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A study on the effect of tool-edge radius on critical machining characteristics in ultra-precision milling of tungsten carbide

机译:硬质合金超精密铣削中刀尖半径对关键加工特性的影响研究

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摘要

A crack-free surface can be finished on brittle materials by a specialized but traditional machining technique known as ductile-mode machining. In ductile-mode machining of brittle material, crack propagation is suppressed by selecting a suitable combination of tool and machining parameters leading to the removal of material through plastic deformation enabled by dislocation motion. In ductile-mode machining, the tool-workpiece interaction is of critical significance for the capability of the cutting process to finish a crack-free surface on a brittle material. This interaction is largely dictated by the cutting-edge radius of the tool when the undeformed chip thickness is comparable to the edge radius as is the case of ductile-mode machining. This paper presents the experimental results of ductile-mode milling of tungsten carbide to investigate the effect of cutting-edge radius on certain critical machining characteristics associated with the ductile-brittle transition specific to milling process of brittle material. The experimental results have established that an increase in the cutting-edge radius within a certain range increases the critical feed per edge leading to the improvement of material removal rate in ductile-mode milling. An increasingly negative effective rake angle is desired during milling with larger edge-radiused tool to suppress the crack propagation in the cutting zone to achieve ductile-mode machining. The results also identify the effect of the edge radius on certain other parameters such as critical specific cutting energy, plowing effect and subsurface damage depth to comprehend the ductile-brittle transition phenomenon in ductile-mode milling.
机译:可以通过一种特殊但传统的加工技术(称为延性模加工)在脆性材料上完成无裂纹的表面处理。在脆性材料的延性模式加工中,通过选择合适的工具和加工参数组合来抑制裂纹扩展,从而通过位错运动实现的塑性变形来去除材料。在延性模式加工中,工具与工件的相互作用对于切削过程在脆性材料上完成无裂纹表面的能力至关重要。当未变形的切屑厚度与边缘半径相当时(如球墨铸模加工情况),这种相互作用很大程度上取决于刀具的刀沿半径。本文介绍了碳化钨的延性模式铣削的实验结果,以研究尖端半径对与脆性材料铣削过程特定的延性-脆性转变相关的某些关键加工特性的影响。实验结果表明,在一定范围内增加切削刃半径会增加每边的临界进给量,从而改善延性铣削中的材料去除率。在使用较大的半径半径较大的刀具进行铣削的过程中,期望有效负前角逐渐增大,以抑制裂纹在切削区域中的扩展,从而实现延性模加工。研究结果还确定了刃口半径对某些其他参数的影响,例如临界比切削能,耕作效果和地下破坏深度,以了解延性模铣削中的延性-脆性转变现象。

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