Effect of Corrosion Behavior on Mechanical Properties of Alloy in Supercritical CO2 Environment

被引:0
|
作者
Wang M. [1 ]
Liang Z. [1 ]
Gui Y. [1 ]
Guo T. [1 ]
Shao H. [1 ]
Zhao Q. [1 ]
机构
[1] Key Laboratory of Thermo-Fluid Science and Engineering of MOE, School of Energy and Power Engineering, Xi’an Jiaotong University, Shaanxi Province, Xi’an
基金
中国博士后科学基金; 中国国家自然科学基金;
关键词
corrosion; corrosion of supercritical CO[!sub]2[!/sub] power systems; creep; heat resistant steel; mechanical properties;
D O I
10.13334/j.0258-8013.pcsee.220924
中图分类号
学科分类号
摘要
The supercritical carbon dioxide cycle system provides a new way for the development of clean energy. But high temperature poses challenges to the oxidation resistance and strength of materials, including the ability to resist creep deformation and maintain mechanical strength. When the temperature is too high, the structural material must behave better in terms of oxidation resistance and structural integrity. The combined action of corrosion and carburizing in supercritical CO2 environment can form carbides in heat-resistant steel. Therefore, it is very important to determine the maximum long-term service temperature of materials in supercritical CO2 environment, as well as the combined effects of corrosion and carburizing on the mechanical properties of candidate materials. This paper summarizes the research status of the influence of supercritical carbon dioxide corrosion on the mechanical properties of heat resistant steel and nickel-base alloy. The influence mechanism of carburizing on crack growth and crack propagation is analyzed, and the shortcomings of current experiment and analysis are pointed out. © 2023 Chinese Society for Electrical Engineering. All rights reserved.
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页码:6709 / 6717
页数:8
相关论文
共 56 条
  • [21] OLEKSAK R P, TYLCZAK J H, CARNEY C S, High-temperature oxidation of commercial alloys in supercritical CO<sub>2</sub> and related power cycle environments [J], JOM, 70, 8, pp. 1527-1534, (2018)
  • [22] BRITTAN A, MAHAFFEY J, ANDERSON M., Corrosion and mechanical performance of Grade 92 Ferritic-Martensitic Steel after exposure to supercritical carbon dioxide[J], Metallurgical and Materials Transactions A, 51, 5, pp. 2564-2572, (2020)
  • [23] ROZMAN K A, OLEKSAK R P, DOGAN O N, Creep of MARBN-type 9Cr martensitic steel in gaseous CO<sub>2</sub> environment[J], Materials Science and Engineering, 826, (2021)
  • [24] Jingfeng GUO, CAO Tieshan, Congqian CHENG, Effect of carburization(pyrolysis furnace tube main failure factor) on the microstructure and properties of HPNb alloy tube[J], Engineering Failure Analysis, 115, (2020)
  • [25] DRYEPONDT S N, LEHMUSTO J, PINT B A., Effect of annealing and supercritical CO<sub>2</sub> exposure at 750℃ on the tensile properties of stainless steel and Ni-based structural alloys[J], Materials and Corrosion, 73, 4, pp. 497-512, (2022)
  • [26] CAO Guoping, FIROUZDOR V, SRIDHARAN K, Corrosion of austenitic alloys in high temperature supercritical carbon dioxide[J], Corrosion Science, 60, pp. 246-255, (2012)
  • [27] BRITTAN A, MAHAFFEY J, ADAM D, Mechanical and corrosion response of 316SS in supercritical CO<sub>2</sub>[J], Oxidation of Metals, 95, 5, pp. 409-425, (2021)
  • [28] EATON-MCKAY J,, YAN Kun, CALLAGHAN M D, Creep performance of carburized 316H stainless steel at 550℃[J], Journal of Nuclear Materials, 558, (2022)
  • [29] SPINDLER M W., The multiaxial and uniaxial creep ductility of type 304 steel as a function of stress and strain rate[J], Materials at High Temperatures, 21, 1, pp. 47-54, (2004)
  • [30] Ying HAN, Jiaqi SUN, SUN Jiapeng, High-temperature creep behavior and microstructural evolution of a Cu-Nb Co-Alloyed Ferritic heat-resistant stainless steel[J], Acta Metallurgica Sinica(English Letters), 34, 6, pp. 789-801, (2021)