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Effects of substrate preheating during direct energy deposition on microstructure, hardness, tensile strength, and notch toughness

机译:直接能量沉积在微结构,硬度,拉伸强度和缺口韧性中的底物预热的影响

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摘要

This study examined the effects of substrate preheating for the hardfacing of cold-press dies using the high-speed tool steel AISI M4. The preheating of the substrate is a widely used technique for reducing the degree of thermal deformation and preventing crack formation. We investigated the changes in the metallurgical and mechanical properties of the high-speed tool steel M4 deposited on an AISI D2 substrate with changes in the substrate preheating temperature. Five preheating temperatures (100-500 A degrees C; interval of 100 A degrees C) were selected, and the changes in the temperature of the substrate during deposition were observed. As the preheating temperature of the substrate was increased, the temperature gradient between the melting layer and the substrate decreased; this prevented the formation of internal cracks, owing to thermal stress relief. Field-emission scanning electron microscopy showed that a dendritic structure was formed at the interface between the deposited layer and the substrate while a cellular microstructure was formed in the deposited layer. As the preheating temperature was increased, the sizes of the cells and precipitated carbides also increased. Furthermore, the hardness increased slightly while the strength and toughness decreased. Moreover, the tensile and impact properties deteriorated rapidly at excessively high preheating temperatures (greater than 500 A degrees C). The results of this study can be used as preheating criteria for achieving the desired mechanical properties during the hardfacing of dies and molds.
机译:本研究检测了使用高速工具钢AISI M4对冷压模硬粘合的基材预热的影响。基材的预热是一种广泛使用的技术,用于降低热变形程度和防止裂缝形成。我们调查了沉积在AISI D2衬底上的高速工具钢M4的冶金和力学性能的变化,其具有基板预热温度的变化。选择五个预热温度(100-500℃; 100℃的间隔),观察到沉积期间衬底的温度变化。随着基板的预热温度增加,熔化层和基板之间的温度梯度降低;由于热应力浮雕,这防止了内部裂缝的形成。场发射扫描电子显微镜显示,在沉积层和基板之间的界面处形成树突结构,同时在沉积层中形成细胞微观结构。随着预热温度的增加,细胞和沉淀的碳化物的尺寸也增加。此外,硬度在强度和韧性下降时略有增加。此外,拉伸和冲击性能在过热的预热温度过高(大于500℃)时迅速劣化。该研究的结果可以用作预热标准,用于在硬粘和模具的硬坯期间实现所需的机械性能。

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