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本文(BS ISO 6336-1-2006 en_4578 Calculation of load capacity of spur and helical gears - Basic principles introduction and general influence factors《正齿轮和斜齿轮负载能力的计算.基本原理、介绍和一般影响因素》.pdf)为本站会员(testyield361)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!

BS ISO 6336-1-2006 en_4578 Calculation of load capacity of spur and helical gears - Basic principles introduction and general influence factors《正齿轮和斜齿轮负载能力的计算.基本原理、介绍和一般影响因素》.pdf

1、BRITISH STANDARD BS ISO 6336-1:2006 Incorporating corrigendum June 2008 Calculation of load capacity of spur and helical gears Part 1: Basic principles, introduction and general influence factors ICS 21.200 BS ISO 6336-1:2006 This British Standard was published under the authority of the Standards P

2、olicy and Strategy Committee on 31 October 2006 BSI 2008 ISBN 978 0 580 63408 6 National foreword This British Standard is the UK implementation of ISO 6336-1:2006, incorporating corrigendum June 2008. It supersedes BS ISO 6336-1:1996 which is withdrawn. The start and finish of text introduced or al

3、tered by corrigendum is indicated in the text by tags. Text altered by ISO corrigendum June 2008 is indicated in the text by . The UK participation in its preparation was entrusted to Technical Committee MCE/5, Gears. A list of organizations represented on this committee can be obtained on request t

4、o its secretary. This publication does not purport to include all the necessary provisions of a contract. Users are responsible for its correct application. Compliance with a British Standard cannot confer immunity from legal obligations. Amendments/corrigenda issued since publication Date Comments

5、30 September 2008 Implementation of ISO corrigendum June 2008 Reference number ISO 6336-1:2006(E)INTERNATIONAL STANDARD ISO 6336-1 Second edition 2006-09-01 Calculation of load capacity of spur and helical gears Part 1: Basic principles, introduction and general influence factors Calcul de la capaci

6、t de charge des engrenages cylindriques dentures droite et hlicodale Partie 1: Principes de base, introduction et facteurs gnraux dinfluence BS ISO 6336-1:2006ii iii Contents Page Foreword vi Introduction vii 1 Scope . 1 2 Normative references . 2 3 Terms, definitions, symbols and abbreviated terms.

7、 2 4 Basic principles 12 4.1 Application 12 4.1.1 Scuffing 12 4.1.2 Wear . 12 4.1.3 Micropitting . 12 4.1.4 Plastic yielding 12 4.1.5 Particular categories 12 4.1.6 Specific applications 12 4.1.7 Safety factors 13 4.1.8 Testing . 15 4.1.9 Manufacturing tolerances 15 4.1.10 Implied accuracy. 15 4.1.1

8、1 Other considerations 15 4.1.12 Influence factors . 16 4.1.13 Numerical equations. 18 4.1.14 Succession of factors in course of calculation . 18 4.1.15 Determination of allowable values of gear deviations 18 4.2 Tangential load, torque and power . 18 4.2.1 Nominal tangential load, nominal torque an

9、d nominal power . 18 4.2.2 Equivalent tangential load, equivalent torque and equivalent power. 19 4.2.3 Maximum tangential load, maximum torque and maximum power. 19 5 Application factor K A19 5.1 Method A Factor K A-A . 20 5.2 Method B Factor K A-B . 20 6 Internal dynamic factor K v . 20 6.1 Parame

10、ters affecting internal dynamic load and calculations. 20 6.1.1 Design 20 6.1.2 Manufacturing . 21 6.1.3 Transmission perturbance. 21 6.1.4 Dynamic response 21 6.1.5 Resonance. 22 6.2 Principles and assumptions 22 6.3 Methods for determination of dynamic factor . 22 6.3.1 Method A Factor K v-A . 22

11、6.3.2 Method B Factor K v-B . 23 6.3.3 Method C Factor K v-C . 23 6.4 Determination of dynamic factor using Method B: K v-B . 24 6.4.1 Running speed ranges . 24 6.4.2 Determination of resonance running speed (main resonance) of a gear pair 3)25 6.4.3 Dynamic factor in subcritical range (N u N S ). 2

12、7 6.4.4 Dynamic factor in main resonance range (N S u 1,15) 30 BS ISO 6336-1:2006iv 6.4.5 Dynamic factor in supercritical range (N W 1,5) . 30 6.4.6 Dynamic factor in intermediate range (1,15 N 1,5). 30 6.4.7 Resonance speed determination for less common gear designs . 31 6.4.8 Calculation of reduce

13、d mass of gear pair with external teeth 33 6.5 Determination of dynamic factor using Method C: K v-C34 6.5.1 Graphical values of dynamic factor using Method C 35 6.5.2 Determination by calculation of dynamic factor using Method C 39 7 Face load factors K Hand K F . 39 7.1 Gear tooth load distributio

14、n. 39 7.2 General principles for determination of face load factors K Hand K F40 7.2.1 Face load factor for contact stress K H40 7.2.2 Face load factor for tooth root stress K F40 7.3 Methods for determination of face load factor Principles, assumptions . 40 7.3.1 Method A Factors K H-Aand K F-A41 7

15、.3.2 Method B Factors K H-Band K F-B41 7.3.3 Method C Factors K H-Cand K F-C41 7.4 Determination of face load factor using Method B: K H-B41 7.4.1 Number of calculation points. 41 7.4.2 Definition of K H41 7.4.3 Stiffness and elastic deformations . 42 7.4.4 Static displacements 45 7.4.5 Assumptions

16、45 7.4.6 Computer program output . 45 7.5 Determination of face load factor using Method C: K H-C45 7.5.1 Effective equivalent misalignment F y47 7.5.2 Running-in allowance y and running-in factor . 47 7.5.3 Mesh misalignment, f ma59 7.5.4 Component of mesh misalignment caused by case deformation, f

17、 ca . 61 7.5.5 Component of mesh misalignment caused by shaft displacement, f be62 7.6 Determination of face load factor for tooth root stress using Method B or C: K F63 8 Transverse load factors K Hand K F63 8.1 Transverse load distribution 63 8.2 Determination methods for transverse load factors P

18、rinciples and assumptions 63 8.2.1 Method A Factors K H-Aand K F-A63 8.2.2 Method B Factors K H-Band K F-B64 8.3 Determination of transverse load factors using Method B K H-Band K F-B64 8.3.1 Determination of transverse load factor by calculation . 64 8.3.2 Transverse load factors from graphs . 65 8

19、.3.3 Limiting conditions for K H65 8.3.4 Limiting conditions for K F65 8.3.5 Running-in allowance y . 66 9 Tooth stiffness parameters c and c . 70 9.1 Stiffness influences 70 9.2 Determination methods for tooth stiffness parameters Principles and assumptions 70 9.2.1 Method A Tooth stiffness paramet

20、ers c Aand c -A70 9.2.2 Method B Tooth stiffness parameters c Band c -B71 9.3 Determination of tooth stiffness parameters c and c according to Method B 71 9.3.1 Single stiffness, c . 72 9.3.2 Mesh stiffness, c 74 Annex A (normative) Additional methods for determination of f shand f ma76 BS ISO 6336-

21、1:2006v Annex B (informative) Guide values for crowning and end relief of teeth of cylindrical gears . 79 Annex C (informative) Guide values for K H-Cfor crowned teeth of cylindrical gears . 82 Annex D (informative) Derivations and explanatory notes 85 Annex E (informative) Analytical determination

22、of load distribution 89 Bibliography . 109 BS ISO 6336-1:2006vi Foreword ISO (the International Organization for Standardization) is a worldwide federation of national standards bodies (ISO member bodies). The work of preparing International Standards is normally carried out through ISO technical co

23、mmittees. Each member body interested in a subject for which a technical committee has been established has the right to be represented on that committee. International organizations, governmental and non-governmental, in liaison with ISO, also take part in the work. ISO collaborates closely with th

24、e International Electrotechnical Commission (IEC) on all matters of electrotechnical standardization. International Standards are drafted in accordance with the rules given in the ISO/IEC Directives, Part 2. The main task of technical committees is to prepare International Standards. Draft Internati

25、onal Standards adopted by the technical committees are circulated to the member bodies for voting. Publication as an International Standard requires approval by at least 75 % of the member bodies casting a vote. Attention is drawn to the possibility that some of the elements of this document may be

26、the subject of patent rights. ISO shall not be held responsible for identifying any or all such patent rights. ISO 6336-1 was prepared by Technical Committee ISO/TC 60, Gears, Subcommittee SC 2, Gear capacity calculation. This second edition cancels and replaces the first edition (ISO 6336-1:1996),

27、Clauses 6, 7 and 9 of which have been technically revised. It also incorporates the Amendments ISO 6336-1:1996/Cor.1:1998 and ISO 6336-1:1996/Cor.2:1999. ISO 6336 consists of the following parts, under the general title Calculation of load capacity of spur and helical gears: Part 1: Basic principles

28、, introduction and general influence factors Part 2: Calculation of surface durability (pitting) Part 3: Calculation of tooth bending strength Part 5: Strength and quality of materials Part 6: Calculation of service life under variable load BS ISO 6336-1:2006vii Introduction This and the other parts

29、 of ISO 6336 provide a coherent system of procedures for the calculation of the load capacity of cylindrical involute gears with external or internal teeth. ISO 6336 is designed to facilitate the application of future knowledge and developments, also the exchange of information gained from experienc

30、e. Design considerations to prevent fractures emanating from stress raisers in the tooth flank, tip chipping and failures of the gear blank through the web or hub will need to be analyzed by general machine design methods. Several methods for the calculation of load capacity, as well as for the calc

31、ulation of various factors, are permitted (see 4.1.12). The directions in ISO 6336 are thus complex, but also flexible. Included in the formulae are the major factors which are presently known to affect gear tooth pitting and fractures at the root fillet. The formulae are in a form that will permit

32、the addition of new factors to reflect knowledge gained in the future. BS ISO 6336-1:2006 blank1 Calculation of load capacity of spur and helical gears Part 1: Basic principles, introduction and general influence factors 1 Scope This part of ISO 6336 presents the basic principles of, an introduction

33、 to, and the general influence factors for, the calculation of the load capacity of spur and helical gears. Together with ISO 6336-2, ISO 6336-3, ISO 6336-5 and ISO 6336-6, it provides a method by which different gear designs can be compared. It is not intended to assure the performance of assembled

34、 drive gear systems. It is not intended for use by the general engineering public. Instead, it is intended for use by the experienced gear designer who is capable of selecting reasonable values for the factors in these formulae based on knowledge of similar designs and awareness of the effects of th

35、e items discussed. The formulae in ISO 6336 are intended to establish a uniformly acceptable method for calculating the pitting resistance and bending strength capacity of cylindrical gears with straight or helical involute teeth. ISO 6336 includes procedures based on testing and theoretical studies

36、 such as those of Hirt 1 , Strasser 2and Brossmann 3 . The results of rating calculations made by following this method are in good agreement with previously accepted gear calculations methods (see References 4 to 8) for normal working pressure angles up to 25 and reference helix angles up to 25). F

37、or larger pressure angles and larger helix angles, the trends of products Y FY SY and, respectively, Z HZ Z are not the same as those of some earlier methods. The user of ISO 6336 is cautioned that when the methods in ISO 6336 are used for other helix angles and pressure angles, the calculated resul

38、ts will need to be confirmed by experience. The formulae in ISO 6336 are not applicable when any of the following conditions exist: spur or helical gears with transverse contact ratios less than 1,0; spur or helical gears with transverse contact ratios greater than 2,5; interference between tooth ti

39、ps and root fillets; teeth are pointed; backlash is zero. The rating formulae in ISO 6336 are not applicable to other types of gear tooth deterioration such as plastic yielding, scuffing, case crushing, welding and wear, and are not applicable under vibratory conditions where there may be an unpredi

40、ctable profile breakdown. The bending strength formulae are applicable to fractures at the tooth fillet, but are not applicable to fractures on the tooth working surfaces, failure of the gear rim, or failures of the gear blank through web and hub. ISO 6336 does not apply to teeth finished by forging

41、 or sintering. It is not applicable to gears which have a poor contact pattern. The procedures in ISO 6336 provide rating formulae for the calculation of load capacity, based on pitting and tooth root breakage. At pitch line velocities below 1 m/s the gear load capacity is often limited by abrasive

42、wear (see other literature for information on the calculation for this). BS ISO 6336-1:20062 2 Normative references The following referenced documents are indispensable for the application of this document. For dated references, only the edition cited applies. For undated references, the latest edit

43、ion of the referenced document (including any amendments) applies. ISO 53:1998, Cylindrical gears for general and heavy engineering Standard basic rack tooth profile ISO 1122-1:1998, Vocabulary of gear terms Part 1: Definitions related to geometry ISO 1328-1:1995, Cylindrical gears ISO system of acc

44、uracy Part 1: Definitions and allowable values of deviations relevant to corresponding flanks of gear teeth ISO 4287:1997, Geometrical Product Specifications (GPS) Surface texture: Profile method Terms, definitions and surface texture parameters ISO 4288:1996, Geometrical Product Specifications (GPS

45、) Surface texture: Profile method Rules and procedures for the assessment of surface texture ISO 6336-2, Calculation of load capacity of spur and helical gears Part 2: Calculation of surface durability (pitting) ISO 6336-3, Calculation of load capacity of spur and helical gears Part 3: Calculation o

46、f tooth bending strength ISO 6336-5, Calculation of load capacity of spur and helical gears Part 5: Strength and quality of materials ISO 6336-6, Calculation of load capacity of spur and helical gears Part 6: Calculation of service life under variable load 3 Terms, definitions, symbols and abbreviat

47、ed terms For the purposes of this document, the terms, definitions, symbols and abbreviated terms given in ISO 1122-1 and the following symbols apply. NOTE Symbols are based on, and are extensions of, the symbols given in ISO 701 and ISO 1328-1. Only symbols for quantities used for the calculation o

48、f the particular factors treated in ISO 6336 are given, together with the preferred units. BS ISO 6336-1:20063 Table 1 Symbols used in ISO 6336-1, ISO 6336-2, ISO 6336-3 and ISO 6336-5 Symbol Description Unit Principal symbols and abbreviations A, B, C, D, E points on path of contact (pinion root to

49、 pinion tip, regardless of whether pinion or wheel drives, only for geometrical considerations) a centre distance amm pressure angle (without subscript, at reference cylinder) B total face width of double helical gear including gap width mm b face width mm helix angle (without subscript, at reference cylinder) const

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