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Experimental and numerical studies on strength and ductility of gradient-structured iron plate obtained by surface mechanical-attrition treatment

机译:表面机械磨损处理的梯度结构铁板强度和延性的实验和数值研究

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摘要

By means of the surface mechanical-attrition treatment (SMAT), a nano-crystalline surface layer of about 25 mu m was prepared on the iron plate. The grain size exhibits a gradient change from the nano-crystalline surface to the coarse-grain matrix. The nano-layer has been studied by the optical microscopy (OM), transmission electrical microscopy (TEM), and X-ray diffraction (XRD). The microhardness was measured. The tensile properties have been acquired by the designed and implemented tensile process test on the SMATed and coarse-grain samples, accompanying with numerical simulation based on the hypothesis of a gradient-structured material. The fracture morphology was observed by scanning electron microscopy (SEM). The highly strengthened surface-nano crystallization leads to an increase in both the yield strength and ultimate tensile strength, however, appreciable decrease of the uniform elongation. The fracture of the gradient-structured iron plate shows a lamellar structure, which looks like lamellar tearing in the vertical direction of the surface. The numerical simulation effectively presents the stretching process, showing the evolutionary characteristic of gradient-structured material. Failure begins within coarse-grain side of the sample and ends at the nano-crystalline surface.
机译:通过表面机械磨损处理(SMAT),在铁板上制备了约25μm的纳米晶体表面层。晶粒尺寸表现出从纳米晶体表面到粗晶粒基体的梯度变化。通过光学显微镜(OM),透射电子显微镜(TEM)和X射线衍射(XRD)研究了纳米层。测量了显微硬度。通过对SMATed和粗粒样品进行设计和实施的拉伸过程测试,并结合基于梯度结构材料假设的数值模拟,已经获得了拉伸性能。通过扫描电子显微镜(SEM)观察断裂形态。高度强化的表面纳米结晶会导致屈服强度和极限抗拉强度均增加,但是,均匀伸长率会明显下降。梯度结构的铁板的断裂表现为层状结构,看起来像是在表面的垂直方向上的层状撕裂。数值模拟有效地显示了拉伸过程,显示了梯度结构材料的演化特性。失败开始于样品的粗颗粒面,并终止于纳米晶体表面。

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