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A multiscale approach for the deformation mechanism in pearlite microstructure: Atomistic study of the role of the heterointerface on ductility

机译:珠光体微观结构变形机理的多尺度方法:异质界面对延展性作用的原子研究

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摘要

The role of the ferrite/cementite heterointerface on the mechanical properties of heavily-drawn-pearlitic steel is investigated via tensile deformation tests of multilayered composite models with brittle and ductile virtual materials in a two-dimensional triangle-lattice system by using molecular dynamics simulations. The interface strength is controlled by introducing a heterointerface potential. The dominant role of heterointerface on the mechanical properties of multilayered composite models is influenced by the interface strength. In case of weak interface strength, the heterointerface acts as a strong barrier to dislocation motion in the ductile phase; hence, the multilayered composite model shows high strength but extremely low ductility. This tendency corresponds well to that of as-drawn pearlitic steel with cementite decomposition. In case of strong interface strength, the heterointerface acts as a dislocation source of the brittle phase by dislocation transmission through the heterointerface from the ductile to brittle phase; hence, the multilayered composite model shows good ductility with a small decrease in strength. This tendency corresponds well to annealed pearlitic steel recovered from cementite decomposition. These results suggest that cementite decomposition decreases the plastic deformation potential of the heterointerface. The conditions necessary for the heterointerface to simultaneously exhibit high strength and ductility are discussed on the basis of the results of atomic simulations.
机译:通过分子动力学模拟,通过二维三角形-晶格系统中的脆性和可延展虚拟材料的多层复合模型的拉伸变形试验,研究了铁素体/渗碳体异质界面对重拉伸珠光体钢力学性能的作用。通过引入异质界面电势来控制界面强度。界面强度对异质界面在多层复合材料模型力学性能中的主导作用。在弱界面强度的情况下,异质界面在延展相中成为位错运动的强大屏障;因此,多层复合材料模型显示出高强度,但延展性极低。这种趋势与渗碳体分解后的拉深珠光体钢非常吻合。在强大的界面强度的情况下,异质界面通过从延性相到脆性相通过异质界面的位错传递而充当脆性相的位错源。因此,多层复合材料模型显示出良好的延展性,强度下降较小。这种趋势与从渗碳体分解中回收的珠光体钢非常吻合。这些结果表明渗碳体的分解降低了异质界面的塑性变形潜能。基于原子模拟的结果,讨论了异质界面同时显示出高强度和延展性的必要条件。

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