首页> 外文期刊>Arabian Journal for Science and Engineering >Turning Performance of Bonded Cutting Tools with Nanographene or Multi-walled Carbon Nanotube Particle-Reinforced Epoxy-Based Nanocomposite Adhesives
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Turning Performance of Bonded Cutting Tools with Nanographene or Multi-walled Carbon Nanotube Particle-Reinforced Epoxy-Based Nanocomposite Adhesives

机译:纳米石墨烯或多壁碳纳米管颗粒增强环氧树脂基纳米复合胶粘剂的切削刀具的车削性能

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摘要

In machining operations, mechanically clamped, brazed and bonded cutting tools are utilized. The bonded cutting tools have some advantages over the others especially in precision processes. But, there is not much application due to their low joint strength. Therefore, in this study, turning performance of bonded cutting tools was investigated. Nanographene particle-reinforced epoxy or multi-walled carbon nanotube (MWCNT) particle-reinforced epoxy-based nanocomposite adhesives were produced to enhance the adhesive shear strength and joint tensile strength of epoxy adhesive. Steel-cemented carbide (WC, tungsten carbide)-steel single lap joints were produced by applying these nanocomposite adhesives and neat epoxy-based adhesive to specify the optimum amount of nanoparticle reinforcement. Then, machining operations were performed with inserts attached to the tool holder with mechanical clamping method, neat epoxy adhesive and epoxy-based nanocomposite adhesives by utilizing a CNC lathe. The cutting forces, cutting temperatures and surface roughnesses were measured, and the results were compared by each other. Depending on the experimental results, lower cutting forces and surface roughnesses occurred when using bonded cutting tools than that obtained when using mechanical clamping due to damping properties of the adhesive layer. However, the cutting temperatures measured on the bonded cutting tools were higher than that measured on the mechanical clamped cutting tools because of the low thermal conductivity of the adhesive layer. In addition, it was observed that the nanoparticle-reinforced epoxy-based nanocomposite adhesives increased the cutting forces and surface roughnesses a little in comparison with the neat epoxy adhesive due to increasing the viscosity of the neat epoxy and decreasing the damping properties and also decreased the cutting temperatures due to having high thermal conductivity of nanoparticles. When compared the nanoparticles, nanographene adsorbing better on the adherend surface and providing more homogeneous distribution in the matrix gave better results than MWCNT particles.
机译:在机加工操作中,使用了机械夹紧,钎焊和粘结的切削刀具。粘结的切削刀具相对于其他切削刀具具有某些优势,尤其是在精密工艺中。但是,由于它们的接头强度低,因此没有太多的应用。因此,在这项研究中,研究了粘合切削刀具的车削性能。制备了纳米石墨烯颗粒增强的环氧树脂或多壁碳纳米管(MWCNT)颗粒增强的基于环氧树脂的纳米复合粘合剂,以增强环氧粘合剂的粘合剪切强度和联合拉伸强度。通过使用这些纳米复合胶粘剂和纯环氧基胶粘剂来指定最佳的纳米颗粒补强量,可以生产出钢硬质合金(WC,碳化钨)-钢单搭接接头。然后,利用CNC车床,通过机械夹紧方法将刀片安装在刀架上,进行纯净的环氧树脂胶粘剂和基于环氧树脂的纳米复合胶粘剂的加工。测量切削力,切削温度和表面粗糙度,并将结果相互比较。取决于实验结果,由于粘合层的阻尼特性,与使用机械夹紧时相比,使用粘合切削工具时产生的切削力和表面粗糙度更低。然而,由于粘合剂层的低导热性,在粘合的切割工具上测量的切割温度高于在机械夹紧的切割工具上测量的切割温度。此外,观察到,由于纯净环氧树脂粘合剂的粘度增加和阻尼性能降低,并且与纯净环氧树脂粘合剂相比,纳米粒子增强的基于环氧树脂的纳米复合粘合剂稍微增加了切削力和表面粗糙度。由于具有高的纳米颗粒导热性,因此可以降低温度。当与纳米颗粒进行比较时,纳米石墨烯比MWCNT颗粒更好地吸附在被粘物表面上并在基质中提供更均匀的分布。

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