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Research on Austenite Transformation of FB2 Heat-Resistant Steel During Welding Heating Process |
Kejian LI1,Zhipeng CAI1,2,3( ),Yao WU4,Jiluan PAN1 |
1 Department of Mechanical Engineering, Tsinghua University, Beijing 100084, China 2 State Key Laboratory of Tribology, Tsinghua University, Beijing 100084, China 3 Collaborative Innovation Center of Advanced Nuclear Energy Technology, Beijing 100084, China 4 Tsinghua University Research Institute for Advanced Equipment, Tianjin 300304, China |
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Cite this article:
Kejian LI,Zhipeng CAI,Yao WU,Jiluan PAN. Research on Austenite Transformation of FB2 Heat-Resistant Steel During Welding Heating Process. Acta Metall Sin, 2017, 53(7): 778-788.
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Abstract The improvement of steam parameters in fossil power plants requires the development of new kinds of 9% Cr martensitic heat-resistant steels, among which FB2 steel is a 100×10-6 (mass fraction) boron-containing steel and mainly used for manufacturing components with thick walls operating at high temperatures above 600 ℃. In the alloy system of martensitic heat-resistant steels, boron plays an important role in suppressing type IV crack of weld joints by the formation of heat affected zone (HAZ) with no fine grains in the normalized and intercritical zones, where there exhibit fine grains in conventional 9%Cr heat-resistant steels with no boron such as P91 steel. In this work, the formation process of HAZ in FB2 steel was investigated. The microstructures before and after thermal simulation were compared using OM and SEM. It was concluded that the austenization of FB2 steel at rapid heating rates (≥100 ℃/s) took place by shear mechanism, demonstrating austenite memory effect; while at slow heating rates (≤5 ℃/s), the austenization was by atom short range diffusion mechanism, without austenite memory effect. The special phase transformation of austenization is the main cause for the formation of HAZ with no coarsened grain in the overheated zone. Based on the previous results reported by other researchers, a preliminary model was proposed to describe how boron atoms change the austenite transformation type of FB2 steel during heating process, which developed the previous ideas about the phenomenon.
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Received: 21 November 2016
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Fund: Supported by Science and Technology Research Program of Shanghai Science and Technology Committee (No.13DZ1101502) and Tribology Science Fund of State Key Laboratory of Tribology of Tsinghua University (No.SKLT2015A02) |
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