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Process design of the patterning process of profile grinding wheels

机译:图案磨轮图案化工艺设计

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摘要

In production environment, grinding is often the last step along the process chain. At this step, the main share of the value chain is already manufactured. Correspondingly, the process result of this step directly influences the product quality. Thus, the avoidance of process induced damages is a major challenge in grinding. The major limiting factor in grinding is the thermal load on the workpiece, which leads to grinding burn and tensile residual stresses. This thermal load can be reduced, as previous fundamental studies have shown, by means of using microstructured grinding wheels. In this paper, the patterning process of profile grinding wheels is investigated with regard to the resulting geometry and the resulting grinding wheel topography. In detail, an analytical model is established and evaluated that enables a design of the patterning process of profile grinding wheels. The presented formulas describe the local depth and width of a pattern over its length of engagement. The influence of the inclination angle of the patterning tool and the profile angle of the grinding wheel on the resulting width and length of one pattern is investigated. Further influencing parameters on the size of a pattern that are investigated are e.g. the radius of the grinding wheel, the radius of the patterning tool, the corner radius of the patterning edge and the speed ratio between the grinding wheel and the patterning tool. In addition, grinding experiments were conducted to validate the process design. The results show a high correlation between the calculated and the resulting patterns on the grinding wheel as well as that a decrease in cutting forces can be achieved by this approach. When maintaining the workpiece and grinding wheel load, the productivity of the profile grinding process can be increased in this way.
机译:在生产环境中,研磨通常是过程链的最后一步。在此步骤中,已经制造了价值链的主要份额。相应地,该步骤的过程结果直接影响了产品质量。因此,避免过程诱导的损害是磨削的主要挑战。研磨中的主要限制因素是工件上的热负荷,从而导致研磨燃烧和拉伸残余应力。随着先前的基本研究,通过使用微结构磨轮,可以降低该热负荷。在本文中,关于所得到的几何形状和所得的砂轮形貌,研究了轮廓磨轮的图案化过程。详细地,建立和评估了分析模型,其能够设计轮廓砂轮的图案化过程。所提出的公式描述了在其接合长度上的局部深度和宽度。研究了图案化工具的倾斜角度的影响以及砂轮的曲线角度对一个图案的宽度和长度的影响。进一步影响研究的模式的参数是例如砂轮的半径,图案化工具的半径,图案化边缘的角半径和砂轮和图案化工具之间的速度比。此外,进行研磨实验以验证过程设计。结果表明,计算出的砂轮上的所得图案之间的高相关以及通过这种方法可以实现切割力的降低。在保持工件和砂轮载荷时,可以以这种方式增加轮廓磨削过程的生产率。

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