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Experimentally validated numerical model for multi-physics simulation of friction, wear, and noise in dry sliding pin-on-disc configurations

粗糙度(岩土工程) 联锁 摩擦学 轮廓仪 噪音(视频) 材料科学 粘附 磨损系数 复合材料 机械 声学 摩擦系数 计算机模拟 接触面积 接触力学 接触分析 基质(水族馆) 摩擦系数 数值分析 分形 扩散 结构工程 信号(编程语言) 跟踪(教育) 近似误差
作者
Yang Tian,Muhammad Rafique Khan
出处
期刊:Tribology International [Elsevier BV]
卷期号:219: 111855-111855 被引量:1
标识
DOI:10.1016/j.triboint.2026.111855
摘要

Tribology plays a crucial role in engineering, where friction, wear, and noise in sliding contacts impact efficiency and durability. This study develops a novel numerical framework for simulating dry sliding wear in a pin-on-disc setup using 6082 aluminium discs and 304 stainless steel pins. The model integrates Zhang-Meng-Chen multi-regime contact mechanics, Hurtado-Kim scale-dependent adhesion friction, data-driven asperity interlocking correction, Archard-based wear evolution, and symbolic regression-derived noise prediction, initialized with statistically equivalent rough surfaces from profilometry data. Validated against experiments at 10–20 N loads and 0.42–0.84 m/s speeds, the framework accurately predicts coefficient of friction (COF) transitions from adhesion- to interlocking-dominated regimes, contact area evolution, asperity counts, wear volumes, and cumulative sound pressures, with mean relative errors below 16%. Results reveal load-speed dependencies in friction mechanisms, surface topography changes, and acoustic emissions. This approach advances tribological modelling by linking microscopic interactions to macroscopic observables, paving the path for non-invasive machinery health monitoring through noise signals. Future enhancements could include thermal and debris effects. • Developed a novel multi-physics numerical framework integrating ZMC contact mechanics, HK scale-dependent adhesion friction, data-driven asperity interlocking correction, Archard wear evolution, and symbolic regression noise prediction for dry sliding pin-on-disc simulations. • Initialized with statistically equivalent rough surfaces from experimental profilometry data, accurately predicting COF transitions from adhesion- to interlocking-dominated regimes, contact area/asperity evolution, wear volumes, and cumulative sound pressures with mean relative errors below 16%. • Revealed load-speed dependencies: higher loads enhance interlocking friction while reducing adhesion contributions, leading to increased wear depths and acoustic emissions. • Demonstrated superior noise prediction over existing models, enabling correlation of noise signals with wear and COF for non-invasive machinery health monitoring. • Advanced tribological modeling by linking microscopic asperity interactions to macroscopic observables, with potential extensions to thermal and debris effects.

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