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鉬微合金化低碳鋼的顯微組織與力學性能

Microstructure and mechanical properties of Mo micro-alloyed low-carbon steel

  • 摘要: 借助物理模擬系統采用四種不同的多道次變形及控制冷卻工藝,研究了成分為0.12C-0.78Si-1.42Mn-0.74Al-0.32Mo鋼的顯微組織和力學性能.結果顯示:使用物理模擬系統進行高溫區的多道次熱連軋,并結合控制冷卻處理,能夠得到不同的復相組織(鐵素體/貝氏體組織,貝氏體/馬氏體組織).依貝氏體含量和形態的不同,鐵素體/貝氏體復相組織鋼的屈服強度為388~558 MPa,抗拉強度為681~838 MPa,總延伸率為15%~27%;貝氏體/馬氏體復相組織鋼的屈服強度為746 MPa,抗拉強度為960 MPa,總延伸率為19%.

     

    Abstract: The microstructure and mechanical properties of 0.12C-0.78Si-1.42Mn-0.74Al-0.32Mo steel under four different multi-pass deformation and controlled cooling after rolling were studied by using of a physical simulation system. The results show that different multi-phase structures (ferrite/bainite and bainite/martensite) can be achieved in the steel under multi-pass deformation at high temperature through the physical simulation system and controlling cooling treatment. The yield strength, tensile strength and total elongation of the steel with the ferrite/bainite structure are 388~558 MPa, 681~838 MPa, and 15%~27%, respectively; but the yield strength, tensile strength, and total elongation of the steel with the bainite/martensite structure reach 746 MPa, 960 MPa, and 19%, respectively.

     

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