Work hardening behavior of Fe-Mn-Si-A1 and Fe-Mn-C TWIP steels
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摘要: 研究了在不同應變量下Fe-Mn-Si-Al系和Fe-Mn-C系孿晶誘導塑性(TWIP)鋼的力學性能以及微觀組織,分析了TWIP效應在兩種不同系列TWIP鋼中發揮的作用,闡明了TWIP鋼的強化機制.兩種系列的TWIP鋼都具有高加工硬化能力,但層錯能較低的Fe-Mn-C系TWIP鋼加工硬化能力更強.兩種系列的TWIP鋼加工硬化表現為多加工硬化指數行為,這是由多種強化機理在不同階段起主導作用的結果.微觀組織形態與加工硬化強度之間存在著較強的關聯性.位錯的增殖和形變孿晶的產生對兩個系列TWIP鋼硬化曲線形態有著明顯的影響.在高應變階段,Fe-Mn-C系TWIP鋼大量的第一位向形變孿晶T1和第二位向形變孿晶T2,以及附著在孿晶界旁的高密度位錯區域是造成其具有高加工硬化能力的原因,而Fe-Mn-Si-Al系TWIP鋼細密的第一位向形變條紋和孿晶片層間的位錯是其高加工硬化原因,且其微觀組織更為均勻細致.Abstract: The mechanical properties and microstructure of plastically deformed Fe-Mn-C and Fe-Mn-Si-AI series high manganese twinning induced plasticity (TWIP) steels were investigated at different strains. The roles of TWIP effect in the two series TWIP steels were analyzed so as to clarify the strengthening mechanisms. It is found that the two series TWIP steels have high work hardening ability, while the work hardening ability of Fe-Mn-C TWIP steel with a lower stacking fault energy (SFE) is stronger. The two series TWIP steels deformed under the same conditions exhibit different work hardening rates, since different deformation mechanisms play a leading role during different deformation stages. There is a strong correlation between the microstructure morphology and the work hardening behavior. Multiplication of dislocations and generation of deformation twins have obvious effect on the work hardening index curves of the two series TWIP steels. In high-strain stages, the plenty of primary deformation twins T1 and secondary deformation twins T2 in Fe-Mn-C TWIP steel and high-density dislocation areas adhering to twin boundaries lead to its high work hardening ability. But the close-set primary deformation twins T1 and dislocations between twins are the reasons for the high work hardening behavior of Fe-Mn-Si-Al TWIP steel, whose microstructure is more uniform and finer.
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Key words:
- high strength steel /
- work hardening /
- dislocations /
- deformation /
- twinning
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