Before any embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the drawings.
Referring now to the drawings (
The axle A at each of its ends has a journal 2 which leads to a somewhat larger dust guard segment 4 at a fillet 6 on the journal 2. Inwardly from the dust guard segment 4 the axle A has an even larger wheel seat to which the wheel W is fitted. The journal 2 extends out to an end face 8 out of which threaded holes open. The journal 2 for the most part and the dust guard segment 4 are cylindrical and concentric, with their common center being the axis X. The fillet 6 has a contoured surface that is concave.
The bearing B fits around the journal 2 (
The bearing B includes (
Actually, the thrust loads transferred through the inboard cone 22 and rollers 24 pass to the journal 2—and axle A—through the inboard wear ring 14 and the backing ring 10 which lie between the back face 34 of the inboard cone 22 and the fillet 6 on the journal 2. The thrust loads transferred through the outboard cone 22 and rollers 24 pass to the journal 2 through the outboard wear ring 14, the end cap 12 and the cap screws 16. The end cap 12 fits over the end of the journal 2 and against the outboard wear ring 14 which in turn is against the back face 34 of the outboard cone 22. The cap screws 16 clamp the two cones 22 and the spacer 26 and the wear rings 14 tightly between the backing ring 10 and the end cap 12 and urge the backing ring 10 firmly against the fillet 6. Radial loads transfer through the bearing B and through the journal 2 and dust guard segment 4 to the nearby wheel W, and owing to the offset, create a moment.
Turning now to the backing ring 10, it has (
As the axle A revolves, it will experience some flexure, inasmuch as the bearing B through which weight is transferred to the axle A is offset from the nearby wheel W that transfers the weight to the rail over which the wheel W rolls. The flexure to a large measure is concentrated in the region of the journal 2 around which the inboard wear ring 14 and backing ring 10 are located. The inboard wear ring 14 sees some motion on the cylindrical surface of the journal 2, whereas the backing ring 10 experiences motion on the fillet 6, its contoured inner surface 36 slipping minutely back and forth on the concave surface of the fillet 6. To minimize fretting corrosion along the fillet 6 and journal 2, a coating 44 designed to lubricate and inhibit corrosion covers the fillet 6 and the nearby region of the journal 2.
The coating 44 derives from an inhibitor ring 50 (
Thus, the bearing B, wear rings 14, and backing ring 10 form an assembly and are installed over the journal 2 of the axle A as a package. More specifically, the backing ring 10 is aligned with the end of the journal 2, over which it is advanced followed by the inboard wear ring 14 that is captured in the backing ring 10. Due to the interference fits with the journal 2, a force is applied to the outboard wear ring 14 to press the inboard wear ring 14, the two cones 22 along with the spacer 26, and the outboard wear ring 14 over the cylindrical region of the journal 2. Continued advancement brings either the lip 38 into contact with the dust guard segment 4 or the backing ring 10 into contact with the fillet 6 of the journal 2, depending on, whether or not a lip 38 is small enough to interfere with the dust guard segment 4. In any event, the backing ring 10 no longer advances, but not the wear rings 14 and the cones 22 of the bearing B behind it. They continue to advance, driving the inboard wear ring 14 farther into the counterbore 44 of the backing ring 10. The inboard wear ring 14 advances until its end bottoms out against the shoulder 42 at the end of the counterbore 40. Ultimately, the wear rings 14 and bearing B assume their final positions over the journal 2. During the increment of advance that forces the inboard wear ring 14 farther into the counterbore 40 of the backing ring 10, the inhibitor ring 50 collapses and the corrosion inhibitor of which it is formed flows or exudes onto the surface of the fillet 6 and the nearby cylindrical surface of the journal 2, that is to say, the surface over which the inboard wear ring 14 fits. The inhibitor covers those surfaces and works under both the backing ring 10 and the inboard wear ring 14 to provide the coating 44 that lubricates and inhibits fretting corrosion.
The inhibitor ring 50 may be formed from a solid or semi-solid material which will flow and deform under pressure, such as a wax or dense grease having the desired corrosion inhibiting, lubricating, and rust preventative properties. Alternatively, the ring 50 may be formed as a tubular O-ring containing a liquid or viscous corrosion inhibitor. The O-ring has walls preferably formed from a polymer that is no more than a few mills thick. Moreover, the polymer is compatible with the corrosion inhibitor in the sense that the corrosion inhibitor will not react with or otherwise cause deterioration of the polymer. Irrespective of its composition, the inhibitor ring 50 is considerably softer than the steels from which the axle A, the wear rings 14, and the backing 10 are formed, so that when compressed between any two of those components, its corrosion inhibitor will exude onto the fillet 6.
An alternative backing ring 60 (
Initially, that is to say prior to the installation of the bearing B, the wear rings 14, and the backing ring 60, over the journal 2, the backing ring 60 has an inhibitor ring 70 located within its axially directed lip 64. The ring 70 conforms to the inside surface of the lip 64 and may also conform to the adjacent region of the contoured inner surface 62. The diameter of dust guard segment 4 should exceed the inside diameter of the inhibitor ring 70. Anyone of the materials that are suitable for the inhibitor ring 50 may likewise be used for the inhibitor ring 70.
The backing ring 60 and then the bearing B with the wear rings 14 fitted into its seals 28 are installed over the journal 2 in that order, the inboard wear ring 14 having been pressed into the counterbore 66 of the backing ring 60 (
The end cap 12 retains the bearing B, the wear rings 14, and the backing ring 10 on the journal with the backing ring 60 seated firmly against the fillet 6. The coating 68 inhibits corrosion, including fretting corrosion, between the backing ring 10 and the fillet 6 and between the inboard wear ring 14 and the cylindrical surface of the journal 2.
The backing ring 60 with a slight modification may be installed over a shortened and stiffened journal fitted with a compact bearing of the type disclosed in U.S. Pat. No. 5,462,367. That modification would simply allow the end of the backing ring to abut the back face of the inboard cone. Moreover, the backing ring 10 or 60 need not be united with the inboard wear ring 14 prior to installation over the journal 2, but may be installed over the journal 2 ahead of the bearing B and wear rings 14.
This application derives and claims priority from U.S. provisional application 60/849,892, filed Oct. 6, 2006, and from U.S. provisional application 60/915,156, filed May 1, 2007, both of which are incorporated herein by reference.
Number | Date | Country | |
---|---|---|---|
60849892 | Oct 2006 | US | |
60915156 | May 2007 | US |