A New Method of Calculating the Attainable Life and Reliability in Aerospace Bearings
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The aviation industry made significant progress improving reliability, efficiency and performance throughout the last decades. Especially aircraft engines and helicopter transmission systems contributed significantly to these improvements. The kerosene consumption decreased by 70 % and the CO2 emissions due to air transport decreased by 30 % per passenger kilometer within the last 20 years. Simultaneously, the flight safety was increased with aircraft engine in-flight-shut-downs as low as 1 ppm and „unscheduled engine removals” as low as 4 ppm. Flight safety is equal to the reliability of the systems in service. Failure of these systems directly leads to exposure of human life. Among the most critical aviation systems are aircraft engines including the rolling element bearings which support the rotors. A serious damage to the aircraft engine main shaft bearings during flight requires shout-down of the engine to avoid a further damage escalation subsequently leading to engine fire. Today, it is a requirement for aircraft to operate with one engine shut down. However, each in-flight-engine-shut-down typically is connected with flight diversion or abort and immediate landing. Inflight-shut-downs translate into increased risk for passengers and crew and substantial on cost. Therefore, rolling element bearings for aircraft engines are developed – similar to other aircraft engine components – targeting a reliability of nearly 100 % over an operation time of more than 10 000 hours prior to overhaul. To achieve this requirement despite the extreme operating conditions such as high speed and temperatures occurring in gas turbines, special high-performance materials are used for the rolling bearing components which are partially integrated in surrounding engine parts like shafts and housings. These special conditions - deviating from conventional industrial rolling element bearing applications - are currently not sufficiently considered in the standardized method of calculating the bearing life per ISO 281. A new method of calculating the attainable life of rolling elements bearing in aerospace applications is presented. This method considers the special aerospace conditions and materials and thus enables a higher reliability of the theoretical analysis and life prediction.
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References
-
Lundgren, G. and Palmgren, A., “Dynamic Capacity of Rolling Bearings,” Acta Polytechnica: Mechanical Engineering Series, 1, 1947.
Google Scholar
1
-
ISO R281, “Rolling Bearings – Methods of Evaluating Dynamic Load Ratings,” 1977.
Google Scholar
2
-
Brändlein, J., Eschmann, P., Hasbargen, L. and Weigand, K. „Die Wälzlagerpraxis,“ Vereinigte Fachverlage GmbH, Mainz, 2002.
Google Scholar
3
-
Tallian, T., “Weibull Distribution of Rolling Contact Fatigue Life and Deviations Therefrom,” ASLE Transact. 5 No. 1 1962.
Google Scholar
4
-
ISO 281:2007, “Rolling Bearings – Dynamic Load Ratings and Rating Life,” 2007.
Google Scholar
5
-
ISO/TR 1281-1:2008, “Rolling Bearings – Explanatory Notes on ISO 281,” 2008.
Google Scholar
6
-
FAG Kugelfischer, “A Practical Method of Calculating the Attainable Life in Aerospace Bearing Applications,” FAG Publ. No. FL40134EA, 1989.
Google Scholar
7
-
Ebert, FJ. and Poulin, P., “The Effect of Cleanliness on the Attainable Bearing Life in Aerospace Applications,” Tribology Transactions, vol. 38, 1995.
Google Scholar
8
-
Streit, E., Trojahn, W., Chin, H.A., and Ehlert, D., “Progress in Bearing Performance of Advanced Nitrogen Alloyed Stainless Steel Cronidur 30,“ Mat.-wiss. u. Werkstofftech., vol. 30, pp. 605-611, 1999.
Google Scholar
9
-
Ebert, F.-J., “Performance of Silicon Nitride (Si3N4) Components in Aerospace Bearing Applications,” The American Society of Mechanical Engineers, Proceedings of the Gas Turbine and Aeroengine Congress and Exposition, June 11–14, Brussels, 90-GT-166, 1990.
Google Scholar
10
-
Gloeckner, P., Martin, M., and Flouros, M., “Comparison of Power Losses and Temperatures between an All-Steel and a Direct Outer Ring Cooled, Hybrid 133 mm Bore Ball Bearing at Very High Speeds,” Tribology Transactions, 60, pp. 1148–1158, 2017.
Google Scholar
11
-
Streit, E., Brock, J. and Poulin, P., “Performance Evaluation of "Duplex Hardened" Bearings for Advanced Turbine Engine Applications,” Journal of ASTM International, vol. 3, Nr. 4, West Conshohocken, 2006.
Google Scholar
12
-
ISO/TS 16281-1:2008, “Rolling Bearings – Methods for calculating the modified reference rating life for universally loaded bearings,” 2008.
Google Scholar
13
-
Loroesch H.-K., „Lebensdauer und Dauerfestigkeit von Wälzlagern,“ VDI-Report, 549, pp. 109-127, 1985.
Google Scholar
14
-
Loroesch H.-K., “The life of the rolling bearing under varying loads and environmental conditions,” Schweinfurt, Germany: FAG Kugelfischer, FAG Publication No. EA1981, vol. 1, 17 – 23, 1981.
Google Scholar
15
-
Loroesch, H.-K., „Einfluss von festen Verunreinigungen auf die Lebensdauer von Waelzlagern,“ Antriebstechnik, 23 (10), pp. 63-69, 1984.
Google Scholar
16
-
Loroesch, H.-K., “Effects of unfavourable environmental conditions on the service life of jet engine and helicopter bearings,” 60th AGARD meeting. San Antonio, Texas, 394, 1985.
Google Scholar
17
-
Hamrock, BJ. and Dowson, D., “Isothermal Elastohydrodynamic Lubrication of Point Contacts,” ASME J. Lubr. Technol. 99, 1977.
Google Scholar
18
-
Dawson, D. and Higginson, G.R., “The Isothermal Lubrication of Cylinders,” Proceedings of Institution of Mechanical Engineers, ASME Transaction 8, 1968.
Google Scholar
19
-
Gloeckner, P., Sebald, W. and Bakolas, V., “An Approach to Understanding Micro Spalling in High Speed Ball Bearings Using a Thermal Elastohydrodynamic Model,” Tribology Transactions, 52, 534-543, 2009.
Google Scholar
20
-
Coe, H. H., and Zaretzky, E. V., “Effect of Interference Fit on Roller Bearing Fatigue Life,” NASA Technical Memorandum 87165, 1986.
Google Scholar
21
-
Broszeit, E., and Zwirlein, O., “Internal Stresses and Their Influence on Material Stresses in Hertzian Contacts - Calculation With Different Stress Hypotheses,” Journal of Tribology, vol. 108, 1986.
Google Scholar
22
-
Jones, A. B.., “A General Theory for Elastically Constrained Ball and Radial Roller Bearings under Arbitrary Load and Speed Conditions,” ASME J. Basic Eng. 309 – 320, 1960.
Google Scholar
23