Cutting force model and damage formation mechanism in milling of 70wt% Si/Al composite

材料科学 复合材料 机械加工 表面粗糙度 GSM演进的增强数据速率 涂层 破损 复合数 冶金 计算机科学 电信
作者
Guolong Zhao,Lianjia Xin,Liang Li,Yang Zhang,Ning He,Hans Nørgaard Hansen
出处
期刊:Chinese Journal of Aeronautics [Elsevier BV]
卷期号:36 (7): 114-128 被引量:66
标识
DOI:10.1016/j.cja.2022.07.018
摘要

High-mass fraction silicon aluminium composite (Si/Al composite) has unique properties of high specific strength, low thermal expansion coefficient, excellent wear resistance and weldability. It has attracted many applications in terms of radar communication, aerospace and automobile industry. However, rapid tool wear resulted from high cutting force and hard abrasion, and damaged machined surfaces are the main problem in machining Si/Al composite. This work aims to reveal the mechanisms of milling-induced damages of 70wt% Si/Al composites. A cutting force analytical model considering the characteristics of both the primary silicon particles and the cutting-edge radius was established. Milling experiments were conducted to verify the validity of the model. The results show that the analytical model exhibits a good consistency with the experimental results, and the error is about 10%. The cutting-edge radius has significant effects on the cutting force, surface roughness and damage formation. With the increase in the cutting-edge radius, both the cutting force and the surface roughness decrease firstly and then increase. When the cutting-edge radius is 27 μm, the surface roughness (Sa) reaches the minimum of 2.3 μm. Milling-induced surface damages mainly contain cracks, pits, scratches, matrix coating and burrs. The damage formation is dominated by the failure mode of primary silicon particles, which includes compressive breakage, intragranular fracture, particle pull-out, and interface debonding. In addition, the high ductility of aluminium matrix leads to matrix coating. This work provides guidance for tool selection and damage inhibition in high-efficiency and high-precision machining of high mass fraction Si/Al composites.
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