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Effect of Heat Treatment on Intergranular Corrosion Resistance of Inconel 625 Used as Inner Lining for X65 Steel Based Bimetallic Pipes |
SU Rui1,2, SHAN Yiyin1,3( ), YAN Wei1,3, LIU Geng1,2, REN Yi4, SHI Xianbo1,3 |
1 School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016, China 2 Shi-changxu Innovation Center for Advanced Materials, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China 3 CAS Key Laboratory of Nuclear Materials and Safety Assessment, Shenyang 110016, China 4 State Key Laboratory of Metal Material for Marine Equipment and Application, Anshan 114009, China |
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Cite this article:
SU Rui, SHAN Yiyin, YAN Wei, LIU Geng, REN Yi, SHI Xianbo. Effect of Heat Treatment on Intergranular Corrosion Resistance of Inconel 625 Used as Inner Lining for X65 Steel Based Bimetallic Pipes. Chinese Journal of Materials Research, 2025, 39(10): 743-754.
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Abstract In order to improve the overall performance of bimetallic pipelines and optimize their industrial production processes, herein, the effect of different heat treatment procedures on the intergranular corrosion resistance of Inconel 625, as the lining material for bimetallic pipes was studied by taking the pre-requirements for ensuring the performance of the substrate steel X65 into account. Results show that the relationship of heat treatment parameters with microstructure, and corrosion resistance is revealed for the Inconel 625 alloy. The alloy exhibits the best corrosion resistance when subjected to a special heat treatment procedure, which involves holding at 1000 oC for 40 min followed by rapid water quenching through the sensitization zone, and then air cooling. In this state, the alloy shows the lowest annual corrosion rate with only slight intergranular corrosion observed on the surface. As the heat treatment temperature increases from 850 oC to 1000 oC, the intergranular corrosion resistance of the alloy improves progressively. The three key factors influencing the intergranular corrosion behavior of the alloy include grain size, the proportion of low ΣCSL grain boundaries, and intergranular sensitization. The larger the average grain size and the lower the boundary density, the lower the annual corrosion rate. A higher proportion of low ΣCSL grain boundaries can effectively inhibit the propagation of corrosion cracks in the substrate, thereby significantly enhancing the intergranular corrosion resistance. The precipitation of M23C6 at grain boundaries leads to Cr depletion there, which reduces the corrosion resistance. This study clarifies the main mechanisms affecting the intergranular corrosion performance of bimetallic pipeline corrosion-resistant alloy liner and reveals their variations with heat treatment procedures. The findings provide important theoretical guidance for the industrial production of high-performance bimetallic pipelines.
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Received: 31 December 2024
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Fund: Special Project the Ministry of Industry and Information Technology(2240STCZB2346);Open Fund of State Key Laboratory of Marine Equipment(SKLMEA-K202205);National Natural Science Foundation of China(52201093) |
Corresponding Authors:
SHAN Yiyin, Tel: (024)23971517, E-mail: yyshan@imr.ac.cn
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