Titanium Nitriding: A Systematic Literature Review

Aria Wira Yuda, Amir Arifin, I. Yani, Barlin Oemar
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Abstract

In the last twenty years, the manufacturing of titanium and its alloys for commercial use continued to expand. As this material has several very advantageous properties, leading to increasing applications in various industries, it is seldom used in mechanical engineering applications due to its tribological properties, which are unfavourable. The nitriding process is one of the most frequently used thermochemical processes designed to enhance the surface characteristics of titanium alloys and improve tribological properties. Various types of nitriding for titanium are studied, such as ion nitriding, plasma nitriding, laser nitriding and gas nitriding. This article provides a comprehensive examination of research papers on different advancements through a systematic literature review conducted in the period 2017-2023 about titanium nitriding for its process parameters, characteristics and functionalities of the product, particularly emphasising their contributions in surface characteristics and mechanical properties. The review seeks to offer an understanding of how the predominant processing factors, specifically temperature and time, affect the microstructure and the creation of novel phases. This review suggests a challenge for future researchers to investigate mechanisms of microstructure evolution and its impact on mechanical properties in conditioned environments to microhardness and ability to withstand rusting of titanium and its alloys.
氮化钛:系统文献综述
在过去的二十年里,钛及其合金的商业用途不断扩大。由于这种材料具有多种非常有利的特性,因此在各行各业的应用日益广泛,但由于其摩擦学特性不利,因此很少用于机械工程领域。氮化工艺是最常用的热化学工艺之一,旨在提高钛合金的表面特性并改善其摩擦学特性。针对钛的氮化工艺有多种类型,如离子氮化、等离子氮化、激光氮化和气体氮化。本文通过对 2017-2023 年期间有关钛氮化的工艺参数、特性和产品功能的系统文献综述,对不同进展的研究论文进行了全面审查,尤其强调了它们在表面特性和机械性能方面的贡献。该综述旨在了解主要加工因素(特别是温度和时间)如何影响微观结构和新型相的产生。本综述为未来的研究人员提出了一个挑战,即研究微观结构演变的机制及其在条件环境下对机械性能的影响,以及钛及其合金的微硬度和防锈能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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