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Parametric analysis for slot milling of carbon fiber reinforced polymers based on ultrasonic machining

机译:基于超声加工的碳纤维增强聚合物的缝铣参数分析

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Carbon fiber reinforced polymers (CFRP), have got rapidly enhanced applications in aerospace and other fields due to their attractive properties of high specific strength, high specific stiffness, and low thermal expansion. However, their properties like inhomogeneous, anisotropy and low heat dissipation are the main hindrance for machining of such materials with desired quality. In this research, the feasibility analysis was carried out and found that ultrasonic machining is only feasible for CFRP-T700 with low an elastic modulus of 233MPa as compared to rotary ultrasonic machining. Analysis of variance was performed and found that spindle speed is the significant parameter for feed and axial direction cutting forces. The cutting depth has found as a significant parameter for axial and feed cutting forces whereas the feed rate found a significant parameter for the axial force only. The optimal combination of these three forces has investigated with spindle speed 5000 rpm, feed rate 175mm/min and cutting depth 1.0 mm. Further analysis showed that spindle speed and cutting depth are significant for surface roughness and the optimal values for surface roughness (less than 1.5 μm) can be found with spindle speed 3800 rpm, feed rate 220 mm/min and cutting depth 2.2 mm cutting depth. The analytical model for surface roughness has then developed and validated. The results will be much helpful for machining of slots based on ultrasonic technology also for the industry level for better quality and to save expensive CFRP materials.
机译:碳纤维增强聚合物(CFRP)由于具有高比强度,高比刚度和低热膨胀性的吸引力而迅速在航空航天和其他领域得到了广泛应用。但是,它们的特性(如不均匀,各向异性和低散热性)是加工具有所需质量的此类材料的主要障碍。在这项研究中,进行了可行性分析,发现超声波加工仅适用于与旋转超声波加工相比具有低233MPa弹性模量的CFRP-T700。进行了方差分析,发现主轴转速是进给和轴向切削力的重要参数。发现切削深度是轴向和进给切削力的重要参数,而进给速度仅是轴向力的重要参数。研究了这三个力的最佳组合,主轴转速为5000 rpm,进给速度为175mm / min,切削深度为1.0 mm。进一步的分析表明,主轴转速和切削深度对于表面粗糙度很重要,并且可以找到主轴转速3800 rpm,进给速度220 mm / min和切削深度2.2 mm切削深度时表面粗糙度的最佳值(小于1.5μm)。然后开发并验证了表面粗糙度的分析模型。该结果对于基于超声技术的槽加工以及工业水平的更好质量和节省昂贵的CFRP材料非常有帮助。

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