The present application claims priority from Japanese application JP 2013-203005 filed on Sep. 30, 2013, the content of which is hereby incorporated by reference into this application.
1. Field of the Invention
The present invention relates to a scroll type fluid machine.
2. Description of Related Art As the related art in the technical field of the present invention, JP 2001-123969 A and JP 2012-132346 A can be cited.
In JP 2001-123969 A, a scroll type fluid machine is described in which an eccentric bush including a retaining tube and an eccentric shaft is provided and a distal end of a driving shaft is inserted to the retaining tube.
In JP 2012-132346 A, a scroll type compressor is described which includes a revolving mechanism that comprises an eccentric shaft, a bush and an Oldham ring, and a driving shaft that imparts a revolving force to the revolving mechanism.
The eccentric bush of JP 2001-123969 A is formed integrally with the eccentric shaft. Therefore, it was hard to bore a hole into which the driving shaft is inserted with a high degree of accuracy with respect to a position of the eccentric shaft, and the dimensional accuracy of the eccentricity amount could not be improved.
In the eccentric bush arranged in the revolving mechanism of JP 2012-132346 A, although the eccentric shaft is fitted, the driving shaft is not fitted, and the eccentric shaft is made eccentric with respect to the driving shaft by boring a hole for fitting the eccentric shaft in the driving shaft. It was hard to bore a hole at a highly accurate position with respect to the driving shaft, and the dimensional accuracy could not be improved.
In view of the problems described above, the object of the present invention is to provide a scroll type fluid machine including an eccentric bush capable of improving the dimensional accuracy with easy working.
In order to solve the problems described above, the present invention provides “a scroll type fluid machine including a fixed scroll, an orbiting scroll arranged so as to oppose to the fixed scroll and executing an orbiting motion, a driving shaft driving the orbiting scroll, an eccentric shaft decentered from the driving shaft and connected to the orbiting scroll, and an eccentric bush connecting the driving shaft and the eccentric shaft to each other, in which the eccentric bush includes a main hole in which the driving shaft is fitted and an eccentric hole into which the eccentric shaft is fitted, the main hole and the eccentric hole are through holes, and one hole thereof is formed at a position not projecting outward in the radial direction from the other hole thereof as viewed from the direction the driving shaft extends”.
According to the present invention, a scroll type fluid machine can be provided which includes an eccentric bush capable of improving the dimensional accuracy with easy working.
Other objects, configurations, and advantageous effects of the invention will become apparent from the following description of the embodiments of the invention taken in conjunction with the accompanying drawings.
[Embodiment 1]
Embodiment 1 according to the present invention will be described with reference to
In a compressor main body 1, an orbiting scroll 2 and a fixed scroll are arranged so as to oppose to each other, and a compression chamber is formed by lap sections 4, 5 of a spiral shape erected respectively on the surfaces of the orbiting scroll 2 and the fixed scroll 3 opposing to each other. Also, an eccentric section (eccentric bush 8) is arranged on the compressor main body side of a driving shaft 6, and an eccentric shaft 18 arranged so as to be eccentric relative to the driving shaft 6 is connected to the driving shaft 6 by the eccentric bush 8. The eccentric shaft 18 is connected to the orbiting scroll 2 and rotatively drives the orbiting scroll 2. Also, a rotation prevention mechanism 7 is arranged in the orbiting scroll 2, and the orbiting scroll 2 executes a rotating (eccentric) motion with respect to the fixed scroll 3 by the driving shaft 6 so as to compress air.
Here, a motor driving the compressor main body 1 is constituted of a motor casing 9 and a rotor 10 and a stator 11 accommodated therein, and is connected to the driving shaft 6 that is penetratingly attached to a rotor 10. Also, on the side of the driving shaft 6 opposite to the orbiting scroll 2, a cooling fan 12 generating cooling air is attached. The cooling fan 12 is accommodated in a fan casing 13 that is attached to the motor casing 9, the motor is driven, the cooling fan thereby rotates, and cooling gas is sucked from a cooling air inlet 14, so as to generate the cooling air. The cooling air generated by the cooling fan 12 passes through inside the fan casing 13, flows to the side of the orbiting scroll 2 and a cooling fin 15 on the back of the fixed scroll 3, and cools the compressor main body 1. The cooling air having cooled the compressor main body 1 and having been warmed is discharged from a cooling air outlet 16.
The driving shaft 6 is supported by a main bearing 23, and the main bearing 23 is arranged between the balance weight 17 and the eccentric bush 8. Also, the eccentric shaft 18 is supported by an eccentric bearing 24, and the eccentric bearing 24 is arranged between the orbiting scroll 2 and the eccentric bush 8. With such positional relation, the balance weight 17, the main bearing 23, the eccentric bush 8, the eccentric shaft 18 and the eccentric bearing 24 can be assembled onto the driving shaft 6 in this order, and assembling can be executed easily from one direction.
As shown in
Here, the relation between the diameters of the main hole 20 and the eccentric hole 21 and the eccentricity amount is shown in
In the scroll type compressor, because the compression chamber is formed by the lap sections 4, 5 of the orbiting scroll 2 and the fixed scroll 3, the performance of the compressor depends to the size of the gap between the laps. As the gap between the laps is smaller, the sealing degree of the compression chamber increases, and the performance improves. However, when the laps contact each other, the laps come to be broken, and the compressor breaks down. Therefore, the accuracy of the eccentric section determining the gap between the laps becomes important in the performance and reliability of the compressor. According to the present embodiment, because the main hole 20 into which the driving shaft 6 is fitted and the eccentric hole 21 into which the eccentric shaft 18 is fitted are arranged in the eccentric bush 8, the dimensional accuracy can be improved with easy working. Thus, the performance and reliability of the compressor can be improved.
[Embodiment 2]
Embodiment 2 according to the present invention will be described using
As shown in
Also, in the present embodiment, the main bearing 23 supporting the driving shaft 6 is arranged between the eccentric bush 8 (balance weight 22) and the motor casing 9. With such positional relation, the main bearing 23, the eccentric bush 8 (balance weight 22), the eccentric shaft 18 and the eccentric bearing 24 can be assembled onto the driving shaft 6 in this order, and assembling can be executed easily from one direction.
According to the present embodiment, because parts assembled onto the driving shaft 6 can be reduced, assembling can be simplified, the length of the driving shaft 6 can be shortened, and therefore the product can be miniaturized also.
It should be further understood by those skilled in the art that although the foregoing description has been made on embodiments of the invention, the invention is not limited thereto and various changes and modifications may be made without departing from the spirit of the invention and the scope of the appended claims.
Number | Date | Country | Kind |
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2013-203005 | Sep 2013 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
5141422 | Ito et al. | Aug 1992 | A |
5165879 | Kondo | Nov 1992 | A |
5366360 | Bookbinder et al. | Nov 1994 | A |
5536152 | Kawahara et al. | Jul 1996 | A |
7455508 | Suefuji | Nov 2008 | B2 |
8096792 | Suefuji et al. | Jan 2012 | B2 |
20090110580 | Suefuji et al. | Apr 2009 | A1 |
Number | Date | Country |
---|---|---|
1059190 | Mar 1992 | CN |
101469704 | Jul 2009 | CN |
103089619 | May 2013 | CN |
2001-123969 | May 2001 | JP |
2002-285979 | Oct 2002 | JP |
2010-043608 | Feb 2010 | JP |
2012-132346 | Jul 2012 | JP |
WO 2013104980 | Jul 2013 | WO |
Entry |
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JP 2001-123969A—(English Translation)—Fujioka et al., Scroll Fluid Machine, Aug. 5, 2001. |
Belgian Search Report (PCT/ISA/210) dated Oct. 29, 2014 with partial English-language translation (four (4) pages). |
Belgian Written Opinion (PCT/ISA/237) dated Oct. 29, 2014 (four (4) pages). |
Korean-language Office Action issued in counterpart Korean Application No. 10-2014-0065659 dated Sep. 14, 2015 with partial English translation (Six (6) pages). |
Chinese Office Action issued in counterpart Chinese Application No. 201410331111.0 dated May 4, 2016 with partial English-language translation (eight (8) pages). |
Number | Date | Country | |
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20150093276 A1 | Apr 2015 | US |