ASME STP-PT-022-2008 COMPARISON AND VALIDATION OF CREEP-BUCKLING ANALYSIS METHODS《蠕变弯曲分析方法的比较和验证》.pdf
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1、STP-PT-022COMPARISON ANDVALIDATION OFCREEP-BUCKLINGANALYSIS METHODSSTP-PT-022 COMPARISON AND VALIDATION OF CREEP BUCKLING ANALYSIS METHODS Prepared by: Peter Carter Alstom Inc. D.L Marriott Stress Engineering Services, Inc Date of Issuance: September 3, 2008 This report was prepared as an account of
2、 work sponsored by ASME Pressure Technologies Codes and Standards and the ASME Standards Technology, LLC (ASME ST-LLC). Neither ASME, ASME ST-LLC, the authors, nor others involved in the preparation or review of this report, nor any of their respective employees, members, or persons acting on their
3、behalf, makes any warranty, express or implied, or assumes any legal liability or responsibility for the accuracy, completeness, or usefulness of any information, apparatus, product, or process disclosed, or represents that its use would not infringe upon privately owned rights. Reference in this re
4、port to any specific commercial product, process or service by trade name, trademark, manufacturer or otherwise does not necessarily constitute or imply its endorsement, recommendation or favoring by ASME ST-LLC or others involved in the preparation or review of this report, or any agency thereof. T
5、he views and opinions of the authors, contributors and reviewers of the report expressed in this report do not necessarily reflect those of ASME ST-LLC or others involved in the preparation or review of this report, or any agency thereof. ASME ST-LLC does not take any position with respect to the va
6、lidity of any patent rights asserted in connection with any items mentioned in this document, and does not undertake to insure anyone utilizing a publication against liability for infringement of any applicable Letters Patent, nor assumes any such liability. Users of a publication are expressly advi
7、sed that determination of the validity of any such patent rights, and the risk of infringement of such rights, is entirely their own responsibility. Participation by federal agency representative(s) or person(s) affiliated with industry is not to be interpreted as government or industry endorsement
8、of this publication. ASME is the registered trademark of The American Society of Mechanical Engineers. No part of this document may be reproduced in any form, in an electronic retrieval system or otherwise, without the prior written permission of the publisher. ASME Standards Technology, LLC Three P
9、ark Avenue, New York, NY 10016-5990 ISBN No. 0-7918-3174-4 Copyright 2008 by ASME Standards Technology, LLC All Rights Reserved Comparison and Validation of Creep-Buckling Analysis Methods STP-PT-022 iii TABLE OF CONTENTS Foreword v Abstract . vi 1 INTRODUCTION . 7 2 CREEP MODELS 9 2.1 Primary and S
10、econdary Creep. 9 2.2 Tertiary Creep 9 2.3 Isochronous Stress-Strain Curves 11 3 CREEP BUCKLING ANALYSIS TECHNIQUES. 12 3.1 Baseline Finite Element Creep Analyses with Initial Imperfections. 12 3.2 Critical Strain Technique. 12 3.3 Modified Modulus Technique . 13 3.4 Isochronous Stress-Strain Curve
11、Limit/Instability Analysis . 14 3.5 Effect of Tertiary Creep 14 4 EXAMPLE 1 LONG (2-D) CYLINDER UNDER EXTERNAL PRESSURE 16 4.1 Comparison between Shell and Solid Models. 17 4.2 Finite Element Creep Analyses with Initial Imperfections . 17 4.3 Critical Strain and Modified Modulus Calculations 18 4.4
12、Comparison between Shell Secondary Creep Analyses and Time-Independent Isochronous Limit Analyses 18 4.5 Effect of Primary Creep 20 4.6 Effect of Tertiary Creep 21 5 EXAMPLE 2 SPHERE UNDER EXTERNAL PRESSURE . 22 6 EXAMPLE 3 CYLINDER UNDER AXIAL LOAD . 24 7 CONCLUSIONS . 27 References 28 Acknowledgem
13、ents 29 LIST OF TABLES Table 1 - WRC Calculations of Buckling Stress 14 Table 2 - Comparison between Shell and Solid Models for Buckling Times of Cylinders under External Pressure 17 Table 3 - Comparison between Shell Model Buckling Times and Critical Strain Buckling Times. Effects of Initial Imperf
14、ection are Given 19 Table 4 - Comparison between Finite Element Buckling Pressures and Approximate Techniques 20 Table 5 - Comparison of Steady and Primary Creep Buckling Times . 20 Table 6 - Comparison of Isochronous Limit and Tangent Moduli Calculations 21 STP-PT-022 Comparison and Validation of C
15、reep-Buckling Analysis Methods iv Table 7 - Comparison of Finite Element and Isochronous Limit/Instability Analyses for Secondary and Tertiary Creep With Omega = 2000.21 Table 8 - Comparison of Finite Element, Constant Stress Isochronous Limit/Instability, Critical Strain and Tangent Modulus Predict
16、ions for Creep Rupture Model with Omega = 2000.21 Table 9 - Comparison of Finite Element Secondary Creep and Approximate Analyses for Sphere Creep Buckling .23 Table 10 - Comparison of Finite Element Secondary Creep and Approximate Analyses for Cylinder Axial Creep Buckling.26 LIST OF FIGURES Figure
17、 1 - Creep Strain with Steady (Original) and Time Hardening Models, 5 MPa And 20 MPa Stress, Respectively 9 Figure 2 - Creep Strain at Constant Stress for 42 MPa, Omega = 2000, Secondary and Tertiary Creep Models 11 Figure 3 - Isochronous Stress-Strain Curve and Tangent Modulus 13 Figure 4 - Isochro
18、nous Curves for 100,000 Hours for Secondary Creep and Creep Rupture at 44.6 MPa.15 Figure 5 - Undeformed and Buckled Shapes of a Row of Shell Elements .16 Figure 6 - Deflection in Part of Quarter Model Solid Section for R/T = 20 .17 Figure 7 - Displacement-Time Plot for Case 1 in Table 3 and Table 4
19、 18 Figure 8 - Displacement-Time Plot for Case 8 in Table 3 and Table 4 19 Figure 9 - First Elastic Buckling Modes for Sphere and Axisymmetric Model, with Buckling Stress = 1024 MPa. Typical Creep Buckling Mode22 Figure 10 - Creep Buckling for Sphere Case 1 .23 Figure 11 - Finite Element Axisymmetri
20、c Shell Model of Axially Buckled Cylinder: Mode 1.24 Figure 12 - Deflection History for Case 3 of Table 10 Below25 Figure 13 - Deflection History for Case 4 of Table 10 Below25 Comparison and Validation of Creep-Buckling Analysis Methods STP-PT-022 v FOREWORD This document was developed under a rese
21、arch and development project which resulted from ASME Pressure Technology Codes & Standards (PTCS) committee requests to identify, prioritize, and address technology gaps in current or new PTCS Codes, Standards and Guidelines. This project is one of several included for ASME fiscal year 2008 sponsor
22、ship which are intended to establish and maintain the technical relevance of ASME codes & standards products. The specific project related to this document is project 07-11 (BPVC#5), entitled “Comparison and Validation of Creep-Buckling Analysis Methods.” Established in 1880, the American Society of
23、 Mechanical Engineers (ASME) is a professional not-for-profit organization with more than 127,000 members promoting the art, science and practice of mechanical and multidisciplinary engineering and allied sciences. ASME develops codes and standards that enhance public safety, and provides lifelong l
24、earning and technical exchange opportunities benefiting the engineering and technology community. Visit www.asme.org for more information. The ASME Standards Technology, LLC (ASME ST-LLC) is a not-for-profit Limited Liability Company, with ASME as the sole member, formed in 2004 to carry out work re
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