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JEOL
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Toshiba America Electronic Components Inc
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Mediatech
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KEYENCE
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2026-06
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Tata Steel Ltd
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Ansteel Group Corporation
x80 pipeline steel ![]() X80 Pipeline Steel, supplied by Ansteel Group Corporation, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more https://www.bioz.com/result/x80 pipeline steel/product/Ansteel Group Corporation Average 90 stars, based on 1 article reviews
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2026-06
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Wypall Inc
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Jiancheng Inc
x80 steel ![]() X80 Steel, supplied by Jiancheng Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more https://www.bioz.com/result/x80 steel/product/Jiancheng Inc Average 90 stars, based on 1 article reviews
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Sony
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Shanghai Baosteel Group
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Journal: Archives of Metallurgy and Materials
Article Title: Effect of Microstructural Constituents on Hydrogen Embrittlement Resistance of API X60, X70, and X80 Pipeline Steels
doi: 10.24425/amm.2024.149757
Figure Lengend Snippet: Fig. 1. (a-c) Scanning electron microscope (SEM) micrographs and (d-f) optical micrographs of microstructures of the API X60, X70, and X80 pipeline steels, respectively [11]. Longitudinal-transverse (L-S) planes are observed. Polygonal ferrite (PF), acicular ferrite (AF), granular bainite (GB), and bainitic ferrite (BF) are marked in Figs. 1 (a-c). Figs. 1 (d-f) show the microstructure etched in Lepera solution, and martensite-austenite (MA) constituents are indicated by the white arrow. The volume fraction of the MA constituent in the API X60, X70, and X80 pipeline steels was measured to be 4.3%, 6.0%, and 7.8%, respectively
Article Snippet: The microstructures of the X60, X70, and
Techniques: Microscopy
Journal: Archives of Metallurgy and Materials
Article Title: Effect of Microstructural Constituents on Hydrogen Embrittlement Resistance of API X60, X70, and X80 Pipeline Steels
doi: 10.24425/amm.2024.149757
Figure Lengend Snippet: Fig. 2. Electron backscatter diffraction (EBSD) inverse pole figure (IPF) and grain boundary misorientation maps of the API X60, X70, and X80 pipeline steels [11]. Longitudinal-transverse (L-S) planes are observed. Polygonal ferrite (PF), acicular ferrite (AF), granular bainite (GB), and bainitic ferrite (BF) are marked in IPF maps. In grain boundary misorientation maps, the angle ranges of blue and black lines are 5 ~ 15°, and >15°, respectively. The grain size and fraction of the high-angle grain boundary of the API X60, X70, and X80 pipeline steels were calculated to be 20.5 μm and 4.3%, 17.6 μm and 6.0%, and 16.1 μm and 7.8%, respectively
Article Snippet: The microstructures of the X60, X70, and
Techniques:
Journal: Archives of Metallurgy and Materials
Article Title: Effect of Microstructural Constituents on Hydrogen Embrittlement Resistance of API X60, X70, and X80 Pipeline Steels
doi: 10.24425/amm.2024.149757
Figure Lengend Snippet: Fig. 3. Engineering stress-strain curves before and after electrochemi- cal hydrogen charging of the API X60, X70, and X80 pipeline steels. The specimen before electrochemical hydrogen charging was marked as Non-charged, and the specimen after electrochemical hydrogen charging was referred to as H-charged. The relative total elongation of the API X60, X70, and X80 pipeline steels was measured to be 0.99, 1.02, and 0.72, respectively
Article Snippet: The microstructures of the X60, X70, and
Techniques:
Journal: Archives of Metallurgy and Materials
Article Title: Effect of Microstructural Constituents on Hydrogen Embrittlement Resistance of API X60, X70, and X80 Pipeline Steels
doi: 10.24425/amm.2024.149757
Figure Lengend Snippet: Fig. 5. Scanning electron microscope (SEM) fractographs for tensile specimens of the API X60, X70, and X80 pipeline steels before and after electrochemical hydrogen charging. The specimen before electrochemical hydrogen charging was marked as Non-charged, and the specimen after electrochemical hydrogen charging was referred to as H-charged. The yellow arrow indicates the quasi-cleavage fracture features in the API X80 pipeline steel
Article Snippet: The microstructures of the X60, X70, and
Techniques: Microscopy
Journal: Archives of Metallurgy and Materials
Article Title: Effect of Microstructural Constituents on Hydrogen Embrittlement Resistance of API X60, X70, and X80 Pipeline Steels
doi: 10.24425/amm.2024.149757
Figure Lengend Snippet: Fig. 4. Scanning electron microscope (SEM) micrograph of the API X80 pipeline steel after electrochemical hydrogen charging for 24 hours at the current density of 150 A/m2 in the 3% NaCl solution. After electro- chemical hydrogen charging, the specimen was maintained in a 4.3 mM K[Ag(CN)2] solution for 24 hours. The yellow arrow in Fig. 4 shows the localized precipitation of silver clusters surrounding martensite- austenite (MA) constituents
Article Snippet: The microstructures of the X60, X70, and
Techniques: Microscopy
Journal: Materials
Article Title: Research on Hydrogen-Induced Induced Cracking Sensitivity of X80 Pipeline Steel under Different Heat Treatments
doi: 10.3390/ma17091953
Figure Lengend Snippet: CCT diagrams of X80 pipeline steel calculated using JMatPro.
Article Snippet: The commercial
Techniques:
Journal: Materials
Article Title: Research on Hydrogen-Induced Induced Cracking Sensitivity of X80 Pipeline Steel under Different Heat Treatments
doi: 10.3390/ma17091953
Figure Lengend Snippet: Hydrogen permeation kinetic parameters of X80 heat-treated samples.
Article Snippet: The commercial
Techniques:
Journal: Materials
Article Title: Research on Hydrogen-Induced Induced Cracking Sensitivity of X80 Pipeline Steel under Different Heat Treatments
doi: 10.3390/ma17091953
Figure Lengend Snippet: Number of hydrogen trapping sites of X80 pipeline steel after heat treatment.
Article Snippet: The commercial
Techniques: