Development of a Wear-Sensitive Criterion for the Example of Simulating Surface Damage by the Polytetrafluoroethylene and F4K20 Molecular Models

IF 0.4 Q4 ENGINEERING, MECHANICAL
S. Li, E. B. Sedakova, A. O. Pozdnyakov, A. D. Breki
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引用次数: 0

Abstract

Several energy parameters of molecular models of polytetrafluoroethylene and its composite F4K20 are calculated. As a result of friction and wear modeling, the energies of intermolecular bonds in the volume of the constructed \(U_{{{\text{inter}}}}^{{\text{V}}}\) models, in the surface zone \(U_{{{\text{inter}}}}^{{\text{S}}}\), and at the transfer layer–counterbody interface are determined, and the shear moduli of the material models under study are assessed. It is found that, in F4K20, compared with the original matrix, all of the above parameters increase, which may indicate stabilization of the kinetic state of molecules in the presence of a filler. Based on the results of a comparative analysis of \(U_{{{\text{inter}}}}^{{\text{V}}}\), \(U_{{{\text{inter}}}}^{{\text{S}}}\), and \(U_{{{\text{inter}}}}^{{{\text{ad}}}}\) with the value of the linear wear rate determined for the materials under study as a result of tribological tests, the \(U_{{{\text{inter}}}}^{{\text{V}}}\) value is proposed as a wear-sensitive criterion at the molecular level, and the \(U_{{{\text{inter}}}}^{{{\text{ad}}}}\) value is proposed as an additional parameter characterizing the adhesive strength of the transfer layers.

Abstract Image

计算了聚四氟乙烯及其复合材料 F4K20 分子模型的多个能量参数。作为摩擦和磨损建模的结果,确定了所构建模型体积内\(U_{{text\inter}}}}^{text\{V}}\)、表面区\(U_{{text\inter}}}}^{text\{S}}\)以及转移层-反体界面处分子间键的能量,并评估了所研究材料模型的剪切模量。研究发现,在 F4K20 中,与原始基体相比,上述所有参数都有所增加,这可能表明在填料的存在下分子的动力学状态趋于稳定。根据对 \(U_{{\text{inter}}}}^{{text/{V}}}\)、\(U_{{text{inter}}}}^{{text/{S}}}\)和\(U_{{text{inter}}}}^{{text/{ad}}}}\)的比较分析结果以及摩擦学试验确定的所研究材料的线性磨损率值、U_{{text{inter}}}}^{{text/{V}}}值被建议作为分子水平的磨损敏感标准,\(U_{{text{inter}}}}^{{text/{ad}}}})值被建议作为表征转移层粘合强度的附加参数。
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来源期刊
CiteScore
0.80
自引率
33.30%
发文量
61
期刊介绍: Journal of Machinery Manufacture and Reliability  is devoted to advances in machine design; CAD/CAM; experimental mechanics of machines, machine life expectancy, and reliability studies; machine dynamics and kinematics; vibration, acoustics, and stress/strain; wear resistance engineering; real-time machine operation diagnostics; robotic systems; new materials and manufacturing processes, and other topics.
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