SAE AIR 4989A-2013 DESIGN CONSIDERATIONS FOR ENCLOSED TURBOSHAFT ENGINE TEST CELLS《封闭的涡轮轴发动机试验室的设计考虑》.pdf
《SAE AIR 4989A-2013 DESIGN CONSIDERATIONS FOR ENCLOSED TURBOSHAFT ENGINE TEST CELLS《封闭的涡轮轴发动机试验室的设计考虑》.pdf》由会员分享,可在线阅读,更多相关《SAE AIR 4989A-2013 DESIGN CONSIDERATIONS FOR ENCLOSED TURBOSHAFT ENGINE TEST CELLS《封闭的涡轮轴发动机试验室的设计考虑》.pdf(18页珍藏版)》请在麦多课文档分享上搜索。
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 theref
2、rom, 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 pub
3、lication 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: +1 724-776-4970
4、(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/AIR4989AAEROSPACEINFORMATION REPORT AIR4989 REV. AIssued 1996-12 Reaffirmed 2007-11
5、Revised 2013-09 Superseding AIR4989 Design Considerations for Enclosed Turboshaft Engine Test Cells RATIONALEThis revision is being issued to include suggestions to achieve improved aerodynamic performance and behavior. FOREWORDThe purpose of this SAE Aerospace Information Report (AIR) is to assist
6、those involved in designing new or significantly modified turboshaft engine test cells by documenting considerations compiled from a broad spectrum of industry and government technical specialists in this field. The intent is to provide a general discussion of the major design factors that impact th
7、e capability of the test cell when used to perform accurate repeatable performance tests of an engine and will add to the understanding of the significance of the aerodynamics of the engine test environment and the load absorption devices employed. Turboshaft engines operating in a ground-level test
8、 cell can encounter a number of problems which are directly attributable to the characteristics of the test cell environment. Some of the more important factors which must be considered in the development of test cell designs leading to desired engine operational stability, aerodynamic, acoustic per
9、formance and mechanical integrity are described. Test cell performance goals which typically might be used to define “excellent” cell performance are included. When these call performance goals are achieved, stable and repeatable engine operation can be assured. Since there is no need for an aerodyn
10、amic thrust correction, it is often a misconception that, turboshaft engine correlation only concerns the metrology associated with measurement (including torque/power). This is not true and if the engine inlet and exit pressure/temperature profiles are not optimum for the installation, or comparabl
11、e with the reference datum test facility, there is the possibility of either the engine performance or power turbine re-matching to produce a different orinconsistent performance, with correction factors being applied for unknown reasons. This aspect needs to be considered during the design process.
12、SAE INTERNATIONAL AIR4989A Page 2 of 18 TABLE OF CONTENTS 1. SCOPE 3 1.1 Purpose . 3 2. REFERENCES 3 2.1 Applicable Documents 3 2.2 Symbols and Abbreviations 4 2.2.1 Parameters 4 2.2.2 Abbreviations 4 2.2.3 Subscripts . 4 3. TECHNICAL BACKGROUND. 5 4. TEST CELL SYSTEM DESIGN CONSIDERATIONS . 5 4.1 I
13、nlet Plenum 6 4.2 Test Chamber . 10 4.3 Augmentor/Diffuser . 10 4.4 Load Absorption Devices 11 4.4.1 Air Dynamometers (See Figure 1) 11 4.4.2 Water Brakes (See Figure 2) 11 4.4.3 Electrical Load Banks (See Figure 3) . 11 4.4.4 Eddy Current Dynamometers . 12 4.5 Exhaust Stack . 12 4.6 Air Dynamometer
14、 Exhaust System . 13 5. FACTORS FOR EVALUATING TEST CELL PERFORMANCE . 13 5.1 Front Cell Velocity Distortion . 13 5.2 Front Cell Temperature Distortion 13 5.3 Front Cell Airflow . 14 5.4 Bellmouth Total Pressure Distortion . 14 5.5 Bellmouth/Engine Inlet Temperature Distortion 15 5.6 Cell Bypass Rat
15、io 15 5.7 Cell Depression . 15 6. GENERAL TEST CELL REQUIREMENTS AND GOALS 16 7. CONCLUSIONS 17 8. NOTES 17 APPENDIX A AIRFLOW EQUATIONS . 18FIGURE 1 AIR DYNAMOMETER EQUIPPED TEST CELL . 7 FIGURE 2 WATER BRAKE EQUIPPED TEST CELL 8 FIGURE 3 ELECTRIC DYNAMOMETER EQUIPPED TEST CELL . 9 SAE INTERNATIONA
16、L AIR4989A Page 3 of 18 1. SCOPE This SAE Aerospace Information Report (AIR) developed by a broad cross section of personnel from the aviation industry and government agencies is offered to provide state-of-the-art information for the use of individuals and organizations designing new or upgraded tu
17、rboshaft engine test facilities. 1.1 Purpose a. To provide guidelines for the design of state-of-the-art ground-level enclosed test facilities for turboshaft engine testing.b. To address the major test cell engine load absorption device physical, aerodynamic and acoustic characteristics which can in
18、fluence operation, performance, accuracy and stability of an engine under test. c. To consider acoustic and environmental effects and methods to control them. 2. REFERENCES 2.1 Applicable Documents The following publications form a part of this document to the extent specified herein. The latest iss
19、ue of SAE publications shall apply. The applicable issue of other publications shall be the issue in effect on the date of the purchase order. In the event of conflict between the text of this document and references cited herein, the text of this document takes precedence. Nothing in this document,
20、 however, supersedes applicable laws and regulations unless a specific exemption has been obtained. 2.1.1 Ashwood, P.F., et al.: “Operation and Performance Measurements on Engines in Sea Level Test Facilities”, AGARD Lecture Series Number 132(AGARD-LS-132), Advisory Group for Aerospace Research and
21、Development, North Atlantic Treaty Organization, Neuilly Sur Seine, France, 1984. 2.1.2 NAVAL AIR WARFARE CENTER AIRCRAFT DIVISION, PATUXENT RIVER, MARYLAND, Support Systems Department, Technical Report SY50-91-005, March 1991, “TECHEVAL of A/F37T-16(V)1 Test Facility”, MCAS Tustin, California. 2.1.
22、3 Karamanlis, A.I., Freuler, R.J., Lee, J.D., Hoelmer, W., and Bellomy, D.C.: “A Universal Turboshaft Engine Test Cell - Design Considerations and Model Test Results”, AIAA Paper Number 85-0382, Paper presented to the AIAA 23rdAerospace Sciences Meeting, Reno, Nevada, January 1985. 2.1.4 Joint Repor
23、t to Congress on the Environmental Protection Agency-Department of Transportation Study of Nitrogen Oxide Emissions and Their Control from Uninstalled Aircraft Engines on Enclosed Test Cells, dated September 1994. 2.1.5 Support Equipment Evaluation/Verification Technical Report 48L-95-027, 19 Oct. 1
24、995, Techeval of Multi-Cabability Turboshaft/Prop Engine Test Facility Complex, A/F37T-16(V) 1, 2 and A/F37T-19(V) 2, 3. 2.1.6 NAVAL AIR WARFARE CENTER AIRCRAFT DIVISION, PATUXENT RIVER, MARYLAND, Support Systems Department Technical Report, Letter Report KS90037SY, October, 1990, “Development Tests
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