SAE AIR 5871-2008 Prognostics for Gas Turbine Engines《燃气涡轮发动机用预兆》.pdf
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1、_ SAE Technical Standards Board Rules provide that: “This report is published by SAE to advance the state of technical and engineering sciences. The use of this report is entirely voluntary, and its applicability and suitability for any particular use, including any patent infringement arising there
2、from, is the sole responsibility of the user.” SAE reviews each technical report at least every five years at which time it may be revised, reaffirmed, stabilized, or cancelled. SAE invites your written comments and suggestions. Copyright 2013 SAE International All rights reserved. No part of this p
3、ublication may be reproduced, stored in a retrieval system or transmitted, in any form or by any means, electronic, mechanical, photocopying, recording, or otherwise, without the prior written permission of SAE. TO PLACE A DOCUMENT ORDER: Tel: 877-606-7323 (inside USA and Canada) Tel: +1 724-776-497
4、0 (outside USA) Fax: 724-776-0790 Email: CustomerServicesae.org SAE WEB ADDRESS: http:/www.sae.orgSAE values your input. To provide feedback on this Technical Report, please visit http:/www.sae.org/technical/standards/AIR5871AEROSPACEINFORMATION REPORT AIR5871Issued 2008-06 Reaffirmed 2013-09 Progno
5、stics for Gas Turbine Engines RATIONALE AIR5871 has been reaffirmed to comply with the SAE five-year review policy. FOREWORD Gas turbine engine prognostic technologies that are capable of predicting critical component failures or performance degradation rates are expected to improve safety and avail
6、ability, reduce life cycle costs, and optimize the timing of scheduled maintenance intervals. For many critical engine components and subsystems, prognostic approaches are currently being developed that utilize state-of-the-art modeling and analysis technologies. This document introduces and provide
7、s examples of leading prognostic modeling approaches that integrate state-of-the-art analytical and empirical models with component testing and inspection results. Specific examples related to failures of engine fan blades and engine performance degradation are described, along with a representative
8、 range of different technical approaches. The process of prognostic model calibration and verification is also discussed. TABLE OF CONTENTS 1. SCOPE AND PURPOSE 3 1.1 Purpose. 3 1.2 Field of Application 3 2. REFERENCES 3 2.1 Applicable References 3 2.2 Definition . 4 2.3 Potential Benefits of Progno
9、stics 4 2.4 Needed Terminology. 4 2.5 Acronyms 5 2.6 Prognostic Requirements 5 3. EXAMPLE PROGNOSTIC STRATEGIES 6 3.1 Analytical Prediction 6 3.2 Measured and Trend-Based Predictions of Wear and Degradation. 6 4. GENERIC PROGNOSTIC TECHNOLOGIES. 6 4.1 Experience-Based Prognostics. 7 4.2 Evolutionary
10、 Prognostics 7 4.3 Feature Progression and AI-Based Prognostics 8 4.4 State Estimator Prognostics 9 4.5 Physics-Based Prognostics 10 5. PROGNOSTIC IMPLEMENTATIONS 11 5.1 Example: Gas Turbine Engine Blade Prognostics 11 5.2 Example: Gas Turbine Performance Prognostics 15 5.3 On-going Prognostics R&D
11、Efforts . 18 6. NOTES 19 FIGURE 1 EXPERIENCE-BASED APPROACH 7 FIGURE 2 EVOLUTIONARY PROGNOSTICS 8 FIGURE 3 FEATURE/AI-BASED PROGNOSTICS 9 FIGURE 4 STATE ESTIMATOR PROGNOSTICS. 10 FIGURE 5 PHYSICS-BASED PROGNOSTICS . 11 FIGURE 6 MISSION ENVIRONMENT AND DAMAGE ACCUMULATION PROCESS . 15 FIGURE 7 EFFECT
12、S OF WASHING ON EFFICIENCY AND OVERHAUL. 16 FIGURE 8 PROGNOSTIC MODEL VISUALIZATION 17 FIGURE 9 PROGNOSTIC MODEL VISUALIZATION 18 SAE INTERNATIONAL AIR5871 Page 2 of 19_ 1. SCOPE AND PURPOSE 1.1 Purpose This document applies to prognostics of gas turbine engines and its related auxiliary and subsyst
13、ems. Its purpose is to define the meaning of prognostics with regard to gas turbine engines and related subsystems, explain its potential and limitations, and to provide guidelines for potential approaches for use in existing condition monitoring environments. It also includes some examples. 1.2 Fie
14、ld of Application This document seeks to meet the increasing interest in gas turbine engine prognostics. Specifically, the document tries to provide a timely guideline for applying prognostic technologies to enhance the capability of current monitoring and diagnostic systems. Some examples are provi
15、ded that are intended to illustrate different approaches and methodologies. 2. REFERENCES 2.1 Applicable References Bannantine, J., et al., Fundamentals of Metals Fatigue Analysis, Prentice Hall, 1980. Boyce, Meherwan, Gas Turbine Engineering Handbook, Gulf Publishing Company, 1995. Bowerman, Bruce
16、L. and OConnel, Richard T., Forecasting and Time Series, Duxbury Press, 1993. Byington, C. S. et al., “Prognostic Enhancements to Diagnostic Systems for Improved Condition-Based Maintenance”, IEEE 0-7803-7231-X/01, 2002. Engel, S. J., Gilmartin, B. J., Bongort, K., Hess, A., “Prognostics, The Real I
17、ssues Involved with Predicting Life Remaining”, IEEE 0-7803-5846-5/00, 2000. Halford, G. “Cumulative Fatigue Damage Modeling Crack Nucleation and Early Growth” First International Conference on Fatigue Damage, September 22-27, 1996. Hartman, W., and Hess, A., “A USN Strategy for Mechanical and Propu
18、lsion System Prognostics with Demonstration Results” AHS Forum 58, Quebec, Canada, June 11-13, 2002. Kurtz, Rainer, and Brun, Klaus, “Degradation in Gas Turbine Systems” Proceedings of the ASME TURBO EXPO 2000, May 8-11, 2000, Munich Germany. Ioannides, and Harris, “A New Fatigue Life Model for Roll
19、ing Bearings”, Journal of Tribology, Vol. 107, pp. 367-378, 1985. Lundberg, and Palmgren, “Dynamic Capacity of Rolling Bearings”, Acta Polytechnica Mechanical Engineering Series 1, Royal Swedish Academy of Engineering Sciences, No. 3, 7, 1947. Peltier, R. V., Swanekamp, R. C., “LM2500 Recoverable an
20、d Non-Recoverable Power Loss” ASME Cogen-Turbo Power Conference, Vienna, Austria, August 1995. Roemer, M. J. and Kacprzynski, G. J., “Advanced Diagnostics and Prognostics for Gas Turbine Engine Risk Assessment,” Paper 2000-GT-30, ASME and IGTI Turbo Expo 2000, Munich, Germany, May 2000. Roemer, M. J
21、., and Ghiocel, D. M., “A Probabilistic Approach to the Diagnosis of Gas Turbine Engine Faults” Paper 99-GT-363, ASME and IGTI Turbo Expo 1999, Indianapolis, Indiana, June 1999. SAE INTERNATIONAL AIR5871 Page 3 of 19_ Roemer, M. J. and Kacprzynski, G. J., “Development of Diagnostic and Prognostic Te
22、chnologies for Aerospace Health Management Applications,” IEEE Aerospace Conference, Big Sky, Montana, March 2001. SAE Aerospace Technical Report Style Manual, Technical Standards Division, SAE, April, 1994. Socie, D., “A Procedure for Estimating the Total Fatigue Life of Notched and Cracked Members
23、”, Engineering Fracture Mechanics Vol. 11 pp. 851-859, Pergamon Press Ltd., 1979. Sines, and Ohgi, “Fatigue Criteria Under Combined Stresses or Strains”, ASME Journal of Eng. Materials and Tech., Vol. 103, pp. 82-90, 1981. Yu, and Harris, “A New Stress-Based Fatigue Life Model for Ball Bearings”, Tr
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