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Performance Comparison of Advanced Ceramic Cladding Approaches via Solid-State and Traditional Welding Processes: A Review

机译:通过固态和传统焊接过程进行高级陶瓷包层方法的性能比较:综述

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摘要

Ceramic coating has applications in enhancing the material’s properties and can significantly improve the material’s usability in varied temperatures and adverse operating conditions and widen its applicability scope. It can add to the various properties such as wear resistance, high-temperature degradation, thermal conductivity, material toughness, tensile strength, corrosion resistance, friction reduction, electric insulation, and the lifespan of the material. Various techniques have been suggested and implemented to achieve ceramic coating on a metal surface, each having their respective advantages and disadvantages. Hence, they can be distinguished for their applicability in different places. The bonding mechanism of metal particle systems has been researched to date, but there are still certain uncertainties regarding the ceramic particle system because of the dissimilarities in properties. The paper aims to profoundly investigate the various coating technologies available through welding processes and do a comparative study through numerical analysis and experimental results on the properties of coatings obtained from two broad categories of welding—solid-state and traditional/fusion processes. It was found that the solid-state processes in which the temperature remained well below the fusion temperatures overcame the mismatch in property and produced reliable coatings with enhanced mechanical properties.
机译:陶瓷涂层具有提高材料的性能,可以显着提高材料在不同温度和不利运行条件下的材料的可用性,并扩大其适用性范围。它可以增加耐磨性,高温降解,导热性,材料韧性,抗拉强度,耐腐蚀,摩擦力,电绝缘和材料的寿命等各种性能。已经提出和实施了各种技术以实现金属表面上的陶瓷涂层,每个都具有它们各自的优点和缺点。因此,它们可以在不同地方的适用性区分。金属颗粒系统的粘合机制已经研究到目前为止,但由于性质中的异常差异,仍然有一些关于陶瓷颗粒系统的不确定性。本文旨在通过数值分析和实验结果,深受焊接过程的各种涂层技术,并通过两大类焊接固态和传统/融合方法获得的涂层性能进行比较研究。发现温度低于熔化温度的固态过程克服了性能的不匹配,并产生了具有增强的机械性能的可靠涂层。

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