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基于响应面法的搅拌摩擦加工AZ31/TiC复合材料微观结构、力学性能及磨损行为优化研究

A study on microstructural, mechanical properties, and optimization of wear behaviour of friction stir processed AZ31/TiC composites using response surface methodology.

作者信息

Kumar T Satish, Raghu R, Priyadharshini G Suganya, Čep Robert, Kalita Kanak

机构信息

Department of Mechanical Engineering, Amrita School of Engineering, Amrita Vishwa Vidyapeetham, Coimbatore, 641112, India.

Department of Mechanical Engineering, Sri Ramakrishna Engineering College, Coimbatore, Tamil Nadu, India.

出版信息

Sci Rep. 2024 Aug 12;14(1):18729. doi: 10.1038/s41598-024-69348-w.

DOI:10.1038/s41598-024-69348-w
PMID:39134620
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11319588/
Abstract

The primary objective of this study is to investigate the microstructural, mechanical, and wear behaviour of AZ31/TiC surface composites fabricated through friction stir processing (FSP). TiC particles are reinforced onto the surface of AZ31 magnesium alloy to enhance its mechanical properties for demanding industrial applications. The FSP technique is employed to achieve a uniform dispersion of TiC particles and grain refinement in the surface composite. Microstructural characterization, mechanical testing (hardness and tensile strength), and wear behaviour evaluation under different operating conditions are performed. Response surface methodology (RSM) is utilized to optimize the wear rate by considering the effects of process parameters. The results reveal a significant improvement in hardness (41.3%) and tensile strength (39.1%) of the FSP-TiC composite compared to the base alloy, attributed to the refined grain structure (6-10 μm) and uniform distribution of TiC particles. The proposed regression model accurately predicts the wear rate, with a confirmation test validating an error percentage within ± 4%. Worn surface analysis elucidates the wear mechanisms, such as shallow grooves, delamination, and oxide layer formation, influenced by the applied load, sliding distance, and sliding velocity. The enhanced mechanical properties and wear resistance are attributed to the synergistic effects of grain refinement, particle-accelerated nucleation, the barrier effect of TiC particles, and improved interfacial bonding achieved through FSP. The optimized FSP-TiC composites exhibit potential for applications in industries demanding high strength, hardness, and wear resistance.

摘要

本研究的主要目的是研究通过搅拌摩擦加工(FSP)制备的AZ31/TiC表面复合材料的微观结构、力学性能和磨损行为。将TiC颗粒增强到AZ31镁合金表面,以提高其力学性能,满足苛刻的工业应用需求。采用搅拌摩擦加工技术实现TiC颗粒在表面复合材料中的均匀分散和晶粒细化。进行了微观结构表征、力学测试(硬度和拉伸强度)以及不同操作条件下的磨损行为评估。利用响应面方法(RSM),通过考虑工艺参数的影响来优化磨损率。结果表明,与基体合金相比,FSP-TiC复合材料的硬度(提高41.3%)和拉伸强度(提高39.1%)有显著提高,这归因于细化的晶粒结构(6-10μm)和TiC颗粒的均匀分布。所提出的回归模型能够准确预测磨损率,验证试验表明误差百分比在±4%以内。磨损表面分析阐明了磨损机制,如浅槽、分层和氧化层形成,这些机制受施加的载荷、滑动距离和滑动速度的影响。力学性能和耐磨性的提高归因于晶粒细化、颗粒加速形核、TiC颗粒的阻挡效应以及通过搅拌摩擦加工实现的界面结合改善的协同效应。优化后的FSP-TiC复合材料在需要高强度、硬度和耐磨性的工业应用中具有潜力。

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