None apply.
1. Field of the Invention
The present invention relates to a high speed bearing that does not require a lubricant to be circulated through the bearing, and that includes cooling passages within the races and/or around the races.
2. Description of the Related Art Including Information Disclosed Under 37 CFR 1.97 and 1.98
The present invention is a high speed oil-less bearing for use in a high temperature environment. The intended use for the bearing of the present invention is in a small gas turbine engine used in a cruise missile.
The roller balls 16 are made of ceramic silicon nitride to reduce the centrifugal loads due to their lower density compared to steel. Roller balls of this material have a high hardness which results in excellent wear resistance and longer life for the bearing. The outer race 14 and inner race 12 are made of materials such as 440C which are tempered at 600 degrees F. and above, or Stellite 6B and MP159 which allows for a long shelf life after storage in a humid environment without rusting.
The bearing of the present invention uses no cage to retain the roller balls. Eliminating the cages reduces the friction, reduces heat generation, and increases bearing life. The bearing internal clearance is in the range of 0.0005 inches to 0.0012 inches. The cooling passages in the races are arranged to cool both races to about the same temperature. If the inner race reaches a temperature much higher than the temperature of the outer race, the distance between contact points for the roller balls on the races will decrease, and the stress will increase, leading to faster wear. The pre-swirl cooling passages 22 in the outer race are angled with respect to the rotational axis of the bearing from zero degrees to about 30 degrees, and preferably in the range from 10-20 degrees.
The concept here is to pre-swirl the cooling air to a tangential velocity approximately equal to the tangential velocity of the bearing's inner race. This ensures that the inner race receives a lower relative temperature for cooling than the outer ring, providing effective clearance control. Additional cooling can be achieved by vortexing to the inner ring passages 18 through the radial passages 20. An entrance chamber 23 is formed at the beginning of the inner race radial passages 20. Leakage of cooling air can be reduced by controlling the gap clearances (25a, 25b) to within a range of 0.001 inches to 0.0002 inches.
In operation, the bearing is mounted in an engine in which airflow 8 flows toward the bearing 10 as seen in
The number of passageways and size of the passageways can vary depending on the cooling requirements of the bearing. Larger passageways will allow for greater volume of cooling fluid. So would an increase the number of passageways. However, using larger size or greater number of passageways could decrease the rigidity of the races.
The bearing life is increased by providing for a special coating on the races. A coating of Tungsten Disulfide or Titanium Sulfide is applied which reduces the coefficient of friction compared with oil, and also reduces heat generation in the bearing. This coating also acts as a self-lubricant for the bearing rolling contact surface. Grease with a grease retainer can also be applied to the bearing to add additional lubrication. Suitable commercially available grease is DSF-5000 available from Schaefer Mfg. Co., of St. Louis, Mo. 63104. Also, an oil/fuel mist or VPL can also be used for lubricating the bearing.
A second embodiment of the bearing of the present invention is shown in
The present invention claims the benefit to U.S. Provisional Application No. 60/582,158 filed on Jun. 23, 2004 and entitled “Oil-less bearing”.
Number | Name | Date | Kind |
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2854296 | Eberle et al. | Sep 1958 | A |
5192139 | Hiramoto et al. | Mar 1993 | A |
5749660 | Dusserre-Telmon et al. | May 1998 | A |
5915843 | Mattera | Jun 1999 | A |
6117063 | Szepessy et al. | Sep 2000 | A |
Number | Date | Country | |
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20050286824 A1 | Dec 2005 | US |
Number | Date | Country | |
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60582158 | Jun 2004 | US |