ImageVerifierCode 换一换
格式:PDF , 页数:69 ,大小:2.45MB ,
资源ID:430555      下载积分:10000 积分
快捷下载
登录下载
邮箱/手机:
温馨提示:
快捷下载时,用户名和密码都是您填写的邮箱或者手机号,方便查询和重复下载(系统自动生成)。 如填写123,账号就是123,密码也是123。
特别说明:
请自助下载,系统不会自动发送文件的哦; 如果您已付费,想二次下载,请登录后访问:我的下载记录
支付方式: 支付宝扫码支付 微信扫码支付   
验证码:   换一换

加入VIP,免费下载
 

温馨提示:由于个人手机设置不同,如果发现不能下载,请复制以下地址【http://www.mydoc123.com/d-430555.html】到电脑端继续下载(重复下载不扣费)。

已注册用户请登录:
账号:
密码:
验证码:   换一换
  忘记密码?
三方登录: 微信登录  

下载须知

1: 本站所有资源如无特殊说明,都需要本地电脑安装OFFICE2007和PDF阅读器。
2: 试题试卷类文档,如果标题没有明确说明有答案则都视为没有答案,请知晓。
3: 文件的所有权益归上传用户所有。
4. 未经权益所有人同意不得将文件中的内容挪作商业或盈利用途。
5. 本站仅提供交流平台,并不能对任何下载内容负责。
6. 下载文件中如有侵权或不适当内容,请与我们联系,我们立即纠正。
7. 本站不保证下载资源的准确性、安全性和完整性, 同时也不承担用户因使用这些下载资源对自己和他人造成任何形式的伤害或损失。

版权提示 | 免责声明

本文(ANSI AGMA 6102-C15-2015 Design Guide for Vehicle Spur and Helical Gears (Metric Edition).pdf)为本站会员(livefirmly316)主动上传,麦多课文库仅提供信息存储空间,仅对用户上传内容的表现方式做保护处理,对上载内容本身不做任何修改或编辑。 若此文所含内容侵犯了您的版权或隐私,请立即通知麦多课文库(发送邮件至master@mydoc123.com或直接QQ联系客服),我们立即给予删除!

ANSI AGMA 6102-C15-2015 Design Guide for Vehicle Spur and Helical Gears (Metric Edition).pdf

1、ANSI/AGMA6102-C15ANSI/AGMA 6102-C15 (Metric edition of ANSI/AGMA 6002-C15) American National Standard Design Guide for Vehicle Spur and Helical Gears (Metric Edition)AMERICAN NATIONAL STANDARD ANSI/AGMA 6102-C15 AGMA 2015 All rights reserved ii Design Guide for Vehicle Spur and Helical Gears (Metric

2、 Edition) ANSI/AGMA 6102-C15 Metric Edition of ANSI/AGMA 6002-C15 Approval of an American National Standard requires verification by ANSI that the requirements for due process, consensus and other criteria for approval have been met by the standards developer. Consensus is established when, in the j

3、udgment of the ANSI Board of Standards Review, substantial agreement has been reached by directly and materially affected interests. Substantial agreement means much more than a simple majority, but not necessarily unanimity. Consensus requires that all views and objections be considered, and that a

4、 concerted effort be made toward their resolution. The use of American National Standards is completely voluntary; their existence does not in any respect preclude anyone, whether he has approved the standards or not, from manufacturing, marketing, purchasing or using products, processes or procedur

5、es not conforming to the standards. The American National Standards Institute does not develop standards and will in no circumstances give an interpretation of any American National Standard. Moreover, no person shall have the right or authority to issue an interpretation of an American National Sta

6、ndard in the name of the American National Standards Institute. Requests for interpretation of this standard should be addressed to the American Gear Manufacturers Association. CAUTION NOTICE: AGMA technical publications are subject to constant improvement, revision or withdrawal as dictated by expe

7、rience. Any person who refers to any AGMA Technical Publication should be sure that the publication is the latest available from the Association on the subject matter. Tables or other self-supporting sections may be referenced. Citations should read: See ANSI/AGMA 6102-C15, Design Guide for Vehicle

8、Spur and Helical Gears (Metric Edition), published by the American Gear Manufacturers Association, 1001 N. Fairfax Street, Suite 500, Alexandria, Virginia 22314, http:/www.agma.org. Approved July 6, 2015 ABSTRACT This standard provides the engineer, who is familiar with gear designing, a guide to so

9、und design approaches for vehicle gear applications. Through this standard, the engineer is guided to selecting design considerations paramount to the parallel axis gear sets required in vehicle drive lines. These include tooth and blank proportions, metallurgy, lubrication, profile and lead modific

10、ation requirements, and gear tooth tolerances. Properties of the commonly used steels and processes for their heat treatment are outlined, as well as details for calculating design limits for bending and contact stresses. Published by American Gear Manufacturers Association 1001 N. Fairfax Street, S

11、uite 500, Alexandria, Virginia 22314 Copyright 2015 by American Gear Manufacturers Association All rights reserved. No part of this publication may be reproduced in any form, in an electronic retrieval system or otherwise, without prior written permission of the publisher. Printed in the United Stat

12、es of America ISBN: 978-1-55589-003-2 American National Standard AMERICAN NATIONAL STANDARD ANSI/AGMA 6102-C15 AGMA 2015 All rights reserved iii Contents Foreword vi 1 Scope . 1 2 Normative references 1 3 Definitions and symbols . 1 3.1 Definitions 1 3.2 Symbols . 2 4 Design considerations . 3 4.1 S

13、ize and weight limitations 3 4.2 Tooth proportions (involutometry) . 3 4.2.1 Modified cutter positions . 4 4.2.2 Modified cutter proportions 5 4.2.3 Undercut 5 4.3 Typical design values 6 4.3.1 Pressure angle, n . 6 4.3.2 Tooth height (whole depth), ht . 6 4.3.3 Tip/root clearance 6 4.3.4 Helix angl

14、e, 6 4.3.5 Face width, b . 7 4.4 Macro gear tolerances 7 4.5 Contact ratios, . 9 4.5.1 Involute contact ratio, 10 4.5.2 Face contact ratio, . 10 4.5.3 Total contact ratio, . 10 4.5.4 High involute contact ratio, HCR, gearing . 11 4.5.5 Contact ratio recommendations 12 4.6 Rim proportion . 14 4.7 Inv

15、olute profile modifications . 15 4.7.1 Typical modifications (external gear) 15 4.7.2 Drawing specifications 15 4.8 Helix (lead) modifications 15 4.8.1 Lead crown modification . 16 4.8.2 Helix modification 17 4.9 Pre-heat treatment geometry specifications . 17 4.10 Drawing specification 17 4.11 Gear

16、 tolerances . 17 4.11.1 Use of both elemental and composite tolerances . 17 4.11.2 Additional specifications 18 4.11.3 Control of root fillet area 18 4.11.4 Purchased gears . 19 4.12 Noise considerations . 19 4.13 Guidelines for various material grades . 19 4.14 Splines . 20 5 Surface finish . 20 5.

17、1 Surface finish influence . 21 5.2 Surface finish parameters . 22 6 Cooling and lubrication 22 6.1 Cooling 22 6.2 Lubrication . 23 6.2.1 Method of lubrication . 23 6.2.2 Type of lubricant 23 6.2.3 Lubricant viscosity . 23 6.2.4 Operating oil temperature . 23 AMERICAN NATIONAL STANDARD ANSI/AGMA 610

18、2-C15 AGMA 2015 All rights reserved iv 6.2.5 Lubrication guidance . 24 6.2.6 Other considerations . 24 7 Materials and heat treatment . 24 7.1 Material selection 24 7.2 Heat treat metallurgical requirements . 25 7.2.1 Material reduction ratio recommendation 25 7.3 Hardenability . 25 7.4 Case carburi

19、zed gears 25 7.4.1 Material chemistry . 26 7.4.2 Carburized case depth 26 7.4.3 Material cleanliness . 28 7.4.4 Surface hardness in tooth area exception 29 7.4.5 Surface carbon exception . 29 7.4.6 Intergranular oxidation and non-martensitic transformation product exceptions 29 7.4.7 Process conside

20、rations for carburized case hardened gears . 29 7.5 Induction and flame hardening 29 7.5.1 Hardening methods . 29 7.5.2 Material chemistry . 30 7.5.3 Metallurgical factors 30 7.5.4 Case depth 31 7.6 Nitrided gearing . 31 7.6.1 Material chemistry . 31 7.6.2 Prior microstructure . 31 7.6.3 Nitride cas

21、e depth . 31 7.7 Through hardened gearing 33 7.7.1 Material chemistry . 33 7.8 Heat treat variations 34 7.8.1 Geometry considerations 34 7.8.2 Metallurgically induced residual stress . 34 7.8.3 Mechanically induced compressive stress 35 8 Determination of load capacity 37 8.1 Capacity to resist bend

22、ing fatigue . 38 8.1.1 Bending stress formula . 38 8.1.2 Stress concentration . 38 8.1.3 Bending derating factor . 39 8.1.4 Allowable design limits 40 8.2 Capacity to resist pitting 40 8.2.1 Contact stress formula 41 8.2.2 Pitting derating factor 41 8.2.3 Allowable design limits, pitting 42 8.3 Capa

23、city to resist scuffing . 43 8.3.1 Wear/scuffing resistance . 43 8.4 Failure mode interaction with lubrication and carburize metallurgy 44 9 Duty cycle 45 9.1 Miners rule 45 9.2 Procedure 45 9.3 Overload factors 45 9.4 Failure mode . 46 9.4.1 Gear surface failure . 46 AMERICAN NATIONAL STANDARD ANSI

24、/AGMA 6102-C15 AGMA 2015 All rights reserved v Annexes Annex A (informative) Manual transmission example . 48 Annex B (informative) Vehicle performance equations . 51 Annex C (informative) Splines. 57 Annex D (informative) Lubrication considerations for planetary gear carriers 58 Annex E Bibliograph

25、y 61 Tables Table 1 - Symbols and terms 2 Table 2 - Typical total profile modification in vehicle gearing to compensate for bending under load for steel gears . 15 Table 3 - Typical surface texture values, metric . 21 Table 4 - Historical bending derating factors, Cdt, for vehicle spur and helical g

26、ears . 39 Figures Figure 1 - Cutter position . 4 Figure 2 - Minimum addendum factor to eliminate undercut on generated full depth spur gears 5 Figure 3 - External tooth 8 Figure 4 - Internal tooth . 8 Figure 5 - External gear teeth edge break 8 Figure 6 - Internal gear teeth edge break . 9 Figure 7

27、- Number of teeth in contact versus involute contact ratio, . 12 Figure 8 - Gear contact ratios for noise reduction 13 Figure 9 - Rim proportions 14 Figure 10 - Typical tooth profile tolerance chart 16 Figure 11 - Lead tolerances for crowned tooth . 16 Figure 12 - Instrument features and directions

28、of measurement traverse relative to manufacturing processes 21 Figure 13 - Process surface finish 22 Figure 14 - Case hardened tooth cross section (normal) . 26 Figure 15 - Depth of effective case at mid-tooth height, spur and helical gears, carburized and spin Type A (contour) induction . 27 Figure

29、 16 - Variations in hardening pattern obtainable on gear teeth with flame or induction hardening 30 Figure 17 - Core hardness coefficient, Uc, for nitrided gears 32 Figure 18 - Minimum total case depth for nitrided gears, hc . 33 Figure 19 - Typical residual stress distribution after controlled shot

30、 peening . 36 Figure 20 - Bending fatigue improvements from shot peening . 36 Figure 21 - Allowable bending stress numbers, for carburized and hardened and spin induction Type-A (contour) steel gears, sat 40 Figure 22 - Allowable bending stress numbers for through hardened steel gears, sat 41 Figure

31、 23 - Allowable contact stress numbers, for carburized and hardened and spin induction Type-A (contour) steel gears, sac . 42 Figure 24 - Allowable contact stress numbers for through hardened steel gears, sac 43 Figure 25 - Example of a cumulative duty cycle spectrum . 45 AMERICAN NATIONAL STANDARD

32、ANSI/AGMA 6102-C15 AGMA 2015 All rights reserved vi Foreword The foreword, footnotes and annexes, if any, in this document are provided for informational purposes only and are not to be construed as a part of ANSI/AGMA Standard 6102-C15, Design Guide for Vehicle Spur and Helical Gears (Metric Editio

33、n). This standard was created to serve as a guide to provide sound approaches for designing gears used in vehicle drive lines. This standard is intended for use by design engineers capable of selecting reasonable values for rating factors, material grades, heat treatment, and gear manufacturing capa

34、bilities. As the first metric version, this document updates and expands ANSI/AGMA 6002-B93, Design Guide for Vehicle Spur and Helical Gears This guide establishes a gear set design by following a sequential approach using: design considerations; lubrication and cooling; surface treatments; material

35、 and heat treatment; load capacity determination; and variable duty cycle loading. The decision to produce a vehicle gearing design guide was made by the Vehicle Gearing Committee on May 4, 1971. The first draft of AGMA 170.01 and was dated May 1972. AGMA 170.01 was approved by the AGMA membership i

36、n February, 1976. The Vehicle Gearing Committee was reactivated in October 1987 to develop an updated vehicle gearing design guide. ANSI/AGMA 6002-B93 was published in 1993. Over the last 21 years the committee has worked on refining ANSI/AGMA 6002-B93. The standard has been completely rewritten wit

37、h updated material throughout. A sample of the changes to the standard include: - Metric conversion of ANSI/AGMA 6002-C15; - New sections on macro gear tolerances and high contact ratio gears; - A new chapter on surface finish; - An expansion of lubrication considerations from one section to an enti

38、re chapter; - A complete rewrite of the load capacity section so that the material is more in line with the ANSI/AGMA 2001-D04; - Four new annexes were created that include: a design example; vehicle gearing equations; a discussion of splines; and an annex on lubrication considerations for planetary

39、 carriers. For full effectiveness, this guide should be used in conjunction with other applicable AGMA Standards. The first draft of ANSI/AGMA 6102-C15 was made in April 2012. It was approved by the AGMA membership in March 2015. It was approved as an American National Standard on July 6, 2015. Sugg

40、estions for improvement of this standard will be welcome. They may be submitted to techagma.org. AMERICAN NATIONAL STANDARD ANSI/AGMA 6102-C15 AGMA 2015 All rights reserved vii PERSONNEL of the AGMA Vehicle Gearing Committee Chairman: Rick L. Platt Allison Transmission, Inc. Vice Chairman: Richard W

41、. Miller Fairfield Manufacturing Co., Inc. ACTIVE MEMBERS G. Blake Rolls-Royce Corp. D. Breuer Metal Improvement Company D. Brownlie . United Gear for transportation, recreational or industrial use. Propulsion of these vehicles should be a primary function of its power source, and its mobility not c

42、onfined to the constraints of a closely defined area.” 2 Normative references The following standards (documents) contain provisions which, through reference in this text, constitute provisions of this standard (document). At the time of publication, the editions were valid. All standards (documents

43、) are subject to revision and parties to agreements based on this standard (document) are encouraged to investigate the possibility of applying the most recent editions of the standards (documents) indicated below. AGMA 912-A04, Mechanisms of Gear Tooth Failures AGMA 923-B05, Metallurgical Specifica

44、tions for Steel Gearing AGMA 925-A03, Effect of Lubrication on Gear Surface Distress AGMA 938-A05, Shot Peening of Gears ANSI/AGMA 1012-G05, Gear Nomenclature, Definitions of Terms with Symbols ANSI/AGMA 2101-D04, Fundamental Rating Factors and Calculation Methods for Involute Spur and Helical Gear

45、Teeth (Metric Edition) ASTM A534-09, Standard Specification for Carburizing Steels for Anti-Friction Bearings ASTM A866-09, Standard Specification for Medium Carbon Anti-Friction Bearing Steel ANSI/AGMA ISO 1328-1-B14, Cylindrical gears - ISO system of flank tolerance classification - Part 1: Defini

46、tions and allowable values of deviations relevant to flanks of gear teeth 3 Definitions and symbols 3.1 Definitions The terms used, wherever applicable, conform to the following standards: ANSI/AGMA 1012-G05, Gear Nomenclature, Definitions of Terms with Symbols ANSI/AGMA 2101-D04, Fundamental Rating

47、 Factors and Calculation Methods for Involute Spur and Helical Gear Teeth (Metric Edition) AMERICAN NATIONAL STANDARD ANSI/AGMA 6102-C15 AGMA 2015 All rights reserved 2 3.2 Symbols The symbols used in this document are shown in Table 1. NOTE: The symbols and definitions used in this standard may dif

48、fer from other AGMA Standards. The user should not assume that familiar symbols can be used without a careful study of these definitions. Table 1 - Symbols and terms Symbols Terms Units Where first used b Face width mm 4.3.5 be Net engaged width between two mating gears mm Eq 10 bk Edge break (round

49、) mm Figure 5 bk max Edge break (round), maximum mm Eq 8 bk min Edge break (round), minimum mm Eq 7 Cdc Pitting derating factor - - 8.2.2 Cdt Bending derating factor - - Table 4 CG Gear ratio factor - - Eq 14 d Standard pitch diameter mm Eq 5 de Outside diameter mm 4.4 de max Outside diameter, maximum mm Figure 3 de min Outside diameter, minimum mm Figure 3 deTOL Outside diameter total tolerance mm Eq 5 df Root diameter mm 4.4 df max Root diameter, maximum mm Figure 3 df min Root diameter, minimum mm Figure 3 dfTOL Root diameter tolerance mm Figure

copyright@ 2008-2019 麦多课文库(www.mydoc123.com)网站版权所有
备案/许可证编号:苏ICP备17064731号-1