ASME STP-PT-003-2005 HYDROGEN STANDARDIZATION INTERIM REPORT For Tanks Piping and Pipelines.pdf
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1、Designator: Meta Bold 24/26Revision Note: Meta Black 14/16STP/PT-003HYDROGENSTANDARDIZATIONINTERIM REPORTForTanks, Piping, and PipelinesSTP/PT-003 HYDROGEN STANDARDIZATION INTERIM REPORT for Tanks, Piping, and Pipelines Date of Issuance: June 6, 2005 This report was prepared as an account of work sp
2、onsored by the National Renewable Energy Laboratory (NREL) and the American Society of Mechanical Engineers (ASME). Neither ASME, ASME Standards Technology, LLC (ASME ST-LLC), JBDIMMICK LLC, Air Products and Chemicals Inc., nor others involved in the preparation or review of this report, nor any of
3、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, or usefulness of any information, apparatus, product, or process disclosed, or represents that its use woul
4、d 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 constitute or imply its endorsement, recommendation, or favoring by the ASME, ASME ST-LLC or others involved
5、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 ASME, ASME ST-LLC, or others involved in the preparation or review of this report, or any agency there
6、of. 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 a publication against liability for infringement of any applicable Letters Patent, nor assu
7、mes 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 responsibility. Participation by federal agency representative(s) or person(s) affiliated with industr
8、y 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 reproduced in any form, in an electronic retrieval system or otherwise, without the prior written pe
9、rmission of the publisher. ASME Standards Technology, LLC Three Park Avenue, New York, NY 10016-5990 ISBN No. 0-7918-2992-8 Copyright 2005 by ASME Standards Technology, LLC All Rights Reserved H2Standardization Interim Report STP/PT-003 TABLE OF CONTENTS FOREWORD x ABSTRACT .xii PART I - Review of E
10、xisting Reference Standards to Support New Code Rules for High-Pressure Hydrogen Vessels 1 1 INTRODUCTION . 2 1.1 General Background of Code Work for 15,000 psi Hydrogen Vessels. 2 1.2 Reference Standards 3 1.3 Steel Cylinder Designs 3 1.4 Composite Cylinder Designs. 4 1.5 Stationary Storage Vessels
11、 4 1.6 Performance Based vs. Prescriptive Standards . 5 1.7 Reference Performance Based Standards 5 1.8 Potential for a New Performance Code . 6 1.9 Performance Standards Dependent on Design Calculations . 6 1.10 Potential Design Code for Hoop-Wrapped Vessels. 6 1.11 Potential for a Full-Composite C
12、ylinder Design Code 7 2 COMPARISON OF OPERATING MARGINS FOR EXISTING STANDARDS . 9 2.1 Operating Margin Definition. 9 2.2 Maximum Normal Operating Pressure (MNOP) 9 2.3 ASME Design Pressure and MNOP 9 2.4 MNOP for Non-Code Reference Standards 10 2.5 MNOP by Vessel Usage 10 2.5.1 ASME Storage Vessel
13、MNOP . 10 2.5.2 DOT Compressed Gas Cylinder MNOP 10 2.5.3 MNOP for ISO Gas Cylinders 11 2.5.4 MNOP for Vehicle Fuel Containers. 11 2.6 Normal Operating Pressure (NOP) 12 2.7 Maximum Pressure During Upsets or Fire Exposure 12 2.8 Burst Pressure 13 2.8.1 Burst Pressure of Composite Cylinders and Vesse
14、ls 13 2.8.2 Burst Pressure of Metal Cylinders and Vessels 14 2.8.3 Burst Pressure for DOT Metal Gas Cylinders 16 2.9 Burst Pressure of ISO Metal Gas Cylinders 17 2.10 Summary of Margin Definitions 17 2.11 Composite Stress Ratio Margins for Composites 17 2.11.1 DOT-3AA Specification Margin 17 2.11.2
15、DOT-3AA Margins Further Reduced. 18 2.12 Findings from Comparison of Margins between Different Standards. 18 2.13 Conclusions from Comparison of Margins 20 2.13.1 DOT FRP-1 Anomaly 20 2.13.2 Selection of Calculated over Design Margins for Metal Designs 20 iii STP/PT-003 H2Standardization Interim Rep
16、ort 2.13.3 Primary Factors Affecting Margins 21 2.14 Summary of Comparative Margins 23 2.14.1 ASME Code Vessels.23 2.14.2 Gas Cylinders for Transportation23 2.14.3 Gas Cylinders for Vehicle Fuel Tanks23 3 MANUFACTURING AND IN-SERVICE INSPECTION AND TEST PRACTICES IMPACTING MARGINS 24 3.1 Review of E
17、xisting Inspection.24 3.2 Review of Existing Inspection Techniques for Metal Cylinders .24 3.3 Review of Existing Inspection Techniques for Composite Cylinders .27 3.4 Applicability and Limitations of Various NDE Techniques to Specific Vessels 28 3.5 Metal Monobloc or Layered Vessels of Steel or Non
18、magnetic Alloys .29 3.6 Composite Hoop-Wrapped Vessels with Seamless or Welded Liners of Steel or Nonmagnetic Alloys 30 3.7 Composite Full-Wrapped Vessels with Seamless or Welded Liners of Steel or Nonmagnetic Alloys 31 3.8 Composite Full-Wrapped Vessels with Seamless or Welded Nonmetallic Liners an
19、d Metal Bosses of Steel or Nonmagnetic Alloys 31 3.9 Overall Recommendations.32 3.10 Recommendations for Inspection of All-Metal Cylinders at Manufacture 33 3.11 Recommendations for In-service Inspection of All-Metal Cylinders 33 3.12 Recommendations for Inspection of Composite Cylinders at Manufact
20、ure.34 3.13 Recommendations for In-service Inspection of Composite Cylinders.34 4 RECOMMENDED MARGINS FOR NEW CODE RULES .36 4.1 Factors Not Addressed by Margin to Burst .36 4.1.1 Pressure Control36 4.1.2 Material Degradation 37 4.1.3 Cyclic Fatigue.37 4.1.4 Fire Exposure37 4.1.5 Impact Damage to Co
21、mposites .37 4.2 Minimum Recommended Gas Cylinder Margins for Materials Not Susceptible to Creep, Stress Rupture, or External Impact Induced Fracture (Metals)38 4.3 Minimum Gas Cylinder Margins for Materials Susceptible to Creep, Stress Rupture, or Impact Induced Fracture (Composite Reinforced Cylin
22、ders) 38 4.3.1 Design of Composite Cylinders38 4.3.2 Recommended Margins for Types 3 and 4 Full-Wrapped Metal-Lined Designs Using Glass or Aramid Composite .41 4.3.3 Recommended Margins for Type 2 Hoop-Wrapped Designs.42 4.3.4 Recommended Margins for Type 3 and 4 Carbon Composite Vessels 44 4.3.5 Bu
23、rst Design Margins for Carbon Composite Designs.44 5 REQUIREMENT FOR SEPARATE DESIGN MARGINS FOR FATIGUE50 5.1 ASME Code Fatigue Rules50 5.2 DOT Composite Fatigue Margins50 5.3 DOT-3AA Metal Fatigue Margins.51 iv H2Standardization Interim Report STP/PT-003 5.4 NGV2 Fatigue Design Rules. 52 5.5 ISO F
24、uel Cylinder Fatigue Design Rules 53 5.6 ISO Metal Gas Cylinder Design Rules 53 5.7 ISO Composite Gas Cylinder Fatigue Design Rules. 54 5.8 ASME Code Case 2390-1 Fatigue Design Rules 54 6 EVALUATION OF MARGINS FOR 15,000 PSI METAL AND COMPOSITE VESSELS. 56 6.1 Use of Reference Standards 56 6.2 Desig
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