Investigation of cutting forces and machinability during milling of corrosion-resistant powder steel produced by laser metal deposition

A. Babaev, Victor Kozlov, Artem Semenov, Anton Shevchuk, Valeriia Ovcharenko, E. Sudarev
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Abstract

Introduction. Additive manufacturing technologies for the production of geometrically approximate workpieces require post-processing. This applies to the use of cutting tools in milling operations when machining critical surfaces. The latter are specified strict requirements to accuracy of linear and angular dimensions and quality of the surface layer. An urgent task remains to increase machining productivity when recording cutting forces and surface roughness to develop technological recommendations. Purpose of work: experimental determination of cutting modes providing the highest productivity when milling LMD-workpieces (Laser Metal Deposition) made of steel 0.12-Cr18-Ni10-Ti (AISI 321) by carbide end mill, while maintaining the milling cutter operability and required roughness. The properties and microstructure of the specimens along and across the build direction are investigated. The influence of feed (when the mill moves across and along the build direction), depth and width of milling, speed on the components of the cutting force and roughness of the machined surfaces during counter milling of LMD-workpieces made of steel 0.12-Cr18-Ni10-Ti (AISI 321) with end mill made of H10F carbide with a diameter of 12 mm without wear-resistant coating is established and formalized. The research methods are the dynamic measurement of all three components of the cutting force using a three-component dynamometer and the measurement of roughness with a profilometer. The condition and microgeometry of the cutting edges were monitored before and after milling using scanning optical and scanning electron microscopy. Results and Discussion. The difference in cutting forces depending on the milling pattern (along and across the build direction) was shown. Studies showed that the milling depth and cutting speed have little effect on the lateral and axial components of the cutting force. The feed force increases significantly with increasing depth of cut, especially when feeding across the specimen build direction. It is found that all three components of the cutting force are directly proportional to the value of the minute feed. The equations for calculating all three components of the cutting force with a change in the minute feed are obtained.
对激光金属沉积法生产的耐腐蚀粉末钢铣削过程中的切削力和可加工性的研究
简介用于生产几何形状近似工件的快速成型制造技术需要进行后处理。这适用于在铣削加工中使用切削工具加工关键表面。后者对线性和角度尺寸的精度以及表面层的质量有严格的要求。当记录切削力和表面粗糙度以制定技术建议时,提高加工生产率仍是一项紧迫任务。工作目的:通过实验确定在使用硬质合金立铣刀铣削由 0.12-Cr18-Ni10-Ti (AISI 321) 钢制成的 LMD(激光金属沉积)工件时可提供最高生产率的切削模式,同时保持铣刀的可操作性和所需的粗糙度。研究了试样沿和横向的性能和微观结构。在使用直径为 12 毫米、无耐磨涂层的 H10F 硬质合金立铣刀对 0.12-Cr18-Ni10-Ti (AISI 321) 钢制 LMD 工件进行反铣削时,确定并正式确定了进给量(当铣刀横向和纵向移动时)、铣削深度和宽度、速度对切削力分量和加工表面粗糙度的影响。研究方法是使用三分量测功机对切削力的所有三个分量进行动态测量,并使用轮廓仪测量粗糙度。使用扫描光学显微镜和扫描电子显微镜监测了铣削前后切削刃的状况和微观几何形状。结果与讨论。铣削模式(沿构建方向和横向)不同,切削力也不同。研究表明,铣削深度和切削速度对切削力的横向和轴向分量影响不大。进给力随着切削深度的增加而明显增大,尤其是横向进给时。研究发现,切削力的三个分量都与微小进给量的值成正比。由此可得出切削力的三个分量随分进给量变化的计算公式。
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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