneumatic tools (because no silencing cotton is required, and in consequence no impurities and suspended particles of the gas current can clog the channels.)
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Number | Date | Country | |
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20190061134 A1 | Feb 2019 | US |