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首页> 外文期刊>Materials Science and Technology: MST: A publication of the Institute of Metals >Micro-defect effect on gigacycle fatigue S-N property and very slow crack growth of high strength low alloy steel
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Micro-defect effect on gigacycle fatigue S-N property and very slow crack growth of high strength low alloy steel

机译:微缺陷对高强度低合金钢的千兆疲劳S-N性能和非常缓慢的裂纹扩展的影响

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摘要

The gigacycle fatigue properties of two kinds of high strength low alloy steels were examined under axial loading, and the effect of micro-defect on their S-N properties and very slow crack growth behaviours was evaluated. Differing from the exhibited duplex S-N property for one of them under rotating bending, all data indicate the continuously descending S-N properties associated with surface and interior micro-defects induced failure under axial loading. The micro-defect causing interior failure corresponds to the microstructural inhomogeneity instead of the inclusion. Based on the evaluation of the severity of the stress distribution around the defect and crack tips, the surface or interior crack induced by the micro-defect can still propagate with a rate less than 10~(-10) m/cycle in the gigacycle fatigue regime. Good agreement between the predicted and experimental results shows that the duplex S-N property and fatigue strength of steel in the gigacycle regime is greatly dependent on the size of the micro-defect exposed from the relevant control volume of specimen under different loading conditions, especially the size of the interior micro-defect.
机译:研究了两种高强度低合金钢在轴向载荷下的千兆疲劳性能,并评估了微缺陷对其S-N性能和非常缓慢的裂纹扩展行为的影响。与其中之一在旋转弯曲下表现出的双工S-N特性不同,所有数据均表明与轴向载荷作用下表面和内部微缺陷引起的破坏相关的连续下降的S-N特性。导致内部失效的微缺陷对应于微观结构的不均匀性,而不是包含在内。根据缺陷和裂纹尖端周围应力分布的严重性评估,在微观疲劳中,由微观缺陷引起的表面或内部裂纹仍可以以小于10〜(-10)m /周期的速率传播。政权。预测结果与实验结果之间的良好一致性表明,在千兆循环状态下,钢的双SN性能和疲劳强度在很大程度上取决于在不同加载条件下从相关控制样品中暴露出的微缺陷的大小,特别是尺寸内部微缺陷。

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