A novel water-based hybrid nanofluid incorporating graphene oxide (GO) and multi-walled carbon nanotubes (MWCNTs) has been successfully formulated. To elucidate the lubrication mechanisms underpinning this nanofluid's performance, a friction model was constructed employing molecular dynamics (MD) simulations. This approach enabled an in-depth examination of how GO and MWCNTs, along with their interfacial interactions, contribute to enhanced lubrication between contacting surfaces. The MD simulations highlighted that the stable layered architecture generated by the adsorption of GO and MWCNTs within the hybrid nanofluid plays a crucial role in diminishing the coefficient of friction. Building on these insights, dispersion experiments were undertaken to investigate strategies for improving the long-term suspension stability of the water-based GO/MWCNTs hybrid nanofluid. The impact of varying particle concentrations on tribological characteristics was also assessed through comprehensive friction and wear testing. Findings revealed that polyvinylpyrrolidone (PVP) is an optimal surfactant for ensuring sustained stability of the nanofluid when dispersed in a base liquid. Benefiting from interfacial effects, GO and MWCNTs coalesce into a robust stacked-layer structure, exhibiting superior anti-wear and friction-reducing attributes during operation. Optimal tribological performance was observed at GO and MWCNT concentrations of 1.0 wt% each, achieving the lowest mean friction coefficient and material volume wear rate. Compared with conventional CNC water-based cutting coolants, this optimized hybrid nanofluid formulation resulted in reductions of 22.3 % in average friction coefficient and 40.2 % in material volume wear rate, underscoring its potential as an advanced lubricant in industrial applications.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1016/j.jcis.2025.02.162 | DOI Listing |
Sci Rep
March 2025
Institute of Fluid Dynamics and Thermodynamics, Faculty of Mechanical Engineering, Czech Technical University in Prague, Technická 4, Prague, 166 07, Czech Republic.
Efficient heat dissipation is crucial for various industrial and technological applications, ensuring system reliability and performance. Advanced thermal management systems rely on materials with superior thermal conductivity and stability for effective heat transfer. This study investigates the thermal conductivity, viscosity, and stability of hybrid AlO-CuO nanoparticles dispersed in Therminol 55, a medium-temperature heat transfer fluid.
View Article and Find Full Text PDFSci Rep
March 2025
Department of Mathematics, AIR University, Sector E-9, Islamabad, Pakistan.
Fluids possessing advanced thermal capabilities are a requirement of today's world scientific technology and are an inherent vital part of diversified large-scale processes. As a result, the induction of nanometric-sized particles has been considered an emerging approach to achieve advanced liquids. Various combinations have been used to enhance the efficiency of nanofluids in thermal engineering systems.
View Article and Find Full Text PDFNano Lett
March 2025
State Key Laboratory for Strength and Vibration of Mechanical Structures, School of Aerospace Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Constructing mechanically strong and environmentally stable nanofluidic fibers with excellent ion transport remains a challenge. Herein, we design a mechanically robust and stable aramid nanofiber/carboxylated aramid nanofiber (ANF/cANF) hybrid nanofluidic fiber with a high ionic conductivity via a wet spinning-induced orientation strategy. Benefiting from the oriented structure and strong interfacial interactions of the filaments, the ANF/cANF nanofluidic fiber exhibits a high tensile strength of 276.
View Article and Find Full Text PDFJ Colloid Interface Sci
February 2025
School of Mechanical Engineering and Mechanics, Xiangtan University, Xiangtan 411105, PR China; Postdoctoral Workstation, Zhuzhou Huarui Precision Cutting Tools Co., Ltd, Zhuzhou 412000, PR China. Electronic address:
A novel water-based hybrid nanofluid incorporating graphene oxide (GO) and multi-walled carbon nanotubes (MWCNTs) has been successfully formulated. To elucidate the lubrication mechanisms underpinning this nanofluid's performance, a friction model was constructed employing molecular dynamics (MD) simulations. This approach enabled an in-depth examination of how GO and MWCNTs, along with their interfacial interactions, contribute to enhanced lubrication between contacting surfaces.
View Article and Find Full Text PDFSci Rep
March 2025
Department of Mathematics, College of Science and Arts, Qassim University, 51951, Al-Badaya, Saudi Arabia.
Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!