Surface Processing Technology in Improving Operational Properties of Hot-Work Tool Steel

N. Ulakhanov, U. Mishigdorzhiyn, A. Greshilov, A. Tikhonov, I. Ryzhikov
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引用次数: 1

Abstract

The present study is devoted to the surface processing technology of 3Х2В8Ф hot-work tool steel and the effect on its operational properties. The surface processing included thermal-chemical treatment (TCT) and surface finishing. Boroaluminizing (joint diffusion with boron and aluminum) was chosen as a TCT method. Steel samples were covered by a treatment paste, containing boron carbide, aluminum and sodium fluoride powders. The exposure time was 2 hours and the treatment temperature 950°C and 1050°C. The surface finishing was carried out by an elbor grinding tool to coordinate grinding on a vertical milling machine. The diffusion layers with a composite structure were formed on top of the steel as a result of TCT at 1050°C. Processing at 950°C resulted in a diffusion layer formation with layered structure. The surface roughness after boroaluminizing have increased from initial Ra 1.5 μm to Ra 4 μm after 950°C TCT and to Ra 7.7 μm after 1050°C TCT. The roughness increase was due to surface reactions with air components, such as oxygen and nitrogen, as well as their penetration to the upper zones. Applying surface finishing as a final mechanical operation (FMO) resulted in roughness reduction from the above mentioned values to Ra 0.09 μm to Ra 0.43 μm, respectively. In addition, the upper redundant zone of the layer was removed with no damage done to the inner zones by means of FMO. The provided surface quality ensures sufficient operational properties of the machine parts and details made of this particular steel. Keywords— thermal-chemical treatment, boroaluminizing, composite structure, roughness, surface finishing
提高热加工工具钢使用性能的表面处理技术
研究了3Х2В8Ф热加工工具钢的表面加工工艺及其对其使用性能的影响。表面处理包括热化学处理(TCT)和表面处理。选择硼铝共渗(硼铝结合扩散)作为TCT方法。钢样品被一种含有碳化硼、铝和氟化钠粉末的处理膏覆盖。曝光时间为2小时,处理温度为950℃和1050℃。在立式铣床上,用手摇磨具对表面进行协调磨削。在1050℃高温下,在钢的表面形成具有复合结构的扩散层。在950℃下加工,形成具有层状结构的扩散层。950℃TCT处理后,表面粗糙度从初始Ra 1.5 μm提高到Ra 4 μm, 1050℃TCT处理后,表面粗糙度提高到Ra 7.7 μm。粗糙度的增加是由于表面与空气成分(如氧气和氮气)的反应以及它们对上部区域的渗透。将表面精加工作为最后的机械操作(FMO),使粗糙度从上述值分别降至Ra 0.09 μm至Ra 0.43 μm。此外,通过FMO去除了层的上部冗余区,对内层无损伤。所提供的表面质量确保由这种特殊钢材制成的机器部件和细节具有足够的操作性能。关键词:热化学处理,硼渗铝,复合结构,粗糙度,表面处理
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