BS 8726-2-2002 Cylindrical helical springs made from rectangular and square section wire and bar - Guide to calculation and design - Torsion springs《矩形和方型线材和棒材制的圆柱形螺旋式弹簧 计算和设计指南 扭力.pdf
《BS 8726-2-2002 Cylindrical helical springs made from rectangular and square section wire and bar - Guide to calculation and design - Torsion springs《矩形和方型线材和棒材制的圆柱形螺旋式弹簧 计算和设计指南 扭力.pdf》由会员分享,可在线阅读,更多相关《BS 8726-2-2002 Cylindrical helical springs made from rectangular and square section wire and bar - Guide to calculation and design - Torsion springs《矩形和方型线材和棒材制的圆柱形螺旋式弹簧 计算和设计指南 扭力.pdf(24页珍藏版)》请在麦多课文档分享上搜索。
1、BRITISH STANDARD BS 8726-2:2002 Cylindrical helical springs made from rectangular and square section wire and bar Guide to calculation and design Part 2: Torsion springs ICS 21.160 BS 8726-2:2002 This British Standard, having been prepared under the direction of the Engineering Sector Policy and Str
2、ategy Committee, was published under the authority of the Standards Policy and Strategy Committee on 25 September 2002 BSI 25 September 2002 The following BSI references relate to the work on this British Standard: Committee reference GME/15 Draft for comment 02/702404 DC ISBN 0 580 39719 1 Committe
3、es responsible for this British Standard The preparation of this British Standard was entrusted to Technical Committee GME/15, Mechanical springs, upon which the following bodies were represented: British Impact Treatment Association Institute of Spring Technology Amendments issued since publication
4、 Amd. No. Date Comments BS 8726-2:2002 BSI 25 September 2002 i Contents Page Committees responsible Inside front cover Foreword ii 1S c o p e 1 2 Normative references 1 3 Terms, definitions and symbols 1 4G e n e r a l 2 5 Methods of calculation 2 6T o l e r a n c e s 6 7 Specifying springs for gene
5、ral purposes 8 8 Methods of testing 15 Annex A (informative) Modulus of elasticity of some materials 18 Annex B (informative) Typical tolerances on rectangular section material 18 Figure 1 Forms of legs 4 Figure 2 Conventions for describing relative leg orientation 5 Figure 3 Data sheet 1 9 Figure 4
6、 Direction of coiling 10 Figure 5 Example torque testing layout 12 Figure 6 Data sheet 2 14 Table 1 Calculated free relative leg orientation tolerance ( degrees) 7 Table A.1 Modulus of elasticity values 18 Table B.1 Typical tolerances on rectangular section material 18BS 8726-2:2002 ii BSI 25 Septem
7、ber 2002 Foreword BS 1726-3 was first published in 1951 and revised in 1964 to incorporate much of the essential information from ADE Design Data Sheets, which were no longer available from HM Stationery Office and for which copyright permission to republish was obtained. The standard was revised in
8、 1988 to take account of current manufacturing processes. BS 1726-3:1988, was withdrawn on the publication of BS EN 13906-3 in 2001. The provisions for the design, specification, tolerances and testing of rectangular section torsion springs are now published in this separate standard. Together with
9、BS 1726-3:2002 and BS EN 13906-3:2001, this new standard, BS 8726-2, supersedes BS 1726-3:1988, which is withdrawn. BS 8726 is published in two parts: Part 1: Compression springs; Part 2: Torsion springs. A British Standard does not purport to include all the necessary provisions of a contract. User
10、s of British Standards are responsible for their correct application. Compliance with a British Standard does not of itself confer immunity from legal obligations. Summary of pages This page consists of a front cover, an inside front cover, page i and ii, pages 1 to 18, an inside back cover and a ba
11、ck cover. The BSI copyright displayed in this document indicates when the document was last issued.BS 8726-2:2002 BSI 25 September 2002 1 1 Scope This British Standard provides guidance on the design of parallel sided helical torsion springs manufactured from rectangular and square section wire and
12、bar. 1.1 Limitation on material section dimensions This standard applies only to springs made from rectangular section material where the ratio of radial dimension, b, to the axial dimension, h, termed the shape factor, m, is not greater than 2.5 and not less than 0.4. NOTE 1 This applies because, o
13、utside the shape factor range 2.5 to 0.4, it is difficult to coil a spring accurately. NOTE 2 There are numerous methods of calculating the parameters necessary for the design of springs and initially the designer is free to use any one of these. This standard differentiates between springs that hav
14、e or have not been stress relieved after forming, designated group A springs, and springs, the material of which has undergone a structural change by heat treatment after forming, designated group B springs. This British Standard gives two methods of specifying springs for general purposes and one m
15、ethod of testing springs 2 Normative references The following normative documents contain provisions which, through reference in this text, constitute provisions of this British Standard. For dated references, subsequent amendments to, or revisions of, any of these publications do not apply. For und
16、ated references, the latest edition of the publication referred to applies. BS 887, Specification for precision vernier callipers. BS 969, Specification for limits and tolerances on plain limit gauges. BS EN ISO 7500-1, Tension/compression testing machines Verification and calibration of the force m
17、easuring system. BS 8726-1, Cylindrical helical springs made from rectangular and square section wire and bar Guide to calculation and design Part 1: Compression springs. BS EN 13906-3, Cylindrical helical springs made from round wire and bar Calculation and design Part 3: Torsion springs. 3 Terms,
18、definitions and symbols 3.1 Terms and definitions For the purposes of this part of BS 8726 the terms and definitions given in BS 8726-1 apply. 3.2 Symbols Symbol Term Unit b radial dimension of rectangular section material mm c spring index mm D mean coil diameter mm D change in mean coil diameter m
19、m D o outside diameter mm D tol. mean coil diameter tolerance mm e tolerance on size of material cross-section mm E modulus of elasticity (see Annex A) N/mm 2 F T tolerance factor for torque h axial dimension of rectangular section material mm h maximum axial dimension of rectangular section materia
20、l after coiling mmBS 8726-2:2002 2 BSI 25 September 2002 4 General When designing a spring, certain characteristics have to be determined, e.g. shear stress, rate, natural frequency, buckling and the tolerances that can be permitted to ensure that it functions as required, but which will allow it to
21、 be produced economically. It should be borne in mind that, in general, the surface quality of rectangular material is inferior to that obtainable on round material due to problems in wire drawing. For this reason it is recommended that rectangular section springs should be used in static applicatio
22、ns only. 5 Methods of calculation 5.1 Stress correction factor Stress correction factor K r , for rectangular section material, is given by the equation: K r= where c = D/b h max. maximum axial dimension of rectangular section material allowing for material size tolerance mm k material constant for
23、calculation of distortion and axial dimension of rectangular section material after coiling K r stress correction factor for rectangular section wire l combined effective length of legs mm L o free body length of spring mm L o, tol. tolerance on free body length mm L t loaded body length of spring m
24、m m shape factor mm n number of active coils in spring n change in number of active coils during loading N total number of coils in spring p pitch mm R min. minimum allowable inside radius of any bend mm S nominal torsional rate N mm/degree t thickness of any surface coating mm T torque at any angle
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