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A study on the magneto-assisted spiral polishing on the inner wall of the bore with magnetic hot melt adhesive particles (MHMA particles)

机译:用磁性热熔粘合剂颗粒(MHMA颗粒)对孔内壁进行磁辅助螺旋抛光的研究

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摘要

The spiral polishing mechanism employed a fast turning screw rod to drive the abrasive for workpiece surface polishing. In this study, the powerful ring magnet installed around the workpiece would attract the self-developed magnetic hot melt adhesive particles (MHMA particles) during the process of polishing, driving the SiC particles against the workpiece, the inner wall of the bore. At the same time, the flexibility of MHMA particles helped improve the surface quality of the bore by preventing the SiC particles from heavily scratching it. The effects of magnetic flux density, size and concentration of SiC particles, concentration of MHMA particles, viscosity of silicone oil, revolution speed of the spindle as well as machining time and machining gap on operation temperature, slurry viscosity, surface roughness, and material removal were discussed and the best parameter combination was identified based on the results of the experiment. The effects of each machining parameter on the finished surface topography of the workpiece were also examined. Both analysis of variance and F-test indicated that magnetic flux density and the concentration of MHMA particles were the two most important variables affecting the surface roughness. In other words, magnetic force helped improve spiral polishing. Furthermore, the results showed that adding new MHMA particles to the slurry greatly improved the surface quality, at a rate of 90%, and reduced the workpiece surface roughness from 0.9 μm down to 0.094 μm.
机译:螺旋抛光机构采用快速旋转的螺杆驱动磨料进行工件表面抛光。在这项研究中,安装在工件周围的强力环形磁体会在抛光过程中吸引自行形成的磁性热熔胶颗粒(MHMA颗粒),从而将SiC颗粒推向工件(孔的内壁)。同时,MHMA颗粒的柔韧性通过防止SiC颗粒严重刮擦而有助于改善孔的表面质量。磁通密度,SiC颗粒的尺寸和浓度,MHMA颗粒的浓度,硅油的粘度,主轴的转速以及加工时间和加工间隙对操作温度,浆料粘度,表面粗糙度和材料去除的影响进行了讨论,并根据实验结果确定了最佳参数组合。还检查了每个加工参数对工件精加工表面形貌的影响。方差分析和F检验均表明,磁通密度和MHMA颗粒浓度是影响表面粗糙度的两个最重要的变量。换句话说,磁力有助于改善螺旋抛光。此外,结果表明,向浆料中添加新的MHMA颗粒可以以90%的比率极大地改善表面质量,并将工件表面粗糙度从0.9μm降低到0.094μm。

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