润滑油
摩擦学
降级(电信)
材料科学
化学工程
动力学
机制(生物学)
热的
热稳定性
润滑
分子动力学
热氧化
复合材料
活化能
氧气
热处理
反应机理
化学动力学
作者
Junming Liu,Mengke Zhang,Bingbing Lai,Kuiliang Gong,Qian Jia,Xiaobo Wang,Gaiqing Zhao,Qin Zhao,Yongqin Han
标识
DOI:10.1108/ilt-07-2025-0347
摘要
Purpose This study aims to investigate the thermal behavior and thermo-oxidative degradation of dipentaerythritol isononanoate (DIPE) under atmospheric conditions; analyze the impact of baking time at 240 °C on its thermal, chemical and tribological properties; and improve lubricant science. Design/methodology/approach A multi-technique approach probed DIPE’s thermo-oxidative and tribological behavior: FT-IR/GPC characterized chemical composition (functional groups, molecular weight); PDSC/TGA analyzed thermal properties (oxidation behavior, decomposition); SRV measured tribological performance (friction, wear) and molecular dynamics (LAMMPS-ReaxFF) explored oxidation mechanisms. The Kissinger–Crane method estimated thermo-oxidative degradation kinetics (activation energy, reaction order). Findings The oxidation of DIPE is a first-order reaction, with products having similar structures but different configurations; DIPE heated for a short time has better tribological performance, which may be related to organic acid products; baking time regulates the oxidation activation energy (Ea) through oxygen concentration; and the Kissinger–Crane method can effectively evaluate the thermal stability of ester oils. Originality/value This research systematically studies DIPE’s thermo-oxidative behavior with multi-technique integration; uncovers baking time’s oxidation Ea regulation mechanism via simulations; and introduces the Kissinger–Crane method for ester oil kinetics, guiding lubricant selection and advancing sustainable lubricant science.
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