The Effect of Carbide Concentration at Grain Boundaries on Thermal Stresses in Castings for Heat Treatment Furnace Tooling

A. Bajwoluk, P. Gutowski
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Abstract

Austenitic Fe-Ni-Cr alloys are commonly used for the production of castings intended for high-temperature applications. One area where Fe-Ni-Cr castings are widely used is the equipment for heat treatment furnaces. Despite the good heat resistance properties of the materials used for the castings, they tend to develop cracks and deformations over time due to cyclic temperature changes experienced under high temperature operating conditions. In the case of carburizing furnace equipment, thermal stresses induced by the temperature gradient in each operating cycle on rapidly cooled elements have a significant influence on the progressive fatigue changes. In the carburized subsurface zone, also the different thermal expansion of the matrix and non-metallic precipitates plays a significant role in stress distribution. This article presents the results of analyses of thermal stresses in the surface and subsurface layer of carburized alloy during cooling, taking into account the simultaneous effect of both mentioned stress sources. The basis for the stress analyzes were the temperature distribution in the cross-section of the cooled element as a function cooling time, determined numerically using FEM. These distributions were taken as the thermal load of the element. The study presents the results of analyses on the influence of carbide concentration increase on stress distribution changes caused by the temperature gradient. The simultaneous consideration of both thermal stress sources, i.e. temperature gradient and different thermal expansions of phases, allowed for obtaining qualitatively closer results than analyzing the stress sources independently
晶界碳化物浓度对热处理炉模具铸件热应力的影响
奥氏体 Fe-Ni-Cr 合金通常用于生产高温应用铸件。Fe-Ni-Cr铸件广泛应用的一个领域是热处理炉设备。尽管用于铸件的材料具有良好的耐热性能,但在高温工作条件下,由于温度的周期性变化,这些材料往往会随着时间的推移而产生裂纹和变形。在渗碳炉设备中,快速冷却元件在每个工作循环中的温度梯度所引起的热应力对渐进疲劳变化具有重大影响。在渗碳次表层区域,基体和非金属析出物的不同热膨胀在应力分布中也起着重要作用。本文介绍了冷却过程中渗碳合金表层和次表层的热应力分析结果,同时考虑了上述两种应力源的影响。应力分析的基础是冷却元件横截面上的温度分布与冷却时间的函数关系,通过有限元数值计算得出。这些分布被视为元件的热负荷。本研究介绍了碳化物浓度增加对温度梯度引起的应力分布变化影响的分析结果。同时考虑两个热应力源,即温度梯度和各相不同的热膨胀率,可以获得比单独分析应力源更接近的定性结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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