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Wear mechanisms of uncoated and coated cemented carbide tools in machining lead-free silicon brass

机译:在加工无铅硅黄铜中的无涂层粘合硬质合金工具的磨损机制

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Free-machining brass containing 2-3% of lead is a preferred industrial material as it shows excellent machinability where low cutting forces, short chips and reduced tool wear are attained. However this addition of lead, a highly toxic and hazardous material, leads to health and environmental issues. Alternative lead-free brasses are known for poor chip control and accelerated tool wear. The current study focuses on wear mechanisms of uncoated and coated cemented carbide tools when high-speed machining lead-free CuZn21Si3P silicon brass. The study shows that severe crater formation on the rake is the dominant tool failure mode. Microscopy observations indicate the diffusion wear mechanism to be driven by diffusion of cobalt binder into the chips and minor cross-diffusion of copper and zinc. Loss of the binder in cemented carbide is accompanied by adhesive pluck-out of WC grains. As a way to hinder the loss of Co, the diffusion preventing capacity of a-C:H diamond like carbon and (Ti,V,Zr,Nb,Hf,Ta)N nitride coating were tested. SEM, EDX and TEM data show that formation of amorphous SiO2 and stoichiometric beta-SiAION stable layers was observed on the nitride coating, thus preventing diffusional tool wear. O-rich and N-rich glassy amorphous layers in Si-Al-O-N system with ZnS inclusions were found on the DLC coating. Partial delamination of the DLC coating and removal of the glassy phases resulted in localized crater formation associated with diffusional wear. (C) 2017 Elsevier B.V. All rights reserved.
机译:含有2-3%的铅的自由加工黄铜是优选的工业材料,因为它显示出优异的加工性,其中达到了低切削力,短芯片和减少的工具磨损。然而,这种铅,毒性和有害物质的增加,导致健康和环境问题。替代的无铅黄铜已知芯片控制和加速工具磨损不良。目前的研究侧重于高速加工无铅CUZN21SI3P硅黄铜时涂有未涂层和涂层硬质合金工具的磨损机制。该研究表明,耙子上的严重火山口是主要的工具故障模式。显微镜观察表明,通过将钴粘合剂的扩散到铜和锌的小交叉扩散的扩散磨损机构。粘合碳化物中的粘合剂的丧失伴随着WC晶粒的粘合剂。作为妨碍CO丧失的方法,测试了A-C:H金刚石等碳和(Ti,V,Zr,Nb,HF,Ta)N氮化物涂层的扩散阻止能力。 SEM,EDX和TEM数据显示在氮化物涂层上观察到非晶SiO 2和化学计量β-唾液酸β稳定层,从而防止扩散工具磨损。在DLC涂层上发现了具有ZnS夹杂物的Si-Al-O-N系统中的富含富含富氮的玻璃状非晶层。 DLC涂层的部分分层并去除玻璃阶段导致与扩散磨损相关的局部陨石坑形成。 (c)2017 Elsevier B.v.保留所有权利。

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