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Computational Fluid Dynamic Analysis of Coolant Flow in Turning

机译:车削冷却液流动的计算流体动力学分析

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Application of coolant to the cutting domain is increasingly important in machining titanium alloy, nickel-base superalloy and other difficult-to-machine materials. However, the effect of coolant speed on the accessibility of coolant to the tool tip has not yet been investigated. For this reason, the computational fluid dynamics analysis was applied to the coolant flow in turning where coolant is applied from the side of end flank face to the tool tip. In this study the free surface analysis or two phase computational fluid dynamics analysis of coolant and air was conducted for visualizing the flow of coolant around the tool tip. The capillary force is considered in the analysis because the gap between the tool flank face and machined surface is very small. The volume fraction of liquid obtained in finite volumes showed the accessibility of coolant to the tool tip. It is found to be difficult for coolant to access to the tool tip through a narrow gap between the tool flank face and machined surface when the coolant speed is not high. It is also found that the accessibility of coolant is improved as the speed of coolant is increased.
机译:在切削钛合金,镍基高温合金和其他难以切削的材料时,将冷却剂应用于切削领域变得越来越重要。但是,尚未研究冷却液速度对冷却液到达刀尖的影响。由于这个原因,计算流体动力学分析被应用于从端侧面到刀尖的冷却液的转向中的冷却液流动。在这项研究中,进行了冷却液和空气的自由表面分析或两阶段计算流体动力学分析,以可视化冷却液在刀尖周围的流动。分析中考虑了毛细作用力,因为刀具侧面和加工表面之间的间隙很小。在有限体积中获得的液体的体积分数显示出冷却剂可到达刀尖。发现当冷却剂速度不高时,冷却剂很难通过刀具侧面和加工表面之间的狭窄间隙进入刀具尖端。还发现,随着冷却剂的速度增加,冷却剂的可及性得到改善。

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