Advanced machining of miniature unmanned aircraft vehicle components using nanostructured cutting tools

M. Jackson, J. Burgess, M. Whitfield, M. Whitt, R. Da-Silva, M. DaSilva, A. Machado, R. Davis
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引用次数: 3

Abstract

The advanced machining of components used in miniature unmanned aircraft vehicles is the focus of this study. The finite element method (FEM) is used to predict forces and temperatures using cutting tool inserts with a thin nanostructured film of high integrity. Similarity models are used to validate the finite element results and to understand the influence of micromachining parameters on cutting temperatures generated when machining Al 380-0 alloy. The predicted results are compared to experimental forces and temperatures using a three-dimensional piezoelectric function dynamometer and a short-range infra-red wavelength thermal camera. Nanostructured thin layer coatings lower machining forces and temperatures, which are validated through FEM predictions and experimental observations. The experimental results suggest that increasing the cutting tool’s rake angle at higher depths of cut will reduce cutting temperatures, which are predicted using the similarity models for micromachining.
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基于纳米结构刀具的微型无人机部件先进加工
微型无人机零部件的先进加工是本课题研究的重点。采用有限元法对具有高完整性纳米结构薄膜的刀具刀片进行受力和温度预测。采用相似模型验证有限元结果,了解微加工参数对加工Al 380-0合金时产生的切削温度的影响。利用三维压电函数测功仪和近程红外波长热像仪将预测结果与实验力和温度进行了比较。纳米结构薄层涂层降低了加工力和温度,通过有限元预测和实验观察验证了这一点。实验结果表明,在较高的切削深度下,增大刀具前倾角会降低切削温度,这是利用微加工相似模型预测的结果。
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