Structural integrity evaluation of CNG pressure vessel with defects caused by heat treatment using numerical analysis

Natural gas vehicles use natural gas as a raw material; thus, compared to conventional diesel vehicles, there is no soot or fine dust produced, the noise generated is half, and the amount of air pollution is one tenth. Despite a considerable increase in their demand, there is still much controversy...

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Published inJournal of mechanical science and technology Vol. 33; no. 11; pp. 5297 - 5302
Main Author Kim, Eui Soo
Format Journal Article
LanguageEnglish
Published Seoul Korean Society of Mechanical Engineers 01.11.2019
Springer Nature B.V
대한기계학회
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ISSN1738-494X
1976-3824
DOI10.1007/s12206-019-1021-7

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Abstract Natural gas vehicles use natural gas as a raw material; thus, compared to conventional diesel vehicles, there is no soot or fine dust produced, the noise generated is half, and the amount of air pollution is one tenth. Despite a considerable increase in their demand, there is still much controversy in terms of their safety, and safety-related accidents have frequently occurred in recent years. According to reports, most compressed natural gas (CNG) bus accidents are caused by the rupture of the pressure vessel, and the reason for this accident is that the containers show a high number of manufacturing defects. In the case of a metallic liner, the mechanical properties and rupture characteristics of the pressure vessel vary greatly depending on the method and conditions of the heat treatment process. Several accidents where pressure vessels have ruptured have been reported, and all these ruptures occurred owing to brittle fracture of the container because the mechanical properties, such as the tensile strength and the fatigue strength of the CNG vessel changed in comparison with the normal vessel owing to poor heat treatment processes. In this study, we compared and analyzed the structural integrity and fatigue characteristics of the normal vessel and the poorly heat-treated vessel under charging conditions and under an atmospheric environment, where the vessel is mounted on an actual CNG bus. This comparison is made through a heat convection and conduction analysis using SINDA/FLUENT and a structure and fatigue analysis using ADINA and winLIFE.
AbstractList Natural gas vehicles use natural gas as a raw material; thus, compared to conventional diesel vehicles, there is no soot or fine dust produced, the noise generated is half, and the amount of air pollution is one tenth. Despite a considerable increase in their demand, there is still much controversy in terms of their safety, and safety-related accidents have frequently occurred in recent years. According to reports, most compressed natural gas (CNG) bus accidents are caused by the rupture of the pressure vessel, and the reason for this accident is that the containers show a high number of manufacturing defects. In the case of a metallic liner, the mechanical properties and rupture characteristics of the pressure vessel vary greatly depending on the method and conditions of the heat treatment process. Several accidents where pressure vessels have ruptured have been reported, and all these ruptures occurred owing to brittle fracture of the container because the mechanical properties, such as the tensile strength and the fatigue strength of the CNG vessel changed in comparison with the normal vessel owing to poor heat treatment processes. In this study, we compared and analyzed the structural integrity and fatigue characteristics of the normal vessel and the poorly heat-treated vessel under charging conditions and under an atmospheric environment, where the vessel is mounted on an actual CNG bus. This comparison is made through a heat convection and conduction analysis using SINDA/FLUENT and a structure and fatigue analysis using ADINA and winLIFE. KCI Citation Count: 0
Natural gas vehicles use natural gas as a raw material; thus, compared to conventional diesel vehicles, there is no soot or fine dust produced, the noise generated is half, and the amount of air pollution is one tenth. Despite a considerable increase in their demand, there is still much controversy in terms of their safety, and safety-related accidents have frequently occurred in recent years. According to reports, most compressed natural gas (CNG) bus accidents are caused by the rupture of the pressure vessel, and the reason for this accident is that the containers show a high number of manufacturing defects. In the case of a metallic liner, the mechanical properties and rupture characteristics of the pressure vessel vary greatly depending on the method and conditions of the heat treatment process. Several accidents where pressure vessels have ruptured have been reported, and all these ruptures occurred owing to brittle fracture of the container because the mechanical properties, such as the tensile strength and the fatigue strength of the CNG vessel changed in comparison with the normal vessel owing to poor heat treatment processes. In this study, we compared and analyzed the structural integrity and fatigue characteristics of the normal vessel and the poorly heat-treated vessel under charging conditions and under an atmospheric environment, where the vessel is mounted on an actual CNG bus. This comparison is made through a heat convection and conduction analysis using SINDA/FLUENT and a structure and fatigue analysis using ADINA and winLIFE.
Author Kim, Eui Soo
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crossref_primary_10_1021_acs_energyfuels_1c00617
Cites_doi 10.3795/KSME-A.2013.37.11.1415
10.3795/KSME-A.2014.38.11.1283
10.3795/KSME-A.2011.35.4.439
10.4028/www.scientific.net/AMM.893.1
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Keywords Natural gas vehicle
CNG pressure vessel
Computational numerical analysis
SINDA/FLUENT
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Kim (CR4) 2011; 35
Kim, Kim, Kim (CR7) 2011; 26
Yoon, Yoon (CR1) 2008; 12
Park (CR2) 2004; 19
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E S Kim (1021_CR7) 2011; 26
J M Yang (1021_CR3) 2011; 15
E S Kim (1021_CR8) 2014; 38
E S Kim (1021_CR10) 2019; 839
J K Yoon (1021_CR1) 2008; 12
E S Kim (1021_CR4) 2011; 35
E S Kim (1021_CR9) 2013; 37
E S Kim (1021_CR5) 2017; 32
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SubjectTerms Accidents
Compressed gas
Compressed natural gas
Conduction heating
Containers
Control
Dynamical Systems
Engineering
Fatigue strength
Heat treatment
Industrial and Production Engineering
Manufacturing defects
Mechanical Engineering
Mechanical properties
Natural gas
Natural gas vehicles
Numerical analysis
Pressure vessels
Rupturing
Safety
Soot
Structural integrity
Tensile strength
Vibration
기계공학
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Title Structural integrity evaluation of CNG pressure vessel with defects caused by heat treatment using numerical analysis
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