SAE J 2263-2008 Road Load Measurement Using Onboard Anemometry and Coastdown Techniques《使用车载风力测定和减速技术测量道路载荷》.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 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 reaffirmed, revised, or cancelled. SAE invites your written comments and suggestions. Copyright 2008 SAE International All rights reserved. No part of this publication ma
3、y 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: 724-776-4970 (outside USA)
4、Fax: 724-776-0790 Email: CustomerServicesae.org SAE WEB ADDRESS: http:/www.sae.orgJ2263 DEC2008 SURFACEVEHICLERECOMMENDEDPRACTICEIssued 1996-10Revised 2008-12 Superseding J2263 OCT1996 Road Load Measurement Using Onboard Anemometry and Coastdown Techniques RATIONALEThis revision updates units and in
5、troduces minor procedural refinements and formatting. 1. SCOPE This SAE Recommended Practice establishes a procedure for determination of vehicle road load force for speeds between 115 and 15 km/h (71.5 and 9.3 mi/h). It employs the coastdown method and applies to vehicles designed for on-road opera
6、tion. The final result is a model of road load force (as a function of speed) during operation on a dry, level road under reference conditions of 20 C (68 F), 98.21 kPa (29.00 in-Hg), no wind, no precipitation, and the transmission in neutral.1.1 Background This document supplements SAE J1263 FEB96.
7、 SAE J1263 remains an alternative method for evaluating vehicle road load force during low wind conditions. This procedure incorporates recent advances in test equipment and data analysis; it defines vehicle road load force over an extended speed interval. Major changes are inclusion of real time an
8、emometry to measure and compensate for wind conditions directly in front of the vehicle and use of a three term equation to model road force over a 115 to 15 km/h (71.5 to 9.3 mi/h) speed range. (The previous procedure relied on average wind conditions measured at distances up to several kilometers
9、from the vehicle. Also, road load force was modeled by a two term equation and was, typically, simulated on a hydrokinetic dynamometer capable of being adjusted to reproduce this force at only one speed; performance at other speeds was a function of dynamometer characteristics.) In addition, this pr
10、ocedure specifically discusses and authorizes “split” coastdown runs which must be used when the test track is too short to allow a complete coastdown run due to the vehicles performance, weight, or road load force characteristics. 2. REFERENCES 2.1 Applicable Publication The following publication f
11、orms a part of this specification to the extent specified herein. Unless otherwise indicated, the latest issue of SAE publications shall apply. SAE J2263 Revised DEC2008 - 2 -2.1.1 SAE Publication Available from SAE International, 400 Commonwealth Drive, Warrendale, PA 15096-0001, Tel: 877-606-7323
12、(inside USA and Canada) or 724-776-4970 (outside USA), www.sae.org.SAE J1263 Road Load Measurement and Dynamometer Simulation Using Coastdown Techniques 2.2 Related Publications The following publications are provided for information purposes only and are not a required part of this document. 2.2.1
13、SAE Publications Available from SAE International, 400 Commonwealth Drive, Warrendale, PA 15096-0001, Tel: 877-606-7323 (inside USA and Canada) or 724-776-4970 (outside USA), www.sae.org.SAE Paper 720099 The Determination of Vehicle Drag Contribution from Coast-Down Test, R. A. White and H. H. Korst
14、 SAE Paper 760106 Test Procedures for the Evaluation of Aerodynamic Drag on Full-Scale Vehicles in Windy Environments, W. H. Walston, F. T. Buckley, Jr., and C. H. Marks SAE Paper 760153 Tire Rolling Resistance Measurements from Coast-Down Tests, B. Dayman, Jr. SAE Paper 760850 Analysis of Coast-Dow
15、n Data to Access Aerodynamic Drag Reduction on Full-Scale Tractor-Trailer Trucks in Windy Environments, F. T. Buckley, Jr., C. H. Marks, W. H. Walston, Jr. SAE Paper 770844 Prediction of Dynamometer Power Absorption to Simulate Light Duty Truck Road Load, G. D. ThompsonSAE Paper 780255 Tire Rolling
16、ResistanceA Speed Dependent Contribution, J. R. Smith, J. C. Tracy, and D. S. PotterSAE Paper 780334 The Analytical Basis of Automobile Coastdown Testing, T. P. Yasin SAE Paper 780337 Realistic Effects of Winds on the Aerodynamics Resistance of Automobiles, B. Dayman, Jr.SAE Paper 940420 A Detailed
17、Drag Study Using the Coastdown Method, M. A. Passmore and G. M. Le Good SAE Paper 950626 ABCDAn Improved Coast Down Test and Analysis Method, F. T. Buckley, Jr. SAE Paper 970269 Determination of Coastdown Mechanical Loss Ambient Correction Factors for Use with SAE J2263 Road Tests, R. W. Andrews and
18、 D. J. Pruess 2.2.2 ISO Publication Available from ANSI, 25 West 43rd Street, New York, NY 10036-8002, Tel: 212-642-4900, www.ansi.org.ISO/DIS 10521:1991-07-31 Motor vehicle road loadDetermination under reference atmospheric conditions and reproduction on chassis dynamometer 2.2.3 Other Publication
19、Japan TRIAS 23-4 1999 SAE J2263 Revised DEC2008 - 3 -2.2.4 Sample Program A working sample program is furnished as a proposed method of following this document. The full executable program, sample data, instructions and the underlaying Visual Basic code is furnished and can be obtained by contacting
20、 Carl Paulina, paulina.carlepa.gov, at the US Environmental Protection Agency in Ann Arbor, Michigan. 3. DEFINITIONS 3.1 Constrained Analysis The vehicles frontal area and aerodynamic drag coefficient have been independently determined and those values will be used in the equation of motion. 3.2 Dri
21、veline The rotating components of a vehicle mechanically connected to the driving wheels when the transmission is in neutral gear. This includes the brake disks/drums, driveshafts, differential, propeller shaft, transmission output shaft, and some components within the transmission. 3.3 Effective Ve
22、hicle Mass The sum of the vehicle test mass and the effective mass of rotating components. 3.4 Effective Mass of Rotating Components The rotational inertia of driveline and non-drive axle components that rotate with the wheels is expressed as additional “linear” mass. For passenger cars without dual
23、 drive tires (or other driveline components which are likely to increase real rotational inertia to greater than 1.5% per axle) and if the actual effective mass of rotating components is unknown, the effective mass of all rotating components may be estimated as 3.0% of the vehicle test mass. 3.5 Mec
24、hanical Drag The force opposing vehicle movement due to tire rolling resistance and friction in the driveline and non-drive axle components.3.6 Road Load Force The total force encountered by a vehicle by reason of motion on a level, smooth surface; it includes aerodynamic and mechanical drag compone
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