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Friction and slip behaviors of confined glycerol on rough surface: Effect of temperature, pressure, and sliding velocity

  • Hang Li
  • , Longlong Yang
  • , Cheng Chen
  • , Jie Wang
  • , Shaowei Feng
  • , Junqin Shi
  • , Xiaoli Fan
  • Northwestern Polytechnical University Xian
  • China Ordnance Industry Test and Measuring Institute
  • Beijing Institute of Astronautical Systems Engineering
  • Shandong Key Laboratory of High-Performance Special Alloys Intelligent Manufacturing and Application for Aerospace Equipment

Research output: Contribution to journalArticlepeer-review

Abstract

Understanding nanoscale lubrication mechanisms is critical for minimizing frictional energy dissipation. This study investigates the tribological response of nanoconfined glycerol lubricating film between a polar SiO2 slab and a non-polar stepped CH-terminated asperity using molecular dynamics simulations. We reveal that friction and wall slip are governed by the dynamic evolution of the glycerol H-bond network under varying temperatures (300–450 K), pressures (250–1000 MPa), and sliding velocities (10–100 m/s). Elevated temperatures disrupt these H-bonds and significantly reduce viscosity, transitioning the system into a low-slip state with decreased friction. Conversely, high pressure densifies the film and strengthens the H-bond network, sustaining wall slip and excellent anti-friction performance. Although high sliding velocities induce shear heating, the resulting drop in viscosity offsets the increased shear rate, maintaining both a steady friction coefficient and wall slip. These findings provide atomic-level insights into how coupled thermal, mechanical, and kinetic factors govern boundary lubrication, offering theoretical guidance for the design of high-performance nano-lubricants for heterogeneous interfaces.

Original languageEnglish
Article number112471
JournalTribology International
Volume225
DOIs
StatePublished - Jan 2027

Keywords

  • Confined glycerol
  • H-bond network
  • Heterogeneous interface
  • Surface asperity
  • Wall slip

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