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納米貝氏體的熱力學分析及強韌化研究

Thermodynamic analysis and strength-toughness research of nanobainite

  • 摘要: 針對目前高碳高硅低溫貝氏體(納米結構貝氏體)相變速度緩慢的現狀,采用貝氏體相變熱力學理論分析主要合金元素對低溫貝氏體相變驅動力的影響,設計了新型納米結構貝氏體鋼成分0.83C-2.44Si-0.43Mn-0.73Al.利用膨脹儀研究該成分貝氏體鋼在不同溫度下的相變整體動力學,綜合使用掃描電子顯微鏡、X射線衍射、電子背散射衍射等方法研究熱處理工藝對實驗鋼組織和力學性能的影響.結果表明,350℃等溫轉變貝氏體的抗拉強度為1401 MPa,延伸率為42.21%,強塑積可達59136 MPa·%,在室溫拉伸過程中發生明顯的相變誘導塑性效應;230℃等溫轉變組織中貝氏體鐵素體片層厚度小于100 nm,抗拉強度達2169 MPa.

     

    Abstract: In view of slow phase transformation rate in high-carbon,silicon-rich and low-alloy bainite steel(nanostructured bainite steel),the effects of alloy elements on the overall kinetics of low temperature bainite phase transformation were analyzed by using the thermodynamic theory of bainite phase transformation,and a composition of 0.83C-2.44Si-0.43Mn-0.73Al(mass fraction,%) was designed to develop a novel nanostructured bainitic steel. The overall phase transformation kinetics of this new designed nanobainitic steel at different temperatures were investigated by dilatometry. The effects of heat treatment parameters on the microstructure and mechanical properties were analyzed by scanning electron microscopy,X-ray diffraction and electron backscatter diffraction. It is found that the nanobainitic steel,which exhibited excellent mechanical properties with an ultimate tensile strength of 1401 MPa,a total elongation rate of 42.21% and a strength and ductility product of 59136 MPa·%,can be obtained by austempering at 350℃. In addition,transformation-induced plasticity(TRIP) effect appears during tensile testing at room temperature. When austempered at 230℃,the nanobainitic steel has a finer microstructure with the thickness of bainite ferrite laths less than 100 nm,and its tensile strength can reach up to 2169 MPa.

     

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