1. Field of the Invention
This invention relates to a novel structure of airflow shift switch for the compressed air valve which is employed on the sewing machine to perform the dust collection or in other industrial sectors.
2. Description of the Related Art
It is well learned that the dust collection in the prior art of sewing machine uses the lever principle. While the sewing is running, the airflow will enter the air valve and finally into the dust bag, so the dust or cloth odds are therefore brought down into the dust bag together. The dust bag is only useful when the sewing machine is in operation; there is no way for collect the dust or dirt built up the working bench.
Due to the limited application, the inventor has advocated great efforts to the research and improvement and finally come up with the compressed air valve with flow control to change the direction of flow and to achieve diverse application.
The main object of this invention is to provide an airflow shift switch for the compressed air valve. When the valve is put in operation, the airflow brought in will be released through the intake stem, so the dust built up on the sewing machine will be gone with the airflow. While the intake stem is turned to another angle to change the direction of the airflow, the airflow comes out of the nozzle connector which serves as a sweeper, or as a driving mechanism. The airflow shift switch presents multiple functions.
This invention will be explained in great detail with the aid of embodiments as illustrated in the drawings attached.
Please refer to
The valve seat 1 has a large cavity 11 to accommodate the intake stem 2 and the collar 22. At one end of the valve seat 1, there is an outer ring 12 with a protruded post 121. A spring washer 14 is behind the outer ring 12 and two clips 141, 141 of the spring washer 14 will catch the post 121.
There are two go through holes on the valve seat 1, the first go-through hole 112 and the second go through hole 113. The first go through hole 112 connects to the intake connector 4, an O ring 41 and a closer 42. The closer 42 have arc bottom 421 to be fit to the round body of the shaft 21 of the intake stem 2. When the intake stem 2 is turning, the closer 42 can make a hermetic contact to shaft 21 and keep off the air leaking. The second go through hole 113 links to the nozzle connector 5. To prevent air escape form the intake connector 4, there drills a round chute 111 to be inset with an O ring 15 to avert the airflow escaped through crevice.
Please refer to
Please refer to
At the end of collar 22 (same direction of the shield cap 13) there is a ring block 223 with a plurality of inward skew guide holes 225 linked with the go through channel 211 on the shaft 21. The ring block 223 will from a vacuum chamber in the valve seat 1. The L type intake hole 224 also connects to the ring block 223. In this circumstance, the airflow enters the ring block 223 will pass to the channel 211 of the shaft 21 via the guide holes 225. At the other end of the collar 22, there is an indented chute 221 for retaining assembly 3.
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To ensure the proper position after the intake stem 2 is being turned, the indented holes 312 on the inner board 31 are in line with the through hole 323 on the sideboard 32. The through hole 321 will receive the spring 323 and ball 324 in which the ball 324 is pushed by the spring 323 to be inset in the indented holes 312. The through hole 321 is locked with bolt 322 to prevent the spring 323 and the ball 324 falling off the sideboard 32.
Please refer to
When the intake stem 2 is being turned, the intake hole 224 on the collar 22 will be aligned to the first go through hole 112. The stop post 17 within the indented recess 221 restricts the rotation angle of collar 22. The collar 22 will link the closer 42 in the intake connector 4 to the intake hole 224, let the outer air to enter the first go through hole 112 via the intake connector 4 and the intake hole 224. The airflow passes the ring block 223 and guide holes 225 to the through hole 211 of the shaft 21. The airflow which gushes out of the guide hole 225 will produce impact force exerted upon the top end of the shaft 21 of the intake stem 2 to cause the airflow on the top of the shaft 21 move downward. The end of the shaft 21 of the intake stem 2 links to a bleed tube 7 and muffler 6 to gain the noise suppression created in the dust collection.
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As viewing the above statements, it is apparent that the airflow shaft switch for the compressed air valve is novel design, justified for a grant of new patent.
Number | Date | Country | Kind |
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92219386 | Oct 2003 | TW | national |