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