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Strain localization and delamination mechanism of cold-drawn pearlitic steel wires during torsion

机译:扭转冷拉珠光钢丝的应变定位和分层机理

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Pearlitic steel wires are cold-drawn in order to attain high strength from the alignment of the pearlite colonies along the wire axis, as well as achieve a considerable reduction in the thickness of the ferrite lamellae. However, this high level of stress, in addition to surface defects and residual stresses, drastically decreases the strain ductility in tension and often in torsion. A significant limitation in torsion is the nucleation and growth of delamination cracks which propagate along the wire. Although this fracture phenomenon has long been studied, its origin and the underlying mechanisms remain debatable. This paper presents new microstructure investigations of drawn wires during torsion. The stages of initiation and propagation are defined towards a chronology of the development phases of delamination cracks based on the study of the microstructure of cold-drawn pearlitic steel wires before and after torsion. The curling of the grains leads to the creation of long grooves on the surface of the wire. These grooves increase stress concentration during twisting, thus localizing the formation of shear bands. Deformation and strain rate are so high in these bands that nanograins (10-30 nm) are formed. The delamination then appears to be mainly due to the localization of the single-shear deformation along the wire axis with mainly intergranular crack propagation.
机译:珠光体钢丝被冷绘制,以便从沿线轴线的珠光体菌落的对准获得高强度,并在铁氧体薄片的厚度下实现相当大的降低。然而,除了表面缺陷和残余应力之外,这种高压力急剧地降低了张力的应变延展性,通常在扭转中。扭转的显着限制是沿线传播的分层裂缝的成核和生长。虽然已经研究了这种骨折现象,但它的起源和潜在机制仍然是可贬值的。本文呈现了扭转期间拉伸线的新型微观结构研究。基于在扭转珠粒钢丝微观结构的研究的研究基于扭转前后的微观结构的研究,其朝向分层裂缝的显影阶段的年代学。谷物的卷曲导致在线表面上产生长凹槽。这些凹槽在扭转期间增加应力浓度,从而定位剪切带的形成。在这些带中形成纳米疱疹(10-30nm)的变形和应变速率如此高。然后,分层似乎主要是由于单剪切变形的定位,主要是具有晶间裂纹展开的线轴。

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