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Mathematical Modeling and Computer Simulation of Fatigue Properties of Quenched and Tempered Steel

机译:淬火钢疲劳性能的数学建模与计算机模拟

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The engineering and economical aspects of the optimization of steel shaft quenching and tempering were investigated. The mathematical model and method of computer simulation for the prediction of fatigue properties of quenched and tempered steel were developed. Computer simulation of the fatigue properties of quenched and tempered steel was applied in the optimization of quenching and tempering of steel shafts. The proper heat treatment process was accepted based on economical analysis. Fatigue properties of quenched and tempered steel were predicted based on micro-structure composition and yield strength. Microstructure composition and yield strength were predicted based on as-quenched hardness. The distribution of as-quenched hardness in the workpiece was predicted through computer simulation of steel quenching using a finite volume method. The as-quenched hardness was estimated based on time of cooling and on Jominy test results. It was taken into account that the mechanical properties of quenched steel directly depend on the hardness, degree of hardening, and microstructural constituents. Using a numerical simulation of microstructure and mechanical properties, it was found out that the investigated shaft has the best fatigue properties in cases when the shaft was machined or formed on proper geometry before proper quenching and tempering. Through economical analysis of the investigated shaft manufacturing, it was found out that the most suitable shaft manufacture process is to manufacture the shaft from the quenched and tempered bar. But in this case, heterogeneous microstructures of ferrite, perlite, bainite, and martensite with very low fatigue limits could appear at some critical locations.
机译:研究了钢轴淬火和回火优化的工程和经济方面。开发了对淬火钢疲劳性能预测的计算机模拟的数学模型及方法。淬火和钢化钢疲劳性能的计算机模拟应用于钢轴淬火和回火的优化。基于经济分析,接受了适当的热处理过程。基于微结构组合物和产量强度预测淬火和钢化钢的疲劳性能。基于淬火硬度预测微观结构组成和产屈率强度。通过使用有限体积法,通过计算机模拟预测工件中的淬火硬度的分布。基于冷却时间和摩数试验结果估计了淬火硬度。考虑到淬火钢的机械性能直接取决于硬度,硬化程度和微观结构成分。使用数值模拟微观结构和机械性能,发现所研究的轴在适当的淬火和回火之前在适当的几何形状上机械加工或形成时具有最佳疲劳性能。通过对调查轴制造的经济分析,发现最合适的轴制造工艺是从淬火和钢化棒制造轴。但在这种情况下,在一些关键位置可能出现具有非常低的疲劳范围的铁氧体,珍珠岩,贝氏体和马氏体的异质微观结构。

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