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An Experimental Study on Nano-Carbon Films as an Anti-Wear Protection for Drilling Tools

机译:纳米碳膜作为钻具抗磨保护的实验研究

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Carbon thin films of 50–100 nm thickness were synthesized by Pulsed Laser Deposition in vacuum at different laser fluences from 2 to 6 J/cm2. The deposited films were characterized by Raman spectroscopy for compositional assessment, scanning electron microscopy for morphology/thickness evaluations, and X-ray reflectivity for density, thickness, and roughness determinations. The films were ~100 nm thin, smooth, droplet-free, made of a-C:H type of diamond-like carbon. The mechanical properties of synthesized films were studied by nanoindentation and adhesion tests. The films that were obtained at low laser fluences (2, 3 J/cm2) had better mechanical properties as compared to those synthesized at higher fluences. The mean values of hardness were around 20 GPa, while the friction coefficient was 0.06. The deposition conditions of carbon thin films that displayed the best mechanical properties were further used to coat commercial drills. Both uncoated and coated drills were tested on plates that were made of three types of steel: Stainless steel 304, general use AISI 572 Gr 65 steel (OL60), and AISI D3 tool steel (C120). All of the drill edges and tips were studied by optical and scanning electron microscopes. The coated samples were clearly found to be more resistant, and displayed less morphological defects than their uncoated counterparts when drilling stainless steel and OL60 plates. In the case of C120 steel, carbon coatings failed because of the high friction between drill and the metal plate resulting in tip edges blunting that occurred during processing.
机译:通过在2到6 J / cm2的不同激光注量下,在真空中通过脉冲激光沉积合成50–100 nm厚度的碳薄膜。通过拉曼光谱法对沉积的膜进行表征,以进行成分评估,通过扫描电子显微镜对形态/厚度进行评估,并通过X射线反射率进行密度,厚度和粗糙度测定。这些薄膜是由a-C:H型类金刚石碳制成的〜100 nm薄,光滑,无液滴的薄膜。通过纳米压痕和附着力试验研究了合成膜的力学性能。与在高通量下合成的薄膜相比,在低激光通量下(2,3 J / cm2)获得的薄膜具有更好的机械性能。硬度的平均值约为20 GPa,而摩擦系数为0.06。具有最佳机械性能的碳薄膜的沉积条件被进一步用于涂覆商业钻头。在由三种类型的钢制成的板上测试了无涂层和涂层钻头:304不锈钢,通用AISI 572 Gr 65钢(OL60)和AISI D3工具钢(C120)。通过光学和扫描电子显微镜研究了所有钻头的边缘和尖端。显然,当对不锈钢和OL60板进行钻孔时,与未涂层样品相比,涂层样品具有更高的抵抗力,并且形态缺陷更少。在C120钢的情况下,由于钻头和金属板之间的高摩擦力导致碳涂层失效,从而导致在加工过程中发生尖端边缘钝化。

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