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Swept Mechanism of Micro-Milling Tool Geometry Effect on Machined Oxygen Free High Conductivity Copper (OFHC) Surface Roughness

机译:显微铣削刀具几何形状对机加工无氧高电导率铜(OFHC)表面粗糙度的扫描机制

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摘要

Cutting tool geometry should be very much considered in micro-cutting because it has a significant effect on the topography and accuracy of the machined surface, particularly considering the uncut chip thickness is comparable to the cutting edge radius. The objective of this paper was to clarify the influence of the mechanism of the cutting tool geometry on the surface topography in the micro-milling process. Four different cutting tools including two two-fluted end milling tools with different helix angles of 15° and 30° cutting tools, as well as two three-fluted end milling tools with different helix angles of 15° and 30° were investigated by combining theoretical modeling analysis with experimental research. The tool geometry was mathematically modeled through coordinate translation and transformation to make all three cutting edges at the cutting tool tip into the same coordinate system. Swept mechanisms, minimum uncut chip thickness, and cutting tool run-out were considered on modeling surface roughness parameters (the height of surface roughness Rz and average surface roughness Ra) based on the established mathematical model. A set of cutting experiments was carried out using four different shaped cutting tools. It was found that the sweeping volume of the cutting tool increases with the decrease of both the cutting tool helix angle and the flute number. Great coarse machined surface roughness and more non-uniform surface topography are generated when the sweeping volume increases. The outcome of this research should bring about new methodologies for micro-end milling tool design and manufacturing. The machined surface roughness can be improved by appropriately selecting the tool geometrical parameters.
机译:在微切削中,应该非常考虑切削刀具的几何形状,因为它会对加工表面的形貌和精度产生重大影响,尤其是考虑到未切削切屑的厚度与切削刃半径相当时,尤其如此。本文的目的是阐明在微铣削过程中切削刀具几何形状的机理对表面形貌的影响。通过结合理论,研究了四种不同的切削刀具,包括两个具有15°和30°螺旋角的两刃立铣刀,以及两个具有15°和30°螺旋角的三刃立铣刀通过实验研究进行建模分析。通过坐标平移和变换对工具的几何形状进行数学建模,以使切削工具尖端上的所有三个切削刃成为同一坐标系。在建立的数学模型的基础上,对模型化的表面粗糙度参数(表面粗糙度Rz的高度和平均表面粗糙度Ra)考虑了扫掠机制,最小未切削切屑厚度和切削刀具跳动。使用四种不同形状的切割工具进行了一组切割实验。已经发现,切削工具的扫掠体积随着切削工具螺旋角和槽纹数目的减小而增加。当清扫量增加时,会产生很大的粗加工表面粗糙度和更不均匀的表面形貌。这项研究的结果应为微型立铣刀的设计和制造带来新的方法。通过适当选择刀具的几何参数,可以提高加工表面的粗糙度。

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