晶粒尺寸对 304 不锈钢疲劳强度的影响

IF 1.6 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY High Temperature Materials and Processes Pub Date : 2024-01-01 DOI:10.1515/htmp-2022-0314
Hongyan Duan, Zengwang Zhang, Yingjian Zhao, Yang Liu, Sunqiang Yue, Hong He
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引用次数: 0

摘要

本研究通过轧制细化晶粒尺寸,制备了三种不同强度的 304 不锈钢样品。通过电子显微镜观察了样品的微观结构。晶粒度对材料静态拉伸性能和疲劳强度的影响主要归因于塑性变形断裂机制和微变形机制的变化。此外,基于拉伸强度和加工硬化能力的影响,提出了一种新的疲劳强度预测模型。与阶梯法和巴斯金公式模型相比,所提出的模型既保持了疲劳强度预测的准确性,又降低了疲劳实验的成本。这为预测特定材料的疲劳强度和提高抗疲劳设计能力提供了一种新方法。
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Effect of grain size on fatigue strength of 304 stainless steel
In this study, three types of 304 stainless steel samples with different strengths were prepared by refining the grain size through rolling. The microstructure of the samples was observed by electron microscopy. The influence of grain size on the static tensile properties and fatigue strength of the material is mainly attributed to changes in the plastic deformation fracture mechanism and micro-deformation mechanism. In addition, a new fatigue strength prediction model is proposed based on the influence of tensile strength and work-hardening capacity. Compared with the staircase method and Basquin formula models, the proposed model maintains the accuracy of fatigue strength prediction while reducing the cost of fatigue experiments. This provides a new approach for predicting the fatigue strength of specific materials and improving anti-fatigue design capabilities.
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来源期刊
High Temperature Materials and Processes
High Temperature Materials and Processes 工程技术-材料科学:综合
CiteScore
2.50
自引率
0.00%
发文量
42
审稿时长
3.9 months
期刊介绍: High Temperature Materials and Processes offers an international publication forum for new ideas, insights and results related to high-temperature materials and processes in science and technology. The journal publishes original research papers and short communications addressing topics at the forefront of high-temperature materials research including processing of various materials at high temperatures. Occasionally, reviews of a specific topic are included. The journal also publishes special issues featuring ongoing research programs as well as symposia of high-temperature materials and processes, and other related research activities. Emphasis is placed on the multi-disciplinary nature of high-temperature materials and processes for various materials in a variety of states. Such a nature of the journal will help readers who wish to become acquainted with related subjects by obtaining information of various aspects of high-temperature materials research. The increasing spread of information on these subjects will also help to shed light on relevant topics of high-temperature materials and processes outside of readers’ own core specialties.
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