ASME STP-PT-014-2008 IMPROVEMENT OF ASME NH FOR GRADE 91 NEGLIGIBLE CREEP AND CREEP FATIGUE《氢气基础设施应用复合容器标准制定的数据支持》.pdf
《ASME STP-PT-014-2008 IMPROVEMENT OF ASME NH FOR GRADE 91 NEGLIGIBLE CREEP AND CREEP FATIGUE《氢气基础设施应用复合容器标准制定的数据支持》.pdf》由会员分享,可在线阅读,更多相关《ASME STP-PT-014-2008 IMPROVEMENT OF ASME NH FOR GRADE 91 NEGLIGIBLE CREEP AND CREEP FATIGUE《氢气基础设施应用复合容器标准制定的数据支持》.pdf(70页珍藏版)》请在麦多课文档分享上搜索。
1、Designator: Meta Bold 24/26Revision Note: Meta Black 14/16STP-PT-014DATA SUPPORTING COMPOSITE TANK STANDARDS DEVELOPMENTFOR HYDROGEN INFRASTRUCTURE APPLICATIONSSTP-PT-014 DATA SUPPORTING COMPOSITE TANK STANDARDS DEVELOPMENT FOR HYDROGEN INFRASTRUCTURE APPLICATIONS Prepared by: Norman L. Newhouse, Ph
2、.D., P.E. Lincoln Composites Craig Webster, P. Eng. Powertech Labs Date of Issuance: February 10, 2008 This report was prepared as an account of work sponsored by National Renewable Energy Laboratory (NREL) and the ASME Standards Technology, LLC (ASME ST-LLC). Neither ASME, ASME ST-LLC, NREL, Lincol
3、n Composites and Powertech Labs, nor others involved in the preparation or review of this report, nor any of their respective employees, members, or persons acting on their behalf, makes any warranty, express or implied, or assumes any legal liability or responsibility for the accuracy, completeness
4、, 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 by trade name, trademark, manufacturer, or otherwise does not necessarily
5、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. The views and opinions of the authors, contributors, reviewers of the report expressed herein do not necessarily reflect those of ASM
6、E 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 validity of any patent rights asserted in connection with any items mentioned in this document, and does not undertake to insure anyone utilizing
7、 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 patent rights, and the risk of infringement of such rights, is entirely their own responsibi
8、lity. 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 trademark of The American Society of Mechanical Engineers. No part of this document may be reproduc
9、ed in any form, in an electronic retrieval system or otherwise, without the prior written permission of the publisher. ASME Standards Technology, LLC Three Park Avenue, New York, NY 10016-5990 ISBN No. 0-7918-3142-6 Copyright 2008 by ASME Standards Technology, LLC All Rights Reserved Data Supporting
10、 Composite Tank Standards Development STP-PT-014 iii TABLE OF CONTENTS FOREWORD v ABSTRACT vi 1 HISTORY OF SAFETY EXPERIENCE OF COMPOSITE PRESSURE VESSELS 1 1.1 Aerospace/Defense Use of Composite Pressure Vessels 1 1.1.1 Applications . 1 1.1.2 Materials.1 1.1.3 Standards 2 1.1.4 Field service . 2 1.
11、2 Commercial use of Composite Cylinders 2 1.2.1 Applications . 2 1.2.2 Materials.3 1.2.3 Standards 3 1.2.4 Field Service. 4 1.3 Composite Containers for Natural Gas and Hydrogen Vehicle Applications . 4 1.3.1 Applications . 4 1.3.2 Cylinder Construction 5 1.3.3 Materials.6 1.3.4 Standards 7 1.3.5 Fi
12、eld Service. 8 2 DEVELOPMENT OF ASME AND OTHER STANDARDS. 13 2.1 Background Data Supports Standards Development. 13 2.2 Performance vs. Design Standards 13 2.2.1 General Issues 13 2.2.2 Safety Factors. 14 2.3 Testing to Validate Requirements . 17 2.3.1 FMEA Approach to Validation Testing . 17 2.3.2
13、Materials Testing 17 2.3.3 Cylinder testing 20 2.4 Batch and Acceptance Testing 30 3 RECOMMENDATIONS FOR FATIGUE TESTING 33 3.1 ASME Section VIII Division 3, Para KD-1260 Approach . 33 3.2 Composite Cyclic Fatigue . 33 3.3 Liner Cyclic Fatigue 35 3.4 Composite vs. Liner Fatigue Limits 36 4 STRESS RU
14、PTURE TESTING 37 4.1 Stress Rupture Studies. 37 4.2 Field Testing and Experience 39 4.3 Methods for Accelerating Tests and Extrapolating Data. 40 5 SUMMARY AND RECOMMENDATIONS 42 REFERENCES. 43 ANNEX A MATERIAL TEST PROCEDURES . 46 STP-PT-014 Data Supporting Composite Tank Standards Development iv A
15、NNEX B CYLINDER QUALIFICATION TEST PROCEDURES 49 ANNEX C BATCH TESTS55 FIGURES56 ACKNOWLEDGMENTS 61 ABBREVIATIONS AND ACRONYMS .62 LIST OF TABLES Table 1 - Typical Fiber Properties 6 Table 2 - Field Failures.9 Table 3 - Fiber Stress Ratios.15 Table 4 - Recommended Material Testing19 Table 5 - Recomm
16、ended Cylinder Qualification Testing .28 Table 6 - Qualification for Design Changes .29 Table 7 - Recommended Batch Testing32 LIST OF FIGURES Figure 1 - Composite Cyclic Fatigue Lives 34 Figure 2 - Carbon Composite Fatigue Life vs. Load Level 35 Figure 3 - Glass Composite Strand Stress Rupture Desig
17、n Chart.37 Figure 4 - Maximum Likelihood Estimates of Lifetimes of Aramid/Epoxy for Vessels, with Quantile Probabilities38 Figure 5 - Carbon Composite Strand Stress Rupture Design Chart39 Figure 6 - All-composite fuel tank impacted by bridge (front view)56 Figure 7 - All-Composite Fuel Tank Impacted
18、 by Bridge (top view).56 Figure 8 - All-Composite Fuel Tank Impacted by Curb.57 Figure 9 - All-Composite Fuel Tank Dropped from Vehicle57 Figure 10 - All-Composite Tank with Embedded Debris .58 Figure 11 - Hijacked NGV Bus.58 Figure 12 - Bus with Fire in Engine Compartment.59 Figure 13 - NGV Bus wit
19、h Fire Damage 59 Figure 14 - All-Composite Fuel Containers that are Roof Mounted in Buses60 Figure 15 - All-Composite Fuel Containers that are Floor Mounted on Buses 60 Data Supporting Composite Tank Standards Development STP-PT-014 v FOREWORD Commercialization of hydrogen fuel cells, in particular
20、fuel cell vehicles, will require development of an extensive hydrogen infrastructure comparable to that which exists today for petroleum. This infrastructure must include the means to safely and efficiently generate, transport, distribute, store and use hydrogen as a fuel. Standardization of pressur
21、e retaining components, such as tanks, piping and pipelines, will enable hydrogen infrastructure development by establishing confidence in the technical integrity of products. Since 1884, the American Society of Mechanical Engineers (ASME) has been developing codes and standards (C standards used an
22、d field service issues. The use of performance-based requirements is discussed, as is the background of safety factors used for various reinforcing fibers. Recommendations are made for validation testing of materials and pressure vessels, with consideration for failure modes and effects analysis (FM
23、EA) involving the field use of the vessels. Cyclic fatigue and stress rupture are discussed, with examples of laboratory testing and correlation from field experience. Data Supporting Composite Tank Standards Development STP-PT-014 1 1 HISTORY OF SAFETY EXPERIENCE OF COMPOSITE PRESSURE VESSELS Note:
24、 Different industries use different nomenclature for pressure vessels and their components or features. This report attempts to reflect the terminology of the industry being discussed, although terms may be used interchangeably. The ASME boiler code and the industry addressing stationary units gener
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