Research on the Creep and Fatigue Evaluation Method of the Double-Layered Annulus Metal Hydride Bed Combined with Numerical Modeling and ASME Code

Applied to a hydrogen absorption-desorption cycle, the hydrogen storage bed will experience higher exchange temperatures and variety of mechanical load. Due to the complex structure of the double-layered annulus metal hydride bed and the importance of thermal stress on the failure of a metal hydride...

Full description

Saved in:
Bibliographic Details
Main Authors: Ping Zhao, XiangGuo Zeng, Huayan Chen, Xiuming Zhang
Format: Article
Language:English
Published: Wiley 2022-01-01
Series:Advances in Materials Science and Engineering
Online Access:http://dx.doi.org/10.1155/2022/9808782
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1832552834322661376
author Ping Zhao
XiangGuo Zeng
Huayan Chen
Xiuming Zhang
author_facet Ping Zhao
XiangGuo Zeng
Huayan Chen
Xiuming Zhang
author_sort Ping Zhao
collection DOAJ
description Applied to a hydrogen absorption-desorption cycle, the hydrogen storage bed will experience higher exchange temperatures and variety of mechanical load. Due to the complex structure of the double-layered annulus metal hydride bed and the importance of thermal stress on the failure of a metal hydride bed, the numerical modeling of its hot spot stress was carefully carried out. Moreover, in this paper, an analysis method considering the limit failure mode condition is proposed to deal with the stress analysis in the process of hydrogen absorption and desorption. According to the proposed analysis method, the maximum stress of thermal-structural coupling in the process of hydrogen absorption occurs at about 1/3 along the diameter direction and at the geometric mutation of the connection between the cooling pipe and the main body of the hydrogen storage bed in the process of hydrogen desorption. Apart from that, the hydrogen storage bed is also subjected to thermal-mechanical fatigue by the iterative process of absorption and desorption, and its operating temperature range is in the thermal creep temperature region. Based on the distribution of the stress and temperature, evaluation hot sites were selected and the ASME-NB and ASME-NH codes were used to evaluate fatigue and fatigue creep, respectively. The evaluation showed that the fatigue damage generated during its service life is small, while the creep damage is relatively large and the total damage generated during the service life of the hydrogen storage bed is within the safe range. Aiming at the structure and complex process of a double-layer hydrogen storage bed, creep and fatigue evaluation methods are proposed, various failure modes of hydrogen storage bed are highlighted, and the relationship between process parameters and life is established.
format Article
id doaj-art-2ded2b5c372f4c0ca7acae9d025597f7
institution Kabale University
issn 1687-8442
language English
publishDate 2022-01-01
publisher Wiley
record_format Article
series Advances in Materials Science and Engineering
spelling doaj-art-2ded2b5c372f4c0ca7acae9d025597f72025-02-03T05:57:38ZengWileyAdvances in Materials Science and Engineering1687-84422022-01-01202210.1155/2022/9808782Research on the Creep and Fatigue Evaluation Method of the Double-Layered Annulus Metal Hydride Bed Combined with Numerical Modeling and ASME CodePing Zhao0XiangGuo Zeng1Huayan Chen2Xiuming Zhang3Key Laboratory of Deep Underground Science and Engineering (Ministry of Education)Key Laboratory of Deep Underground Science and Engineering (Ministry of Education)Key Laboratory of Deep Underground Science and Engineering (Ministry of Education)Key Laboratory of Deep Underground Science and Engineering (Ministry of Education)Applied to a hydrogen absorption-desorption cycle, the hydrogen storage bed will experience higher exchange temperatures and variety of mechanical load. Due to the complex structure of the double-layered annulus metal hydride bed and the importance of thermal stress on the failure of a metal hydride bed, the numerical modeling of its hot spot stress was carefully carried out. Moreover, in this paper, an analysis method considering the limit failure mode condition is proposed to deal with the stress analysis in the process of hydrogen absorption and desorption. According to the proposed analysis method, the maximum stress of thermal-structural coupling in the process of hydrogen absorption occurs at about 1/3 along the diameter direction and at the geometric mutation of the connection between the cooling pipe and the main body of the hydrogen storage bed in the process of hydrogen desorption. Apart from that, the hydrogen storage bed is also subjected to thermal-mechanical fatigue by the iterative process of absorption and desorption, and its operating temperature range is in the thermal creep temperature region. Based on the distribution of the stress and temperature, evaluation hot sites were selected and the ASME-NB and ASME-NH codes were used to evaluate fatigue and fatigue creep, respectively. The evaluation showed that the fatigue damage generated during its service life is small, while the creep damage is relatively large and the total damage generated during the service life of the hydrogen storage bed is within the safe range. Aiming at the structure and complex process of a double-layer hydrogen storage bed, creep and fatigue evaluation methods are proposed, various failure modes of hydrogen storage bed are highlighted, and the relationship between process parameters and life is established.http://dx.doi.org/10.1155/2022/9808782
spellingShingle Ping Zhao
XiangGuo Zeng
Huayan Chen
Xiuming Zhang
Research on the Creep and Fatigue Evaluation Method of the Double-Layered Annulus Metal Hydride Bed Combined with Numerical Modeling and ASME Code
Advances in Materials Science and Engineering
title Research on the Creep and Fatigue Evaluation Method of the Double-Layered Annulus Metal Hydride Bed Combined with Numerical Modeling and ASME Code
title_full Research on the Creep and Fatigue Evaluation Method of the Double-Layered Annulus Metal Hydride Bed Combined with Numerical Modeling and ASME Code
title_fullStr Research on the Creep and Fatigue Evaluation Method of the Double-Layered Annulus Metal Hydride Bed Combined with Numerical Modeling and ASME Code
title_full_unstemmed Research on the Creep and Fatigue Evaluation Method of the Double-Layered Annulus Metal Hydride Bed Combined with Numerical Modeling and ASME Code
title_short Research on the Creep and Fatigue Evaluation Method of the Double-Layered Annulus Metal Hydride Bed Combined with Numerical Modeling and ASME Code
title_sort research on the creep and fatigue evaluation method of the double layered annulus metal hydride bed combined with numerical modeling and asme code
url http://dx.doi.org/10.1155/2022/9808782
work_keys_str_mv AT pingzhao researchonthecreepandfatigueevaluationmethodofthedoublelayeredannulusmetalhydridebedcombinedwithnumericalmodelingandasmecode
AT xiangguozeng researchonthecreepandfatigueevaluationmethodofthedoublelayeredannulusmetalhydridebedcombinedwithnumericalmodelingandasmecode
AT huayanchen researchonthecreepandfatigueevaluationmethodofthedoublelayeredannulusmetalhydridebedcombinedwithnumericalmodelingandasmecode
AT xiumingzhang researchonthecreepandfatigueevaluationmethodofthedoublelayeredannulusmetalhydridebedcombinedwithnumericalmodelingandasmecode