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首页> 外文期刊>International Journal of Fatigue >Influence of microstructure and surface defect on very high cycle fatigue properties of clean spring steel
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Influence of microstructure and surface defect on very high cycle fatigue properties of clean spring steel

机译:显微组织和表面缺陷对清洁弹簧钢超高循环疲劳性能的影响

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摘要

Very high cycle fatigue (VHCF) properties of a newly developed clean spring steel were experimentally examined under rotating bending and axial loading. As a result, this steel represents the duplex S-N property only for surface-induced failure under rotating bending, whereas it represents the single S-N property for surface-induced failure and interior inhomogeneous microstructure-induced failure under axial loading. Surface small grinding defect-induced failure is the predominant failure mode of this steel in VHCF regime. The surface morphology of the interior inhomogeneous microstructure with distinct plastic deformation is much rougher than that of the ambient matrix, which means the stress concentration resulted from the strain inconsistency between the microstructural inhomogeneity as soft phase and the ambient matrix as hard phase plays a key role in causing interior crack initiation. Considering the effect of surface compressive residual stress, the threshold stress intensity factor for surface small defect-induced crack propagation of this steel is evaluated to be 2.04 MPam~(1/2), which means that the short crack effect plays a key role in causing the surface small defect-induced failure of this steel in the VHCF regime. From the viewpoint of defect distribution, surface and interior failure probabilities are equivalent under a fixed characteristic value of defect density. If the interior defect size is less than or even equal to the surface defect size, surface defect-induced failure will become the predominant failure mode in VHCF regime, especially under rotating bending.
机译:在旋转弯曲和轴向载荷下,通过实验检查了新开发的清洁弹簧钢的极高循环疲劳(VHCF)性能。结果,这种钢仅对旋转弯曲下的表面诱发破坏表现出双重S-N性质,而对于轴向载荷下的表面诱发破坏和内部不均匀组织诱发的破坏表现出单一S-N性质。在VHCF制度下,表面细小的磨削缺陷引起的失效是该钢的主要失效模式。具有明显塑性变形的内部不均匀微观结构的表面形态要比周围基质粗糙得多,这意味着应力集中是由软结构的微观结构不均匀性和硬相的周围环境之间的应变不一致引起的。导致内部裂纹萌生。考虑到表面压缩残余应力的影响,该钢材表面小缺陷诱发裂纹扩展的阈值应力强度因子经评估为2.04 MPam〜(1/2),这意味着短裂纹效应在该过程中起着关键作用。在VHCF范围内导致这种钢的表面细小缺陷引起的失效。从缺陷分布的角度来看,在固定的缺陷密度特征值下,表面和内部失效概率是等效的。如果内部缺陷尺寸小于或什至等于表面缺陷尺寸,则在VHCF模式下,尤其是在旋转弯曲下,表面缺陷引起的失效将成为主要的失效模式。

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