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Strain partition and rupture analysis of notched tensile multilayered steel specimens

机译:缺口拉伸多层钢标本的应变分区与破裂分析

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摘要

Multilayered steel composites consisting of alternating martensitic and austenite layers were successfully fabricated with a combination of high strength and ductility. In situ SEM tensile experiments were performed to investigate the fracture processes. Results indicated that the martensitic layer distributed between two ductile austenite layers has better deformation ability, and the dimple fracture mode dominated the fracture of the whole specimen. In situ synchrotron microbeam X-ray diffraction experiments were carried out to study the microscopic deformation in austenitic layer and martensitic layer ahead of notch root under incremental tensile loading. Results indicated that for austenite layer, the maximum strain is located in the middle of the layer at the lower applied load. When at the higher applied load, larger strain is concentrated on the notch root. For martensitic layer, uniform strain is distributed at the region at the lower applied load, with increasing the applied load, small strain appears in the middle of martensitic layer. However, the variation in the strain in the martensitic layer is relatively smaller, which is actually affected by both the notch and the ferrite content in the martensitic layer. The changing trends of the strain in the austenite layer and martensitic layer can still show the better combination of brittle martensitic phase and ductile austenite phase.
机译:由具有高强度和延展性的组合成功制造由交替的马氏体和奥氏体层组成的多层钢复合材料。在原位SEM拉伸实验中进行以研究骨折过程。结果表明,分布在两种延性奥氏体层之间的马氏体层具有更好的变形能力,凹坑断裂模式占据了整个样本的骨折。在原位同步调节微积X射线衍射实验中进行以研究奥氏体层中的微观变形和在增量拉伸载荷下的缺口根部前方的马氏体层。结果表明,对于奥氏体层,最大应变位于较低施加的负载下的层的中间。当在较高的施加负荷时,较大的应变集中在凹口根上。对于马氏体层,随着施加的负载的增加,均匀应变在较低施加的载荷的区域处分布,在马氏体层的中间出现小的菌株。然而,马氏体层中应变的变化相对较小,其实际上受马氏体层中的凹口和铁氧体含量的影响。奥氏体层和马氏体层中应变的变化趋势仍然可以呈脆性马氏体相和延性奥氏体相的较好组合。

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