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Microstructure and corrosion resistance of the layers formed on the surface of precipitation hardenable plastic mold steel by plasma-nitriding

机译:等离子渗氮沉淀硬化型塑料模具钢表面形成层的组织和耐蚀性

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Plasma-nitriding is used to improve the wear resistance and corrosion resistance of plastic mold steels by modifying the surface layers of these steels. In this study, a precipitation hardenable plastic mold steel (NAK80) was plasma-nitrided at 470, 500, and 530 ℃ for 4, 8, and 12 h under 25% N_2 + 75% H_2 atmosphere in an industrial nitriding facility. The microstructures of the base material and nitrided layers as well as the core hardness were examined, and various phases present were determined by X-ray diffraction. The corrosion behaviors were evaluated using anodic polarization tests and salt fog spray tests in 3.5% NaCl solution.rnThe results had shown that plasma-nitriding does not cause the core to soften by overaging. Nitriding and aging could be achieved simultaneously in the same treatment cycle. Plasma-nitriding of NAK80 mold steel produced a nitrided layer composed of an outer compound layer constituting a mixture of ε-nitride and γ'-nitride and an adjacent nitrogen diffusion layer on the steel surface. The amount of ε-nitride and total nitrides increased with an increase in nitriding temperature and nitriding time. Corrosion study revealed that plasma-nitriding significantly improved the corrosion resistance in terms of corrosion potential, corrosion and pitting current density, and corrosion rate. This improvement was found to be directly related to the increase in the amount of ε-nitride at the surface, indicating the amount of E-nitride controlling the corrosion resistance.
机译:等离子体氮化用于通过改变塑料模具钢的表面层来提高其耐磨性和耐腐蚀性。在这项研究中,在工业氮化设备中,在25%N_2 + 75%H_2气氛下,在470、500和530℃下分别对可沉淀硬化的塑料模具钢(NAK80)进行了4、8和12 h的等离子渗氮。检查了基材和氮化层的微观结构以及芯部硬度,并通过X射线衍射确定了存在的各种相。使用阳极极化试验和盐雾喷雾试验在3.5%NaCl溶液中评估了腐蚀行为。结果表明,等离子体氮化不会导致铁芯因过时效而软化。在相同的处理周期中可以同时实现氮化和老化。 NAK80模具钢的等离子体氮化产生了一层氮化物,该氮化物层由构成ε-氮化物和γ'氮化物的混合物的外化合物层和钢表面上相邻的氮扩散层组成。随着氮化温度和氮化时间的增加,ε-氮化物和总氮化物的数量增加。腐蚀研究表明,等离子氮化在腐蚀电位,腐蚀和点蚀电流密度以及腐蚀速率方面显着提高了抗腐蚀性。发现该改善与表面上的ε-氮化物的量的增加直接相关,表明控制氮化物耐蚀性的E-氮化物的量。

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