Assessment of Operational Degradation of Pipeline Steels

被引:19
|
作者
Nykyforchyn, Hryhoriy [1 ]
Zvirko, Olha [1 ]
Dzioba, Ihor [2 ]
Krechkovska, Halyna [1 ]
Hredil, Myroslava [1 ]
Tsyrulnyk, Oleksandr [1 ]
Student, Oleksandra [1 ]
Lipiec, Sebastian [2 ]
Pala, Robert [2 ]
机构
[1] NAS Ukraine, Dept Diagnost Mat Corros Hydrogen Degradat, Karpenko Phys Mech Inst, 5 Naukova St, UA-79060 Lvov, Ukraine
[2] Kielce Univ Technol, Fac Mechatron & Mech Engn, Dept Machine Design, Av 1000 An Polish State,7, PL-25314 Kielce, Poland
关键词
transit pipeline steel; operational degradation; hydrogen; mechanical properties; electrochemical properties; microstructure; microfractography; numerical calculation method; LONG-TERM OPERATION; MECHANICAL-PROPERTIES; GAS-PIPELINES; CRACK-GROWTH; FRACTURE; CALIBRATION; RESISTANCE; METAL; MODEL;
D O I
10.3390/ma14123247
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
This paper summarizes a series of the authors' research in the field of assessing the operational degradation of oil and gas transit pipeline steels. Both mechanical and electrochemical properties of steels are deteriorated after operation, as is their resistance to environmentally-assisted cracking. The characteristics of resistance to brittle fracture and stress corrosion cracking decrease most intensively, which is associated with a development of in-bulk dissipated microdamages of the material. The most sensitive indicators of changes in the material's state caused by degradation are impact toughness and fracture toughness by the J-integral method. The degradation degree of pipeline steels can also be evaluated nondestructively based on in-service changes in their polarization resistance and potential of the fracture surface. Attention is drawn to hydrogenation of a pipe wall from inside as a result of the electrochemical interaction of pipe metal with condensed moisture, which facilitates operational degradation of steel due to the combined action of operating stresses and hydrogen. The development of microdamages along steel texture was evidenced metallographically as a trend to the selective etching of boundaries between adjacent bands of ferrite and pearlite and fractographically by revealing brittle fracture elements on the fracture surfaces, namely delamination and cleavage, indicating the sites of cohesion weakening between ferrite and pearlite bands. The state of the X52 steel in its initial state and after use for 30 years was assessed based on the numerical simulation method.
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页数:19
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