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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >A study on fine finishing of hard workpiece surfaces using fluidized elastic abrasives
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A study on fine finishing of hard workpiece surfaces using fluidized elastic abrasives

机译:用流态化弹性磨料精加工硬质工件表面的研究

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Material removal and surface generation by erosion is the principle adopted in selected manufacturing processes like abrasive jet machining and abrasive water jet cutting. As the jet velocities involved in these processes are high, they are good for material removal. With low impinging velocities, it is possible to micro erode the surface of the workpiece to achieve good finish. To achieve low velocity impingement, abrasives could be fluidized and the target surface moved against them at the required velocities. This procedure has the limitation that fine abrasive particles are difficult or impossible to fluidize and this need to be addressed to achieve significant improvement in surface finish. For this fine abrasives could be embedded on a larger carrier particle of suitable size that is easy for fluidization. If this carrier is made of elastic material, impact erosion could further be reduced paving way for improved surface finish. In this paper, such abrasive-coated elastomeric spheres of average diameter 3 mm are termed as elastic abrasives. Based on mathematical modelling and experimental investigations, the influence of major process variables and optimal operating conditions has been arrived at. At optimum operating conditions, the surface roughness (Ra value) came down to 0.0267 μm from an initial value of 0.182 μm.
机译:材料的去除和由于腐蚀而产生的表面是某些制造工艺中采用的原理,如磨料喷射加工和磨料水喷射切割。由于这些过程涉及的射流速度很高,因此它们对材料的去除非常有利。冲击速度低时,可能会微腐蚀工件的表面以获得良好的光洁度。为了实现低速冲击,可以将磨料流化,并使目标表面以所需的速度逆着它们移动。该方法的局限性在于细磨料颗粒难以或不可能流化,并且需要解决该问题以实现表面光洁度的显着改善。为此,可以将细磨料嵌入合适尺寸的较大载体颗粒上,该颗粒易于流化。如果该载体由弹性材料制成,则可以进一步减少冲击腐蚀,从而改善表面光洁度。在本文中,这种平均直径为3 mm的涂覆有磨料的弹性体球体被称为弹性磨料。在数学建模和实验研究的基础上,得出了主要过程变量和最佳操作条件的影响。在最佳操作条件下,表面粗糙度(Ra值)从初始值0.182μm降至0.0267μm。

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