Affiliation:
1. Shanxi Lu’an Taihang Lubrication Technology Co., Ltd., Changzhi 046200, China
2. School of Materials and Chemistry, University of Shanghai for Science and Technology, Shanghai 200093, China
Abstract
In order to improve fuel economy to meet the standard for passenger car oil, a new formulation with good viscosity–temperature performance for gasoline engine oil is required. In this study, coal-to-liquid (CTL) base oil, with a high viscosity index and good low-temperature performance, was selected as the base oil to develop the gasoline engine oil. A systematic study on the molecular interaction between the CTL base oil and the viscosity index improver (VII), including three kinds of hydrogenated styrene diene copolymers (HSD-type) and four kinds of ethylene propylene copolymers (OCP-type), was conducted. It was found that in general, in CTL base oil, the HSD-type VII exhibited a much higher viscosity index, a significantly lower shear stability index, a higher thickening ability, and a lower cold-cranking simulator (CCS) viscosity than that of OCP-type VII. Moreover, when comparing CTL base oil with mineral oil 150N, the combination of CTL base oil and the VII displayed a lower CCS viscosity than that of mineral oil, suggesting it had better low-temperature performance and was able to quickly form a protective oil film on the surface, which was beneficial for the cold start. The functional group distribution state of the VII in base oil was analyzed using synchrotron radiation micro-infrared microscope (SR Micro-IR) technology, which revealed that HSD-1 had a better molecular interaction with CTL6 than 150N because of the better uniformity of the C=C group distribution. Based on this, a SP 0W-20 gasoline engine oil was developed by the combination of CTL base oil and the HSD-1 viscosity index improver, together with an additive package, a polymethacrylate pour point depressant, and a non-silicone defoamer, which showed excellent low-temperature performance, thermal oxidation stability, and detergency performance compared to the reference oil.
Reference43 articles.
1. Tóth, Á.D., Szabó, Á.I., Leskó, M.Z., Rohde-Brandenburger, J., and Kuti, R. (2022). Tribological properties of the nanoscale spherical Y2O3 particles as lubricant additives in automotive application. Lubricants, 10.
2. Degradation of engine components upon exposure to chemically modified vegetable oil-based automotive lubricant;Arumugam;J. Indian Chem. Soc.,2021
3. (2019). Engine Oil Licensing and Certification System (Standard No. GF-6B:API 1509).
4. Framework for brand positioning of automotive lubricants by using structural equation modelling;Srivastava;Int. J. Manag. Pract.,2023
5. Tóth1, Á.D., and Knaup, J. (2020). Investigation of the tribological properties of nano-scaled ZrO2 and CuO additive in automotive lubricants. IOP Conf. Ser. Mater. Sci. Eng., 903, 012015.