The influence of carbon content gradient and carbide precipitation on the microstructure evolution during carburizing-quenching-tempering of 20MnCr5 bevel gear

IF 5.3 2区 材料科学 Q1 MATERIALS SCIENCE, COATINGS & FILMS Surface & Coatings Technology Pub Date : 2024-09-18 DOI:10.1016/j.surfcoat.2024.131387
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Abstract

Due to the mechanism of microstructural transition, high-strength low-carbon alloy steel gears exhibit high strength and surface hardness after Carburizing-Quenching-Tempering (CQT) combined heat treatment, while maintaining good toughness in the core. The carbon potential gradient and the precipitation of carbides are the main factors affecting the final microstructure, yet there is a shortage of related research. To address this gap, this study developed a multi-physics coupled model considering the impact of carbon content to simulate microstructural transformation. Using finite element analysis, we simulated the microstructural evolution during the CQT heat treatment of 20MnCr5 bevel gear. By comparing the simulation results with the calculations from the commercial heat treatment software DANTE®, the accuracy of this model in predicting microstructural distribution and hardness has been validated. Furthermore, the study established a carbide precipitation kinetics model that takes into account the influence of grain size, to investigate the precipitation behavior of carbides within the matrix during the tempering stage. The cellular automaton method was applied to demonstrate the evolution process of the quenched microstructure during tempering. The study shows that during tempering, carbides primarily precipitate in areas with higher carbon content, preferentially at the boundaries of fine grains with a high density of lattice defects. As the carbon content increases, the number density of precipitates rises, while their average radius decreases. The reduction in matrix supersaturation due to carbide precipitation is one of the causes for the reduction of tooth surface hardness during tempering. The model constructed in this study provides a new perspective for understanding the laws governing material microstructural evolution and offers a solid theoretical foundation for the study of stress and deformation during the heat treatment process.

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20MnCr5 锥齿轮渗碳-淬火-回火过程中碳含量梯度和碳化物析出对微观结构演变的影响
由于微观组织转变的机理,高强度低碳合金钢齿轮在渗碳-淬火-回火(CQT)联合热处理后表现出较高的强度和表面硬度,同时在芯部保持良好的韧性。碳势梯度和碳化物的析出是影响最终显微组织的主要因素,但相关研究还很缺乏。针对这一空白,本研究开发了一种考虑碳含量影响的多物理场耦合模型,以模拟微观结构转变。通过有限元分析,我们模拟了 20MnCr5 锥齿轮在 CQT 热处理过程中的微观结构演变。通过将模拟结果与商用热处理软件 DANTE® 的计算结果进行比较,验证了该模型在预测微观结构分布和硬度方面的准确性。此外,研究还建立了一个考虑到晶粒尺寸影响的碳化物析出动力学模型,以研究回火阶段基体内碳化物的析出行为。应用细胞自动机方法展示了回火过程中淬火微观结构的演变过程。研究表明,在回火过程中,碳化物主要析出在含碳量较高的区域,优先析出在晶格缺陷密度较高的细晶粒边界。随着碳含量的增加,析出物的数量密度上升,而平均半径下降。碳化物析出导致的基体过饱和度降低是回火过程中齿面硬度降低的原因之一。本研究构建的模型为理解材料微观结构演变规律提供了一个新的视角,并为研究热处理过程中的应力和变形提供了坚实的理论基础。
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来源期刊
Surface & Coatings Technology
Surface & Coatings Technology 工程技术-材料科学:膜
CiteScore
10.00
自引率
11.10%
发文量
921
审稿时长
19 days
期刊介绍: Surface and Coatings Technology is an international archival journal publishing scientific papers on significant developments in surface and interface engineering to modify and improve the surface properties of materials for protection in demanding contact conditions or aggressive environments, or for enhanced functional performance. Contributions range from original scientific articles concerned with fundamental and applied aspects of research or direct applications of metallic, inorganic, organic and composite coatings, to invited reviews of current technology in specific areas. Papers submitted to this journal are expected to be in line with the following aspects in processes, and properties/performance: A. Processes: Physical and chemical vapour deposition techniques, thermal and plasma spraying, surface modification by directed energy techniques such as ion, electron and laser beams, thermo-chemical treatment, wet chemical and electrochemical processes such as plating, sol-gel coating, anodization, plasma electrolytic oxidation, etc., but excluding painting. B. Properties/performance: friction performance, wear resistance (e.g., abrasion, erosion, fretting, etc), corrosion and oxidation resistance, thermal protection, diffusion resistance, hydrophilicity/hydrophobicity, and properties relevant to smart materials behaviour and enhanced multifunctional performance for environmental, energy and medical applications, but excluding device aspects.
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