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Haitao Cui, Zhanjie Gao, Haicheng Liang
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No local reference links have been materialized yet.
No local citing links have been materialized yet.
Review: Strengthening and toughening mechanisms of high-strength steels for deep-sea pressure vessel hulls
10.1007/s10853-025-11354-y · 2025
Advances in deep-sea scientific experiment equipment
10.15302/j-sscae-2024.02.004 · 2024
Effects of alloying elements and microstructure on the susceptibility of the welded HSLA steel to hydrogen-induced cracking and sulfide stress cracking
10.1016/j.msea.2008.11.064 · 2009
Investigation on the Weldability of Developed High-Strength Hull Structure Steel
2024
Development and Certification of HSLA-100 Steel for Naval Ship Construction
10.1111/j.1559-3584.1990.tb02632.x · 1990
Effects of heat input on microstructure and fracture toughness of simulated coarse-grained heat affected zone for HSLA steels
10.1016/j.matchar.2019.109818 · 2019
10.3390/met15020150
10.3390/met15020150
10.3390/nano14161335
10.3390/nano14161335
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Alloy and Composition Dependence of Hydrogen Embrittlement Susceptibility in High-Strength Steel Fasteners
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Role of Microstructure, Composition and Hardness in Resisting Hydrogen Embrittlement of Fastener Grade Steels
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A Mechanistic Theory of Hydrogen Embrittlement of Steels
10.1002/bbpc.19720760864 · 1972
A New Model for Hydrogen-Assisted Cracking (Hydrogen “Embrittlement”)
10.1007/bf02642048 · 1972
Hydrogen-Enhanced Localized Plasticity—A Mechanism for Hydrogen-Related Fracture
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Hydrogen-Enhanced-Plasticity Mediated Decohesion for Hydrogen-Induced Intergranular and “Quasi-Cleavage” Fracture of Lath Martensitic Steels
10.1016/j.jmps.2017.12.016 · 2018
Hydrogen Embrittlement Phenomena and Mechanisms
10.1515/corrrev-2012-0502 · 2012
Effect of Microstructure and Alloy Chemistry on Hydrogen Embrittlement of Precipitation-Hardened Ni-Based Alloys
10.1007/s11661-018-4483-9 · 2018
Hydrogen embrittlement in nickel-based superalloy 718: Relationship between γ′ + γ″ precipitation and the fracture mode
10.1016/j.ijhydene.2015.07.053 · 2015
Review on the design of high-strength and hydrogen-embrittlement-resistant steels
10.1007/s12613-024-2900-1 · 2024
Hydrogen embrittlement in nickel, visited by first principles modeling, cohesive zone simulation and nanomechanical testing
10.1016/j.ijhydene.2015.06.069 · 2015
Effect of Aging Treatment on Hydrogen Embrittlement of Drawn Pearlitic Steel Wire
10.2355/isijinternational.isijint-2015-735 · 2016
Effect of morphology of copper precipitation particles on hydrogen embrittlement behavior in Cu-added ultra low carbon steel
10.2320/matertrans.43.2213 · 2002
Response of hydrogen desorption and hydrogen embrittlement to precipitation of nanometer-sized copper in tempered martensitic low-carbon steel
10.1007/s11837-019-03330-0 · 2019
Novel Cu-bearing high-strength pipeline steels with excellent resistance to hydrogen-induced cracking
10.1016/j.matdes.2015.12.029 · 2016
Hydrogen trapping and desorption of dual precipitates in tempered low-carbon martensitic steel
10.1016/j.actamat.2020.06.046 · 2020
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Reducing Grain Boundary, Dislocation Line and Vacancy Formation Energies by Solute Segregation: II. Experimental Evidence and Consequences
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Reducing Grain Boundary, Dislocation Line and Vacancy Formation Energies by Solute Segregation. I. Theoretical Background
10.1016/j.actamat.2007.05.047 · 2007
Hydrogen-Induced Intergranular Failure in Nickel Revisited
10.1016/j.actamat.2012.01.040 · 2012
The Role of Hydrogen in Hydrogen Embrittlement Fracture of Lath Martensitic Steel
10.1016/j.actamat.2012.06.040 · 2012
Hydrogen-Induced Intergranular Failure of Iron
10.1016/j.actamat.2014.01.060 · 2014
Effects of Nb and Mo Alloying on Resistance to Hydrogen Embrittlement in 1.9 GPa-Grade Hot-Stamping Steels
10.1016/j.msea.2020.139656 · 2020
10.1016/b978-0-08-100270-4.00013-5
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10.1016/b978-0-08-100270-4.00013-5
10.1016/b978-0-08-100270-4.00013-5 · doi-reference
Effects of Nb and Mo Alloying on Resistance to Hydrogen Embrittlement in 1.9 GPa-Grade Hot-Stamping Steels
10.1016/j.msea.2020.139656 · doi-reference
Hydrogen-Induced Intergranular Failure of Iron
10.1016/j.actamat.2014.01.060 · doi-reference
The Role of Hydrogen in Hydrogen Embrittlement Fracture of Lath Martensitic Steel
10.1016/j.actamat.2012.06.040 · doi-reference
Hydrogen-Induced Intergranular Failure in Nickel Revisited
10.1016/j.actamat.2012.01.040 · doi-reference
Reducing Grain Boundary, Dislocation Line and Vacancy Formation Energies by Solute Segregation. I. Theoretical Background
10.1016/j.actamat.2007.05.047 · doi-reference
Reducing Grain Boundary, Dislocation Line and Vacancy Formation Energies by Solute Segregation: II. Experimental Evidence and Consequences
10.1016/j.actamat.2007.05.033 · doi-reference
Hydrogen trapping and desorption of dual precipitates in tempered low-carbon martensitic steel
10.1016/j.actamat.2020.06.046 · doi-reference
Novel Cu-bearing high-strength pipeline steels with excellent resistance to hydrogen-induced cracking
10.1016/j.matdes.2015.12.029 · doi-reference
Response of hydrogen desorption and hydrogen embrittlement to precipitation of nanometer-sized copper in tempered martensitic low-carbon steel
10.1007/s11837-019-03330-0 · doi-reference
Effect of morphology of copper precipitation particles on hydrogen embrittlement behavior in Cu-added ultra low carbon steel
10.2320/matertrans.43.2213 · doi-reference
Effect of Aging Treatment on Hydrogen Embrittlement of Drawn Pearlitic Steel Wire
10.2355/isijinternational.isijint-2015-735 · doi-reference
Hydrogen embrittlement in nickel, visited by first principles modeling, cohesive zone simulation and nanomechanical testing
10.1016/j.ijhydene.2015.06.069 · doi-reference
Review on the design of high-strength and hydrogen-embrittlement-resistant steels
10.1007/s12613-024-2900-1 · doi-reference
Hydrogen embrittlement in nickel-based superalloy 718: Relationship between γ′ + γ″ precipitation and the fracture mode
10.1016/j.ijhydene.2015.07.053 · doi-reference
Effect of Microstructure and Alloy Chemistry on Hydrogen Embrittlement of Precipitation-Hardened Ni-Based Alloys
10.1007/s11661-018-4483-9 · doi-reference
Hydrogen Embrittlement Phenomena and Mechanisms
10.1515/corrrev-2012-0502 · doi-reference
Hydrogen-Enhanced-Plasticity Mediated Decohesion for Hydrogen-Induced Intergranular and “Quasi-Cleavage” Fracture of Lath Martensitic Steels
10.1016/j.jmps.2017.12.016 · doi-reference
Hydrogen-Enhanced Localized Plasticity—A Mechanism for Hydrogen-Related Fracture
10.1016/0921-5093(94)90975-x · doi-reference
A New Model for Hydrogen-Assisted Cracking (Hydrogen “Embrittlement”)
10.1007/bf02642048 · doi-reference
A Mechanistic Theory of Hydrogen Embrittlement of Steels
10.1002/bbpc.19720760864 · doi-reference
Role of Microstructure, Composition and Hardness in Resisting Hydrogen Embrittlement of Fastener Grade Steels
10.1016/j.corsci.2009.12.020 · doi-reference
Alloy and Composition Dependence of Hydrogen Embrittlement Susceptibility in High-Strength Steel Fasteners
10.1098/rsta.2016.0407 · doi-reference
10.3390/nano14161335
10.3390/nano14161335 · doi-reference
10.3390/met15020150
10.3390/met15020150 · doi-reference
Effects of heat input on microstructure and fracture toughness of simulated coarse-grained heat affected zone for HSLA steels
10.1016/j.matchar.2019.109818 · doi-reference
Development and Certification of HSLA-100 Steel for Naval Ship Construction
10.1111/j.1559-3584.1990.tb02632.x · doi-reference
Effects of alloying elements and microstructure on the susceptibility of the welded HSLA steel to hydrogen-induced cracking and sulfide stress cracking
10.1016/j.msea.2008.11.064 · doi-reference
Advances in deep-sea scientific experiment equipment
10.15302/j-sscae-2024.02.004 · doi-reference
Review: Strengthening and toughening mechanisms of high-strength steels for deep-sea pressure vessel hulls
10.1007/s10853-025-11354-y · doi-reference