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首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Wear and corrosion of silicon nitride rolling tools in copper rolling
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Wear and corrosion of silicon nitride rolling tools in copper rolling

机译:氮化硅轧制工具在铜轧制中的磨损和腐蚀

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For hot rolling applications it is essential to have materials with excellent high-temperature properties. Silicon nitride combines the properties optimum relevant to such high demanding applications, including thermal shock resistance, low density, high elastic modulus and low coefficient of friction. However, its chemical stability and corrosion resistance when brought into contact with copper at high temperatures and pressures is still a topic of research. In this study the corrosion and wear behavior of silicon nitride applied in rolling copper wires is investigated. For this purpose laboratory-scale wire rolling experiments were carried out and a series of atomistic simulations based on density functional theory DFT calculations were performed. The goal here is to identify the factors leading to the corrosion of silicon nitride in copper wire rolling, and to show how silicon nitride rolls differ from conventional steel rolls in terms of adhesion with copper. The experimental and numerical results were then compared with failed silicon nitride specimens tested in an industrial wire-rolling mill. The experimental results showed no signs of corrosive pitting or fracture on the rolls, however, indicated remarkable tribochemical wear especially in the presence of a lubricant. The numerical computations showed that the affinity of silicon nitride to copper is low in comparison to the affinity of ferrous-based tools to copper. The DFT calculations also explained one of the major wear-assisting mechanisms in this process. Finally, the failure of the industrial ceramic rolls was clarified by relying on FIB-SEM and EDX analyses.
机译:对于热轧应用,必须具有出色的高温性能的材料。氮化硅结合了与此类高要求应用相关的最佳性能,包括耐热冲击性,低密度,高弹性模量和低摩擦系数。然而,当其在高温和高压下与铜接触时,其化学稳定性和耐腐蚀性仍是研究的主题。在这项研究中,研究了氮化硅在轧制铜线中的腐蚀和磨损行为。为此,进行了实验室规模的线材轧制实验,并基于密度泛函理论DFT计算进行了一系列原子模拟。此处的目的是确定导致铜线轧制中氮化硅腐蚀的因素,并说明氮化硅轧辊在与铜的粘附性方面与常规钢轧辊有何不同。然后将实验和数值结果与在工业线材轧机中测试的失效氮化硅试样进行比较。实验结果表明辊上没有腐蚀点蚀或断裂的迹象,但是,表明摩擦化学磨损显着,特别是在存在润滑剂的情况下。数值计算表明,与基于铁的工具对铜的亲和力相比,氮化硅对铜的亲和力低。 DFT计算还解释了此过程中的主要磨损辅助机制之一。最后,依靠FIB-SEM和EDX分析来澄清工业陶瓷辊的故障。

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