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Optimizing Heat Treatment for Electroplated NiP and NiP/SiC Coatings

机译:优化电镀辊隙和辊隙/ SiC涂层的热处理

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NiP (P 10 wt.%) coatings are amorphous coatings whose structure can be transformed by heat treatment into a crystalline structure and hardened by precipitation of Ni3P. In this study, NiP coatings and composite ones with SiC nanoparticles were produced by electrodeposition, and their structural transformation by heat treatment was studied using differential scanning calorimetry (DSC) and X-ray diffraction (XRD). The microhardness and the scratch and corrosion resistance of the coatings were evaluated and compared before and after different heat treatments. The results showed that in as-plated condition, the addition of SiC particles in the coatings did not modify the microstructure, microhardness, or electrochemical behavior. However, the SiC particles’ role was disclosed in combination with heat treatment. Composite coatings that were heat treated at 300 °C had higher microhardness and scratch resistance than the pure NiP one. In addition, composite coatings maintained their scratch resistance up to 400 °C, while in the case of the NiP ones, there was a reduction in scratch resistance by heating at 400 °C. It was also concluded that heating temperature has the main role in hardness and corrosion resistance of NiP and composite coatings, rather than heating time. The optimum heat-treatment protocol was found to be heating at 360 °C for 2 h, which resulted in a maximum microhardness of about 1500 HV0.02 for NiP and its composite coating without sacrificing the corrosion resistance.
机译:辊隙(P> 10重量%)涂层是无定形涂层,其结构可以通过热处理转化成晶体结构并通过Ni3P的沉淀硬化。在该研究中,通过电沉积通过电沉积产生具有SiC纳米颗粒的夹带涂层和复合材料,并且使用差示扫描量热法(DSC)和X射线衍射(XRD)来研究通过热处理的结构变换。在不同的热处理之前和之后评估涂层的微硬度和涂层和腐蚀性和耐腐蚀性。结果表明,在涂层条件下,涂层中的SiC颗粒不改变微观结构,微硬度或电化学行为。然而,SiC颗粒的作用与热处理结合公开。在300℃下进行热处理的复合涂层具有比纯净辊隙更高的微硬度和耐刮擦性。此外,复合涂层保持其耐刮擦性,耐高达400℃,而在辊隙的情况下,通过在400℃下加热,耐刮擦性降低。还得出结论,加热温度具有辊隙和复合涂层的硬度和耐腐蚀性的主要作用,而不是加热时间。发现最佳的热处理方案在360℃下加热2小时,导致辊隙及其复合涂层的最大微硬度约为1500 HV0.02,而不牺牲耐腐蚀性。

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