马氏体相变氮化层磨损性能的研究

IF 3.1 3区 工程技术 Q2 ENGINEERING, MECHANICAL Lubricants Pub Date : 2023-11-07 DOI:10.3390/lubricants11110481
Stefanie Hoja, Behrad Komeili Birjandi, Henning Hasselbruch, Jérémy Epp
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引用次数: 0

摘要

为了提高齿轮的使用性能,可以进行表面热处理,如渗氮或感应淬火。由于这些工艺的最大硬度或硬度深度有限,因此组合处理可以从两种工艺的优点中获益。这项工作的目的是用磨损行为的例子来展示复合处理产生的微观结构与表面层性能之间的相关性。研究了EN31CrMoV9复合处理中不同氮化态对材料耐磨性的影响。在进行了两盘重量和光学测试后,对磨损进行了评估。纯氮化试样的耐磨性优于渗氮后的感应硬化试样。重量损失的显著差异表明,感应硬化恶化了磨损行为。去除复合层的合金在纯氮态和感应硬化状态下的磨损性能都优于去除复合层的合金。这是由于复合处理后的表面粗糙度降低,而由于保留的奥氏体减少,硬度提高。
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An Investigation into the Wear Behavior of Martensitically Transformed Nitrided Layers
To improve the service behavior of gears, surface heat treatments such as nitriding or induction hardening can be performed. Since these processes are limited in their achievable maximum hardness or depth of hardness, a combination treatment could allow benefits from the advantages of both processes. The aim of this work was to show the correlation between the microstructure resulting from combination treatment and the performance of the surface layer using the example of wear behavior. The investigations focused on the impact of different nitrided states, in the combination treatment of the material EN31CrMoV9, on wear resistance. The wear was evaluated after running the two-disc test gravimetrically and optically. Nitrided-only specimens showed better wear resistance compared to those subjected to induction hardening after nitriding. Substantial differences in weight loss indicate that induction hardening worsens the wear behavior. The variants with the compound layer removed in the nitride-only state as well as in the induction hardened state showed a better wear behavior compared to the respective conditions with a compound layer. This was attributed to the lower surface roughness and the higher hardness due to less retained austenite after combination treatment.
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来源期刊
Lubricants
Lubricants Engineering-Mechanical Engineering
CiteScore
3.60
自引率
25.70%
发文量
293
审稿时长
11 weeks
期刊介绍: This journal is dedicated to the field of Tribology and closely related disciplines. This includes the fundamentals of the following topics: -Lubrication, comprising hydrostatics, hydrodynamics, elastohydrodynamics, mixed and boundary regimes of lubrication -Friction, comprising viscous shear, Newtonian and non-Newtonian traction, boundary friction -Wear, including adhesion, abrasion, tribo-corrosion, scuffing and scoring -Cavitation and erosion -Sub-surface stressing, fatigue spalling, pitting, micro-pitting -Contact Mechanics: elasticity, elasto-plasticity, adhesion, viscoelasticity, poroelasticity, coatings and solid lubricants, layered bonded and unbonded solids -Surface Science: topography, tribo-film formation, lubricant–surface combination, surface texturing, micro-hydrodynamics, micro-elastohydrodynamics -Rheology: Newtonian, non-Newtonian fluids, dilatants, pseudo-plastics, thixotropy, shear thinning -Physical chemistry of lubricants, boundary active species, adsorption, bonding
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