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DEVELOPMENT OF A NOVEL STRUCTURAL MATERIAL (SIMP STEEL) FOR NUCLEAR EQUIPMENT WITH BALANCED RESIS-TANCES TO HIGH TEMPERATURE, RADIATION AND LIQUID METAL CORROSION |
Ke YANG1( ),Wei YAN1,Zhiguang WANG2,Yiyin SHAN1,Quanqiang SHI1,Xianbo SHI1,Wei WANG1 |
1 Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China
2 Institute of Modern Physics, Chinese Academy of Sciences, Lanzhou 730000, China |
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Cite this article:
Ke YANG, Wei YAN, Zhiguang WANG, Yiyin SHAN, Quanqiang SHI, Xianbo SHI, Wei WANG. DEVELOPMENT OF A NOVEL STRUCTURAL MATERIAL (SIMP STEEL) FOR NUCLEAR EQUIPMENT WITH BALANCED RESIS-TANCES TO HIGH TEMPERATURE, RADIATION AND LIQUID METAL CORROSION. Acta Metall Sin, 2016, 52(10): 1207-1221.
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Abstract Accelerator driven subcritical (ADS) system has been recognized to be the most promising technology for safely treating the nuclear wastes by now. In China, ADS system has achieved great progress in both fundamental research and engineering practice. This system is composed of three parts, which are accelerator, spallation target and reactor. The biggest challenge exists in the structural material for the spallation target is to possess not only good heat-resistance and radiation resistance but also a resistance to liquid metal corrosion. A novel martensitic heat-resistant steel, SIMP steel, has been developed against this challenge. By negotiating the effects of the contents of those important elements such as C, Cr and Si in the (9%~12%)Cr martensitic heat-resistant steel on heat resistance, radiation resistance, and liquid metal corrosion resistance, an optimized chemical composition was obtained for SIMP steel and a good balance was reached among these three properties. The test results conducted on 1 t and 5 t grade SIMP steels showed that this novel steel is much potential as a candidate structural material for the spallation target in ADS system.
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Received: 20 July 2016
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Fund: Supported by Strategic Priority Research Program of Chinese Academy of Sciences (Nos.XDA03010301 and XDA03010302) |
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