SAE J 2789-2010 Inertia Calculation for Single-Ended Inertia-Dynamometer Testing《单端型惯量测功计试验用惯量计算》.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 reaffirmed, revised, or cancelled. SAE invites your written comments and suggestions. Copyright 2010 SAE International All rights reserved. No part of this publication m
3、ay 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 (outside U
4、SA) Fax: 724-776-0790 Email: CustomerServicesae.org SAE WEB ADDRESS: http:/www.sae.orgSAE values your input. To provide feedbackon this Technical Report, please visit http:/www.sae.org/technical/standards/J2789_201008SURFACEVEHICLERECOMMENDEDPRACTICEJ2789 AUG2010 Issued 2010-08 Inertia Calculation f
5、or Single-Ended Inertia-Dynamometer Testing RATIONALE The validity of the results of a single-ended inertia-dynamometer test depends heavily on the inertia values. The objective of this Recommended Practice is to provide a common methodology for determining the inertia values for single-ended brake
6、dynamometer testing. The test loads, energy levels, and rotational speeds during single-ended inertia-dynamometer testing are a function of the vehicle under evaluation. Since the majority of dynamometer tests use a single-ended configuration, a standardized methodology to determine the test inertia
7、 is necessary to ensure the consistency and usefulness of the test results. When using this Recommended Practice the value for the test inertia can be determined as a function of vehicle type, braking system configuration, vehicle parameters available, chassis dimensions, vehicle weights, center of
8、gravity location, and deceleration level. TABLE OF CONTENTS 1. SCOPE 21.1 Purpose . 22. REFERENCES 22.1 Related Publications . 22.1.1 ISO Publications 23. DEFINITIONS . 23.1 ANTILOCK BRAKING SYSTEMS - ABS 23.2 ELECTRONIC BRAKE DISTRIBUTION - EBD 23.3 GROSS VEHICLE WEIGHT RATING - GVWR 23.4 LIGHTLY L
9、OADED VEHICLE WEIGHT - LLVW 33.5 TIRE DYNAMIC ROLLING RADIUS - RR 34. TEST INERTIA CALCULATION METHODS 34.1 Default Method 54.2 Torque Index Method 74.3 Dynamic Weight Transfer Method 85. CALCULATION REPORTS 95.1 Vehicle description: make or manufacturer, model year, brand or platform, trim level 95
10、.2 Gross Vehicle Weight Rating 95.3 Lightly Loaded Vehicle Weight 95.4 Brake proportioning type (fixed or electronic) . 95.5 Hydraulic system split (diagonal or front-to-rear) for tests with partial circuit failure sections 95.6 Specific method used to calculate inertia 95.7 Tire size and its corres
11、ponding dynamic RR used for the calculations 9SAE J2789 Issued AUG2010 Page 2 of 95.8 Front and rear inertia value calculated for each vehicle loading (LLVW or GVWR) . 95.9 Any loss factor applied to the effective inertia values for the test . 96. NOTES 96.1 Marginal Indicia . 9FIGURE 1 WORKFLOW TO
12、SELECT THE INERTIA CALCULATION METHOD . 4TABLE 1 INERTIA SPLIT FOR FULLY-OPERATIONAL SYSTEMS WITH FIXED BRAKE PROPORTIONING 6TABLE 2 INERTIA SPLIT FOR FULLY-OPERATIONAL SYSTEMS WITH ELECTRONIC BRAKE DISTRIBUTION 61. SCOPE This procedure provides methods to determine the appropriate inertia values fo
13、r all passenger cars and light trucks up to 4540 kg of GVWR. For the same vehicle application and axle (front or rear), different tests sections or brake applications may use different inertia values to reflect the duty-cycle and loading conditions indicated on the specific test. 1.1 Purpose The pur
14、pose of this procedure is to provide a common methodology to calculate test inertia (wheel load and tire rolling radius). The use of common inertia values allows the comparison of test results from different inertia-dynamometers or different testing facilities. This makes the overall testing activit
15、ies more cost-effective and repeatable. 2. REFERENCES 2.1 Related Publications The following publications are provided for information purposes only and are not a required part of this SAE Technical Report.2.1.1 ISO Publications Available from American National Standards Institute, 25 West 43rd Stre
16、et, New York, NY 10036-8002, Tel: 212-642-4900, www.ansi.org.ISO 611 Road vehicles Braking of automotive vehicles and their trailers Vocabulary 3. DEFINITIONS 3.1 ANTILOCK BRAKING SYSTEMS - ABS Closed-loop control device which prevents wheel lock when braking and, as a result, retains the vehicles s
17、teering ability and stability. 3.2 ELECTRONIC BRAKE DISTRIBUTION - EBD Closed-loop technology that automatically varies the amount of pressure applied to the rear brakes to maximize tire-to-road adhesion utilization while maintaining the vehicle stability. This condition typically happens at or near
18、 the wheel lock-up condition. 3.3 GROSS VEHICLE WEIGHT RATING - GVWR Maximum vehicle weight indicated by the manufacturer. kg SAE J2789 Issued AUG2010 Page 3 of 93.4 LIGHTLY LOADED VEHICLE WEIGHT - LLVW Unloaded vehicle weight plus 180 kg including driver and test instrumentation. kg 3.5 TIRE DYNAMI
19、C ROLLING RADIUS - RR Tire radius that equates to the Revolutions Per Mile (RPM) published by the tire manufacturer for the specific tire size. If unknown, the rolling radius can be calculated from the RPM value using Equation 1. Use the tire dynamic rolling radius to calculate test inertia and the
20、dynamometer rotational speed in revolutions per minute (r/min) for a given linear vehicle speed. 44 L5 : 4 = 7 8 86 (Eq. 1) where: 44 = tire dynamic rolling radius m = tire manufacturer specification for revolutions per mile. Typically shown for the tire size on the manufacturers website. 4. TEST IN
21、ERTIA CALCULATION METHODS There are three methods available to calculate the test inertia depending upon the amount of information available, the vehicle type, and the deceleration level for the specific test section or brake application. The inertia values are required to determine the amount of en
22、ergy imposed on the brake during testing. Also, the inertia value is required to determine the torque level for a given deceleration value or set-point. The minimum information required to run an inertia-dynamometer test is: a. Vehicle description: make or manufacturer, model year, brand or platform
23、, trim level b. Gross Vehicle Weight Rating c. Lightly Loaded Vehicle Weight d. Tire size description e. Brake proportioning type (fixed or electronic) Use the flowchart in Figure 1 to determine the appropriate method as a function of: availability of vehicle information, type of front-to-rear brake
24、 proportioning, and target deceleration. Follow the steps on the flowchart, answer the questions and then proceed to the corresponding section using the information available for the specific vehicle application. SAE J2789 Issued AUG2010 Page 4 of 9FIGURE 1 - WORKFLOW TO SELECT THE INERTIA CALCULATI
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