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高錳鋼高速沖擊時剪切區TRIP行為的準原位分析

Quasi-in-situ analysis of TRIP behaviors in shear zones of high-manganese steel specimen under dynamic compression

  • 摘要: 利用背散射電子衍射技術對高速沖擊前后高錳鋼樣品強制剪切區域的晶粒進行準原位觀察,分析了剪切區域不同位置晶粒的相變情況,并借助有限元模擬及受力計算對不同晶粒相變程度差異的原因做了進一步分析.結果表明,在高速變形下,應力應變水平、奧氏體取向及晶粒間的相互作用共同影響TRIP行為:應力應變水平越高,相變程度越大;由于帽型樣中剪切應力的存在,相比于近〈111〉取向奧氏體,近〈100〉和近〈110〉取向奧氏體相變程度更大,近〈110〉取向相變程度最大.具有有利取向的奧氏體,晶粒尺寸越大,其相變行為受周圍晶粒影響越小,越容易充分相變;具有有利取向的長條狀奧氏體晶粒,若其兩側晶粒難相變,則該晶粒相變將受到束縛;帶有尖角的晶粒,變形時應力集中難以釋放,易發生相變;當晶粒的孿生分力大于滑移,但其最大和次大的孿生分力相差不大,可能導致在這兩個方向孿生互相競爭,反而不易相變.高速變形時體心馬氏體多在晶界應力集中處產生,很少在晶粒內部大量產生,形態多為細片狀,變體選擇強.

     

    Abstract: Owing to martensitic transformation during deformation, high-manganese transformation-induced plasticity (TRIP) steels show an excellent combination of strength and ductility. They are considered as second-generation automobile steels. Because of the influence of strain rate, the TRIP behaviors of high-manganese steels may be different during dynamic and static compressions. Therefore, it is necessary to study the TRIP behaviors during dynamic deformation. Based on the research on the TRIP behaviors of high-manganese steel at low strain rates, in this study, the TRIP behaviors were evaluated at high strain rates. Given the special shape of hat-shaped specimen and fixed position of shear zone, the grains present in the shear zone of high-manganese steel before and after dynamic compression were quasi-in-situ characterized using the electron backscattering diffraction (EBSD) technique. Besides, the phase distribution of grains in different locations of shear zone was analyzed. In addition, finite-element simulations and stress calculations were conducted using the ANSYS/LS-DYNA and MATLAB softwares, respectively, to further analyze the differences in the phase transformation of each grain. The results show that the combined action of stress and strain, orientation of austenite, and the interactions among grains influences the TRIP behaviors. The higher the stress and strain the easier the phase transformation. Because of the existence of shear stress in hat-shaped specimens, phase transformation is more likely to occur in austenite with orientation along〈100〉 and〈110〉than austenite with orientation along〈111〉, and phase transformation is most likely to occur in austenite with orientation along〈110〉. Moreover, the phase transformation behavior of austenite with a favorable orientation and large grain size will be less affected by neighboring grains and easier to achieve a complete phase transformation. However, the phase transformation of striped grains with a beneficial orientation will be constrained when the phase transformation of neighboring grains is difficult. Grains with sharp corners easily undergo phase transformation because of stress concentration. If the shear stress of twinning is larger than that of slip, but the largest and second largest stresses are almost equal, both the twin systems may compete with each other and phase transformation becomes difficult. Martensitic transformation often occurs near the grain boundary where the stress concentration is severe during dynamic compression but rarely in grains. α'-M has a shape of thin sheet, and its variant selection is obvious.

     

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