Investigating the Age-Dependent behavior of MoS2-hBN nanohybrid additives on the rheological properties of diesel engine oil

Journal of Molecular Liquids(2024)

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摘要
This study utilizes Design of Experiment (DOE) to optimize the viscosity of MoS2-hBN nanolubricants, synthesized using a microwave synthesis platform that significantly reduces synthesis time and energy consumption compared to other methods. The investigation focuses on viscosity and aging characteristics, aiming to understand the relationship between nanolubricant viscosity and key factors: nanoparticle concentration, temperature, and shear rate. Optimal conditions for maximum viscosity (12.87 mPa·s) include 0.05 wt% MoS2-hBN nanoparticles, 100 °C temperature, and 200 (1/s) shear rate. Conversely, the minimum viscosity (113.42 mPa·s) is associated with the same nanoparticle concentration, 40 °C temperature, and 50 (1/s) shear rate. Experimental validation confirms the accuracy of the model predictions. The study also examines MoS2-hBN nanolubricant aging behavior under constant high-temperature conditions (100 °C for 120 h), providing insights into its thermal stability, tribological performance, oxidation resistance, and thermal conductivity properties. Compared to SAE20W40 base oil, the nanolubricant reduces friction and wear, forming a protective boundary film to mitigate surface damage. It exhibits enhanced oxidation stability, acting as a free radical scavenger, and improved thermal conductivity stability due to increased heat transfer efficiency facilitated by nanoparticles. These findings highlight the potential of MoS2-hBN nanolubricant for high-temperature applications, contributing to enhanced engine performance and durability.
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关键词
Nanolubricant viscosity,MoS2-hBN nanocomposite,Thermal stability,Tribological analysis,Oxidation stability,Thermal conductivity,High-temperature applications
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