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A Surface Roughness and Power Consumption Analysis When Slot Milling Austenitic Stainless Steel in a Dry Cutting Environment

机译:干切削环境中槽铣奥氏体不锈钢时的表面粗糙度和功耗分析

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摘要

Engineered components must satisfy the surface texture requirements and traditionally surface roughness (arithmetic average, Ra) has been used as one of the principles methods to assess quality. Surface roughness is a result of the cutting parameters such as: cutting speed, feed per tooth and the axial depth of cut, also the tool's geometry, tool wear vibrations, etc. Moreover, the surface finish influences the mechanical properties such as fatigue behavior, wear, corrosion, lubrication, and electrical conductivity. The research reported herein is focused mainly on surface roughness and power consumption analysis of an austenitic stainless steel milled in a dry cutting environment. The experiments were conducted on a Siemens 840D Bridgeport Vertical Machining center 610XP2. The selection of this workpiece material was based on it's widely applications in cutlery, hardware, surgical instruments, industrial equipment and in the automotive and aerospace industry due to its high corrosion resistance and high strength characteristics. The results show that selection of a careful combination of cutting parameters can achieve low values of surface roughness and power consumption instead of changing the cutting parameters individually.
机译:工程化部件必须满足表面纹理要求,传统的表面粗糙度(算术平均值,RA)已被用作评估质量的原理方法之一。表面粗糙度是切割参数的结果,如:切割速度,每齿的饲料和轴向深度,也是工具的几何形状,工具磨损振动等。此外,表面光洁度影响了疲劳行为等机械性能,磨损,腐蚀,润滑和导电性。本文报道的研究主要集中在干切削环境中奥氏体不锈钢的表面粗糙度和功耗分析。实验在西门子840d Bridgeport垂直加工中心610xp2上进行。该工件材料的选择是基于它在利用,硬件,外科手术器械,工业设备和汽车和航空航天工业中广泛应用,由于其高耐腐蚀性和高强度特性。结果表明,选择切割参数的仔细组合可以实现表面粗糙度和功耗的低值,而不是单独改变切割参数。

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