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高強TRIP鋼的動態力學性能

Dynamic mechanical properties of high strength TRIP steel

  • 摘要: 將Si-Mn系雙相鋼(DP鋼)作為對比鋼種,分析研究了高應變速率下600 MPa級Si-Mn系TRIP鋼及含Al、Ni的1000 MPa級TRIP鋼的顯微組織及其動態力學性能.對DP鋼而言,其抗拉強度隨著應變速率的增大而升高,斷裂延伸率則由于絕熱溫升的作用也呈上升趨勢;對TRIP鋼而言,隨著應變速率的增大,其抗拉強度不斷增大,斷裂延伸率先減小后增大,但無法達到其靜態拉伸時的塑性水平,這是由于在動態拉伸條件下奧氏體向馬氏體的漸進式轉變被抑制造成的.此外,在相同應變速率下測得的TRIP鋼的絕熱溫升始終比DP鋼高,而這部分高出的熱量應當來自于在動態變形條件下TRIP鋼中發生TRIP效應后釋放的相變潛熱.

     

    Abstract: Using Si-Mn dual-phase (DP) steel as a reference, the microstructural evolution and dynamic mechanical properties of Si-Mn transformation-induced plasticity steel (TRIP) steel at the 600 MPa level and TRIP steel offering the ultimate tensile strength (UTS) level up to 1000 MPa containing Al and Ni were investigated under high strain-rate deformation. It is found that the tensile strength increases with increasing strain rate and the fracture elongation increases due to adiabatic heating in the DP steel. In the TRIP steel, the tensile strength increases with increasing strain rate while the fracture elongation decreases at first and then increases. However, the ductility of the TRIP steel is relatively low at high strain rate since the gradual transformation effect of retained austenite is inhibited. The adiabatic heat produced during high strain-rate deformation is higher in the TRIP steel than in the DP steel, and it is suggested that this extra heat originates from the latent heat of martensitic transformation in the TRIP steel during dynamic deformation.

     

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