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Effects of Al on Microstructure and High-Temperature Wear Properties of Austenitic Heat-Resistant Steel 被引量:1
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作者 ZHANG Yan1, SUN Yu-fu2, ZHAO Jing-yu2, GUAN Shao-kang2 (1. School of Materials Engineering, Nanjing Institute of Technology, Nanjing 211167, Jiangsu, China 2. School of Materials Science and Engineering, Zhengzhou University, Zhengzhou 450002, Henan, China) 《Journal of Iron and Steel Research International》 SCIE EI CAS CSCD 2012年第3期62-66,共5页
Microstructure and high-temperature dry sliding wear at 600 ~C in ambient air of austenitic heat-resistant steel ZG40Cr25Ni20 with different contents (mass percent) of AI (0 to 7.10~) have been investigated. The r... Microstructure and high-temperature dry sliding wear at 600 ~C in ambient air of austenitic heat-resistant steel ZG40Cr25Ni20 with different contents (mass percent) of AI (0 to 7.10~) have been investigated. The results show that microstructures of 4.68% and 7.10% A1 addition content consist of the matrix and reinforcement of inter- metallic compound y' and carbide, while microstructures of ZG40Cr25Ni20 without A1 and with A1 of 1.68% are ab- sent of y'. Higher wear resistance than the original ZG40Cr25Ni20 alloy is achieved in alloys with higher content of A1 under the same high-temperature wear test condition. The wear rates of Fe-25Cr-20Ni-7.10A1 and Fe-25Cr-20Ni- 4.68A1 are only 20.83% and 45.83% of that of Fe-25Cr-20Ni, respectively. Heat-resistant steels with higher con- tents of AI (4.72% and 7.10%) have higher hardness than those with lower contents of AI (1.68% and 0). Wear mechanisms of ZG40Cr25Ni20 are considered as severe plough plastic deformation and slight adhesive. However, wear mechanisms of Fe-25Cr-20Ni 4.68A1 are light micro-cutting and oxidation-wear, while that of Fe-25Cr-20Ni- 7. 10A1 are severe adhesive transfer and oxidation-wear_ 展开更多
关键词 austenitic heat resistant steel Al microstructure high-temperature sliding wear mechanism
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