ASME STP-PT-087-2018 YIELD STRENGTH VALUES UP TO MAXIMUM TEMPERATURE DESIGN.pdf
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1、YIELD STRENGTH VALUES UP TO MAXIMUM TEMPERATURE DESIGNSTP-PT-087STP-PT-087 YIELD STRENGTH VALUES UP TO MAXIMUM TEMPERATURE DESIGN Prepared by: Wolfgang Hoffelner RWH consult GmbH Date of Issuance: June 22, 2018 This publication was prepared by ASME Standards Technology, LLC (“ASME ST-LLC”) and spons
2、ored by The American Society of Mechanical Engineers (“ASME”). Neither ASME, ASME ST-LLC, the author, nor others involved in the preparation or review of this publication, nor any of their respective employees, members, or persons acting on their behalf, makes any warranty, express or implied, or as
3、sumes 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 herein to any specific commercial product, process, or service b
4、y 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 publication, or any agency thereof. The views and opinions of the authors, contributors and
5、 reviewers of the publication expressed herein do not necessarily reflect those of ASME ST-LLC or others involved in the preparation or review of this publication, or any agency thereof. ASME ST-LLC does not take any position with respect to the validity of any patent rights asserted in connection w
6、ith 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 advised that determination of the validity of any such p
7、atent 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 of this publication. ASME is the registered trademar
8、k 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 Two Park Avenue, New York, NY 10016-5990 ISBN No. 978-0-791
9、8-7242-0 Copyright 2018 ASME Standards Technology, LLC All Rights Reserved STP-PT-087: Yield Strength Values up to Maximum Temperature Design iii TABLE OF CONTENTS Foreword . viii Abstract ix Abbreviations and Acronyms . x 1 INTRODUCTION 1 2 STEELS 5 2.1 S20910 / XM-19/ 22Cr-13Ni-5Mn up to 1200F 5 2
10、.2 S30400/ 304/ 18Cr-8Ni up to 1500F 8 2.3 S30403/ 304L/18Cr-8Ni up to 1200F 11 2.4 S30908/ 309 S/ 23Cr-12Ni up to 1500F . 14 2.5 S31008/ 310 S/ 25Cr-20Ni up to 1500F . 17 2.6 S31600/SS 316/ 16Cr-12Ni-2Mo up to 1500F . 20 2.7 S31603/ 316L/ 16Cr-12Ni-2Mo up to 1200F . 22 2.8 S31635/ 316Ti/16Cr-12Ni-2
11、Mo-Ti up to 1500F 24 2.9 S31700/ SS317/and S31703/SS317 L/ 18Cr-13Ni-3Mo up to 1500F (1200F) 27 2.10 S32100/ SS321/ 18Cr-10Ni-Ti up to 1500F . 28 2.11 S34700/ SS347 and S34800/ SS348/ 18Cr-10Ni-Cb up to 1500F . 31 3 COPPER . 34 3.1 C23000 / Cu 230 / 85 Cu-15 Zn up to 500F . 34 3.2 C28000 / Cu 280 /
12、59 Cu-40Zn-0.07Fe-0.3Pb up to 500F . 35 3.3 C36500 / Cu 365 / 60Cu-39.4 Zn-0.6 Pb . 37 3.4 C44300 / Cu 443 C44400 / Cu 444 C44500 / Cu 445 up to 500F . 38 3.5 C46400 / Cu 464 C46500 / Cu-465 up to 500F 41 3.6 C64200 / Cu 642 / 91.2 Cu, 7.0 Al, 1.8 Si up to 500F . 42 3.7 C68700 / Cu 687 / 77.5 Cu, 20
13、.5 Zn, 2.0 Al, 0.1 As up to 500F 44 3.8 C70400 / Cu 704 / 92.4 Cu, 5.5 Ni, 1.5 Fe, 0.6 Mn up to 500F . 46 3.9 C71000 / Cu 710 / 79 Cu, 21 Ni up to 700F 47 4 NICKEL . 49 4.1 N02201 / Ni 201 up to 1200F . 49 4.2 N06002 / Ni X up to 1650F 52 4.3 N06022 up to 1250F . 55 4.4 N06600 / Ni 600 up to 1200F .
14、 58 4.5 Annealed 58 4.6 Hot Worked 61 4.7 Seamless Pipe 63 4.8 N06625 / Ni 625 SA up to 1600F. 65 4.9 N06625 / Ni 625 Ann up to 1200F . 68 4.10 N08330 / Ni 330 up to 1650F . 71 4.11 N08800 / Ni 800 up to 1500F . 74 4.12 N08810 / Ni 800H and N08811 / Ni 811 up to 1650F . 77 4.13 N10276 / Ni C276 up t
15、o 1500F 80 STP-PT-087: Yield Strength Values up to Maximum Temperature Design iv 4.14 N10003 / Ni N / Hastelloy N up to 1500F 83 Appendix A . 86 LIST OF FIGURES Figure 1-1: List of steels and required maximum temperatures . 2 Figure 1-2: Current ASME Y-1 data and data from the current new evaluation
16、 3 Figure 1-3: Matching current Y-1 data and new evaluation by shifting the new curve. Using 1.045 instead of 1.07 as constant in the polynomial for the new values . 3 Figure 1-4: Matching current Y-1 data and new evaluation by making a joint polynomial fit . 4 Figure 2-1: YS stress ratios from curr
17、ent ASME (2015) Y-1 Tables compared with literature data (Material: S20910 / XM-19/ 22Cr-13Ni-5Mn) . 5 Figure 2-2: Graphical representations of the customary Y-1 data S20910 / XM-19/ 22Cr-13Ni-5Mn 6 Figure 2-3: Graphical representations of the metric Y-1 data S20910 / XM-19/ 22Cr-13Ni-5Mn 6 Figure 2
18、-4: YS stress ratios (customary and metric) for XM-19 up to 1200 F . 7 Figure 2-5: YS stress ratios from current ASME (2015) Y-1 Tables compared with literature data (Material: S30400/ 304/ 18Cr-8Ni) . 8 Figure 2-6: YS stress ratios from current ASME (2015) Y-1 Tables compared with polynomial fit th
19、rough literature data . 8 Figure 2-7: Plot of proposed customary YS stress reduction factors for S30400. Y-1-new obtained using 1.07 instead of 1.1 in the polynomial 9 Figure 2-8: Plot of proposed metric YS stress reduction factors for S30400. Y-1-new obtained using 1.07 instead of 1.1 in the polyno
20、mial 9 Figure 2-9: YS stress ratios (customary and metric) for SS304 up to 1500 F. Y-1-new obtained using 1.07 instead of 1.1 in the polynomial 10 Figure 2-10: YS strength reduction factors from current ASME (2015)-Y-1 Tables compared with literature data (material: S30403) . 11 Figure 2-11: Polynom
21、ial fit through relevant data (material S30403) 11 Figure 2-12: Plot of proposed customary YS stress reduction factors for S304L. Y-1-new obtained using 1.07 instead of 1.1 in the polynomial 12 Figure 2-13: Plot of proposed metric YS stress reduction factors for S304L. Y-1-new obtained using 1.16 in
22、stead of 1.1 in the polynomial 12 Figure 2-14: YS stress ratios (customary and metric) for S304L up to 1200F. Y-1-new obtained using 1.16 instead of 1.1 in the polynomial 13 Figure 2-15: YS strength reduction factors from current ASME (2015)-Y-1 Tables compared with literature data (material: S30908
23、) . 14 Figure 2-16: Polynomial fit through relevant data (material S30908) 14 Figure 2-17: Plot of proposed customary YS stress reduction factors for S30908 . 15 Figure 2-18: Plot of proposed metric YS stress reduction factors for S30908 . 15 Figure 2-19: YS stress ratios (customary and metric) for
24、S30908 up to 1500F 16 Figure 2-20: YS strength reduction factors from current ASME (2015)-Y-1 Tables compared with literature data (material: S31008) . 17 Figure 2-21: Polynomial fit through relevant data (material: S31008) . 17 Figure 2-22: Plot of proposed customary YS stress reduction factors for
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