ISO TR 29381-2008 Metallic materials - Measurement of mechanical properties by an instrumented indentation test - Indentation tensile properties《金属材料 用仪器压痕试验测量机.pdf
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1、 Reference number ISO/TR 29381:2008(E) ISO 2008TECHNICAL REPORT ISO/TR 29381 First edition 2008-10-15 Metallic materials Measurement of mechanical properties by an instrumented indentation test Indentation tensile properties Matriaux mtalliques Mesure des caractristiques mcaniques par un essai de pn
2、tration instrument Caractristiques de traction par indentation ISO/TR 29381:2008(E) PDF disclaimer This PDF file may contain embedded typefaces. In accordance with Adobes licensing policy, this file may be printed or viewed but shall not be edited unless the typefaces which are embedded are licensed
3、 to and installed on the computer performing the editing. In downloading this file, parties accept therein the responsibility of not infringing Adobes licensing policy. The ISO Central Secretariat accepts no liability in this area. Adobe is a trademark of Adobe Systems Incorporated. Details of the s
4、oftware products used to create this PDF file can be found in the General Info relative to the file; the PDF-creation parameters were optimized for printing. Every care has been taken to ensure that the file is suitable for use by ISO member bodies. In the unlikely event that a problem relating to i
5、t is found, please inform the Central Secretariat at the address given below. COPYRIGHT PROTECTED DOCUMENT ISO 2008 All rights reserved. Unless otherwise specified, no part of this publication may be reproduced or utilized in any form or by any means, electronic or mechanical, including photocopying
6、 and microfilm, without permission in writing from either ISO at the address below or ISOs member body in the country of the requester. ISO copyright office Case postale 56 CH-1211 Geneva 20 Tel. + 41 22 749 01 11 Fax + 41 22 749 09 47 E-mail copyrightiso.org Web www.iso.org Published in Switzerland
7、 ii ISO 2008 All rights reservedISO/TR 29381:2008(E) ISO 2008 All rights reserved iii Contents Page Foreword iv Introduction v 1 Scope . 1 2 Normative references . 1 3 Terms and definitions. 1 4 Symbols and designations 2 5 Descriptions of the different methods 3 5.1 Method 1: Representative stress
8、and strain 3 5.2 Method 2: Inverse analysis by FEA. 10 5.3 Method 3: Neural networks 18 6 Summary 23 Annex A (informative) Measurement of residual stress by instrumented indentation test 25 Bibliography . 29 ISO/TR 29381:2008(E) iv ISO 2008 All rights reservedForeword ISO (the International Organiza
9、tion 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 committees. Each member body interested in a subject for which a technical committee has been established
10、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 the International Electrotechnical Commission (IEC) on all matters of electrotechnical standardization. In
11、ternational 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 International Standards adopted by the technical committees are circulated to the member bodies for voting. Publi
12、cation as an International Standard requires approval by at least 75 % of the member bodies casting a vote. In exceptional circumstances, when a technical committee has collected data of a different kind from that which is normally published as an International Standard (“state of the art”, for exam
13、ple), it may decide by a simple majority vote of its participating members to publish a Technical Report. A Technical Report is entirely informative in nature and does not have to be reviewed until the data it provides are considered to be no longer valid or useful. Attention is drawn to the possibi
14、lity that some of the elements of this document may be the subject of patent rights. ISO shall not be held responsible for identifying any or all such patent rights. ISO/TR 29381 was prepared by Technical Committee ISO/TC 164, Mechanical testing of metals, Subcommittee SC 3, Hardness testing. ISO/TR
15、 29381:2008(E) ISO 2008 All rights reserved v Introduction 0.1 General information for tensile properties For centuries the elastic properties of materials have been described by Hookes Law (ca. 1660) and the practical parameter of Youngs modulus. This simple ratio of stress/strain is a practical, u
16、seful measure and, combined with a value for Poissons ratio of a material (a measure of the dimensional change of a material in directions other than the principal axis in which it is being strained), it is possible to determine the stresses introduced by loading even quite complex structures. When
17、the applied force is removed from an elastically deformed structure, it will recover completely. If, however, the stress in a material exceeds its yield point, then it will deform plastically and will retain a permanent deformation after the applied force is removed. The simplest description of the
18、mechanical properties of the material is, therefore, a plot of stress vs. strain, from zero to the strain at which the material fails completely. y p y yy 1 n E E Key E is Youngs modulus y , y are the yield point coordinates p is the nonlinear part of the total accumulated strain beyond y r is the e
19、lasto-plastic strain induced by r , the stress above the yield point Figure 1 Schematic of a typical true stress-strain curve for a work-hardening metal Figure 1 shows just such a curve. From this curve, the key tensile properties of the material can be obtained. Youngs modulus E is the gradient of
20、the initial portion of the curve. It is also the gradient of the straight line along which elastic recovery occurs from any point along the curve. The deviation of the curve from a straight line marks the yield point, often described as the yield stress. A straight-line recovery, of gradient E, from
21、 any point at higher stress or strain than this point would no longer pass through the origin, i.e. plastic deformation will have occurred. ISO/TR 29381:2008(E) vi ISO 2008 All rights reserved The gradient of the curve after yielding is a measure of the work hardening of the material, i.e. elastic r
22、ecovery occurs along a straight line, gradient E, and re-stressing the material also follows the same line such that further plastic deformation only begins once the previous maximum stress has been exceeded. The point at which the material fails completely marks two parameters of interest, one bein
23、g the ultimate tensile stress (UTS); the other being the strain at failure. These parameters form the key material specifications for any structural or functional design. It can be seen that the stress-strain curve is an essential “fingerprint” of the type of material. An elastic then perfectly plas
24、tic material will deform elastically up to the yield stress, and then it will continue to strain at constant stress until failure occurs at the strain-to-failure point. The yield stress is therefore also the UTS. A perfectly elastic, brittle material does not have a yield point, but exhibits a strai
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