The present invention relates to retainers for angular ball bearings utilized in screw compressors which work with compressor oil, freezer oil, ammonia refrigerant, etc.
As shown in
The retainer 3 of a rolling bearing has pocket clearances “a” between itself and the rolling elements 4, and guide clearances “b” between itself and the track rings, and is designed so that it is able to move freely in a three-dimensional fashion in the bearing within a range allowed by these clearances.
The retainer 3 of a rolling bearing can be classified into one of three guide types depending on how the guide clearances are provided between itself and shoulders of the track rings 1, 2. Rolling element guide type is shown in
In small bearings, the retainer 3 is designed so that neither its inner diameter side nor outer diameter side will make contact with the inner ring 1 or the outer ring 2. Thus, the retainer 3 is supplied with rotating drive and guide only by the rolling elements 4. This type is called rolling element guide retainer (
In large bearings, the retainer 3 is designed so that an outer diameter surface thereof makes contact with shoulders of the outer ring 2, or an inner diameter surface of the retainer 3 makes contact with shoulders of the inner ring 1; therefore the retainer 3 is rotated. The former retainer 3 is called outer ring guide type (
Now, assume that a bearing has a rotating inner ring and a static outer ring as usual bearings. In the case where the bearing has a rolling element guide retainer 3, as shown in
In an outer ring guide retainer, the retainer also rotates as shown in
On the contrary, in an inner ring guide retainer 3, as shown in
Conventionally, Patent Literature 1 discloses a rolling bearing which includes a retainer 3 that is capable of providing a sufficient guide clearance “b” and arranging rolling elements at a uniform interval within the bearing upon radial movement of the retainer 3 while the bearing is rotating.
Patent Literature 1: JP-A-2000-346079
In an angular ball bearing for a screw compressor which uses ammonia refrigerant, a retainer 3 is usually designed to make contact with either rolling elements 4 (balls) or a track ring for guided rotation.
The angular ball bearing for screw compressor is lubricated with the ammonia refrigerant, and the retainer 3 is made of a ductile iron (spherical graphite cast iron).
In contrast, typical material for a retainer 3 is a copper material such as High-Strength Cast Brass 1 (CAC301), or a steel material such as Carbon Steel for Machine & Structural Use (S30C). In comparison with these typical materials, ductile iron (spherical graphite cast iron) wears more quickly.
This poses a potential problem for a retainer 3 which is made of a ductile iron (spherical graphite cast iron) and is of a type in which the retainer 3 is guided by an inner ring 1, that is, even with a lubricant supply system for supplying lubricant to the guide surface, centrifugal forces at the time of rotation will force the lubricant to move toward the outer ring, making the lubricant not supplied enough onto the guide surface of the retainer 3, leading to wear of the retainer 3.
Particularly, in conventional retainers 3 in the angular ball bearings for screw compressors, a ratio of the pocket clearance “a” to the guide clearance “b” is not smaller than 100 percent, i.e., pocket clearance “a” >guide clearance “b”, so that as shown in
As a result, in conventional angular ball bearings for screw compressors, the entire weight of the retainer 3 and centrifugal forces at the time of rotation all act onto the guide surface which is in contact with the inner ring 1. This increases a surface pressure in the guide area (contact area), leading to wear of the retainer 3 in case there is not enough supply of lubricant.
It is therefore an object of the present invention to provide a retainer 3 which can be made of a quick-wearing material such as ductile iron (spherical graphite cast iron) like the retainer 3 used in an angular ball bearing for a screw compressor yet can prevent premature wearing of the guide surface.
In order to achieve the object, the present invention provides a retainer 3 of an inner ring guide type for a rolling bearing, which makes contact with and guided by an inner ring 1 during operation, wherein the pocket clearance “a” has a ratio to the guide clearance “b” in a range from 75% through 100%.
In other words, as shown in
In order for the retainer 3 to be guided by the inner ring 1 whereas the pockets and the rolling elements 4 make contact with each other, the ratio of the pocket clearance to the guide clearance with respect to the inner ring 1 must be from 50% through 100%. According to the present invention, the ratio of the pocket clearance “a” to the guide clearance “b” with respect to the inner ring 1 is selected from the range of 75% through 100%. This brings the retainer 3 into increased contact with the rolling elements 4 while the retainer is in contact with the inner ring 1, whereby a force which would otherwise act only onto the retainer 3 is now dispersed to contact surfaces between the pockets and the rolling elements 4, and the surface pressure between the retainer 3 and the inner ring surface is decreased.
According to the present invention, a force which would otherwise act only onto the retainer 3 is dispersed to contact surfaces between the pockets and the rolling elements 4, making it possible to decrease surface pressure between the retainer 3 and the inner ring surface and thereby prevent wear in the guide surface of the retainer 3.
Therefore, according to the present invention, the retainer 3 may be made of such a material as ductile iron (spherical graphite cast iron) which can be worn easily.
Hereinafter, embodiments of the present invention will be described based on the attached drawings.
In this drawing, a reference symbol 1 indicates an inner ring, a reference symbol 2 indicates an outer ring, a reference symbol 3 indicates a retainer, a reference symbol 4 indicates a ball (rolling element), a reference symbol 5 indicates a shaft, a reference symbol C indicates a PCD of the rolling element 4, and a reference symbol O indicates a center of rotation of the bearing (shaft). It should be noted here that the retainer 3 in this drawing is shown as a sectional view. The retainer 3 is guided by an outer circumferential surface of the inner ring 2, and has a ratio of pocket clearance to guide clearance with respect to the inner ring 1 being in a range from 75% through 100%.
With the ratio of the pocket clearance to the guide clearance with respect to the inner ring 1 being selected within the range of 75% through 100%, the retainer 3 makes contact with the inner ring 1 during operation and further, the retainer 3 makes contact with the rolling elements 1 at contact points A, so that a force which would otherwise act only onto the retainer 3 is now dispersed to contact points A between the pockets of the retainer 3 and the rolling elements 4. This decreases surface pressure between the retainer 3 and the inner ring surface, and thereby prevents wear in the guide surface of the retainer 3.
In the present embodiment, the retainer 3 is made of a ductile iron (spherical graphite cast iron).
Number | Date | Country | Kind |
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2013-092124 | Apr 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2014/061157 | 4/21/2014 | WO | 00 |