Evaluation of Corrosion and Erosion-Corrosion Behavior of X65 Pipeline Steel in Flowing CO2-Saturated Electrolyte

被引:5
作者
Zhang, Qiliang [1 ]
Jiang, Wanheng [1 ]
Wang, Zijie [1 ]
Wang, Lidong [2 ]
Huang, Yi [1 ,3 ]
Xu, Yunze [1 ,3 ]
机构
[1] Dalian Univ Technol, Sch Naval Architecture & Ocean Engn, Linggong Raod 2, Dalian 116024, Liaoning, Peoples R China
[2] Dalian Shipbldg Ind Co Ltd, Dalian 116024, Liaoning, Peoples R China
[3] Dalian Univ Technol, State Key Lab Struct Anal Ind Equipment, Linggong Raod 2, Dalian 116024, Liaoning, Peoples R China
关键词
WORDS; corrosion; erosion-corrosion; flow velocity; negative synergy; pipeline steel; TURBULENT-FLOW; PARTICLE CONCENTRATION; ACCELERATED CORROSION; METALLIC MATERIALS; CO2; CORROSION; CARBON-STEEL; MILD-STEEL; RESISTANCE; MICROSTRUCTURE; CONJUNCTION;
D O I
10.5006/4162
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this study, the corrosion and erosion-corrosion behaviors of X65 pipeline steel in the flowing CO2-saturated electrolyte were electrochemically studied using a rotation disk system. The results showed that the accumulation of the Fe3C layer in the electrolyte without sand particles enhanced the cathodic reaction, increasing the corrosion rate. The increase in flow velocity facilitated the rapid accumulation of a thick Fe3C layer, which linearly increased the corrosion rate with increasing rotation speed. The sand impacts removed the corrosion product layer and broke the exposed Fe3C network, resulting in a negative synergy of erosion-enhanced corrosion. The erosion-corrosion negatively affected ferrites compared with the pearlites in an electrolyte containing sand due to the weaker erosion resistance.
引用
收藏
页码:587 / 604
页数:18
相关论文
共 53 条
  • [1] The mechanism of erosion-corrosion of API X65 steel under turbulent slurry flow: Effect of nominal flow velocity and oxygen content
    Aguirre, Javiera
    Walczak, Magdalena
    Rohwerder, Michael
    [J]. WEAR, 2019, 438
  • [2] The Effect of Surface Roughness on Diffusion and Chemical Reaction Controlled Limiting Currents on a Rotating Cylinder Electrode in Deaerated Solutions with and Without CO2
    Al-Khateeb, M.
    Barker, R.
    Neville, A.
    Thompson, H. M.
    [J]. CORROSION, 2018, 74 (09) : 971 - 983
  • [3] Burson-Thomas C.B., 2017, Journal of Bio- and Tribo-Corrosion, V3, DOI DOI 10.1007/S40735-017-0073-4
  • [4] Interaction of silty sand and preformed corrosion products on N80 carbon steel in CO2 environment
    Chen, Longjun
    Liu, Wei
    Zhang, Tianyi
    Dong, Baojun
    Li, Hai
    Sun, Yipu
    Fan, Yueming
    Zhao, Yonggang
    Li, Wenqi
    [J]. CORROSION SCIENCE, 2022, 205
  • [5] Role of conductive corrosion products in the protectiveness of corrosion layers
    Crolet, JL
    Thevenot, N
    Nesic, S
    [J]. CORROSION, 1998, 54 (03) : 194 - 203
  • [6] Effect of Flow and Steel Microstructure on the Formation of Iron Carbonate
    Di Bonaventura, Maria
    Brown, Bruce
    Nesic, Srdjan
    Singer, Marc
    [J]. CORROSION, 2019, 75 (10) : 1183 - 1193
  • [7] Erosion-corrosion of 90° AISI 1018 steel elbows in potash slurry: Effect of particle concentration on surface roughness
    Elemuren, Raheem
    Tamsaki, Asawo
    Evitts, Richard
    Oguocha, Ikechukwuka N. A.
    Kennell, Glyn
    Gerspacher, Regan
    Odeshi, Akindele
    [J]. WEAR, 2019, 430 : 37 - 49
  • [8] Assessment of the effects of acetic acid and turbulent flow conditions on the corrosion of API 5L X52 steel in aqueous CO2 solutions
    Elena Olvera-Martinez, Maria
    Mendoza-Flores, Juan
    Javier Rodriguez-Gomez, Francisco
    Duran-Romero, Ruben
    Genesca, Juan
    [J]. MATERIALS AND CORROSION-WERKSTOFFE UND KORROSION, 2018, 69 (03): : 376 - 385
  • [9] The effect of fluid flow on CO2 corrosion of high-strength API carbon steels
    Elgaddafi, Rida
    Ahmed, Ramadan
    Shah, Subhash
    [J]. JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2021, 86
  • [10] On the theory of CO2 corrosion reactions - Investigating their interrelation with the corrosion products and API-X100 steel microstructure
    Eliyan, Faysal Fayez
    Alfantazi, Akram
    [J]. CORROSION SCIENCE, 2014, 85 : 380 - 393