Аннотация:
В квазистатической постановке решена задача о скольжении сферического штампа по вязкоупругому основанию с учетом сил адгезионного притяжения, которые считаются различными на входе в область контакта и выходе из нее вследствие изменения свойств поверхности при взаимодействии. Установлена зависимость контактных характеристик и силы трения, возникающей вследствие несовершенной упругости основания, от поверхностных и объемных свойств материалов взаимодействующих тел и условий взаимодействия (нагрузка, скорость и т. д.).
Образец цитирования:
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Yu. Yu. Makhovskaya, “Influence of Capillary Adhesion on the Sliding of a Cylinder Along the Surface of an Elastic Solid Taking Account of Wetting Hysteresis”, Mech. Solids, 59:1 (2024), 48
Yu. Yu. Makhovskaya, “Influence of Capillary Adhesion on the Sliding of a Cylinder Along the Surface of an Elastic Solid Taking Account of Wetting Hysteresis”, Izvestiâ Rossijskoj akademii nauk. Mehanika tverdogo tela, 2024, № 1, 168
I. A. Soldatenkov, “Contact with Intermolecular Interaction Forces for a Viscoelastic Layer (Self-Consistent Approach): The Energy Balance for the System of Indenter–Layer–Substrate”, Prikladnaâ matematika i mehanika, 88:3 (2024), 456
S. V. Shil'ko, D. A. Chernous, S. V. Panin, “Modeling of Bionically Inspired Antifriction and Connective Layers in a Joint Prosthesis”, Phys Mesomech, 26:1 (2023), 93
E. V. Torskaya, “Modeling of Contact Interaction of Two-Layer Bodies Taking into Account Adhesion and Rheological Properties of Coating or Substrate Materials”, Mech. Solids, 58:9 (2023), 3008
Dongze Wang, Gregory de Boer, Anne Neville, Ali Ghanbarzadeh, “A Review on Modelling of Viscoelastic Contact Problems”, Lubricants, 10:12 (2022), 358
I. A. Soldatenkov, “Contact with Intermolecular Interaction for a Viscoelastic Layer (Self-Consistent Approach): Energy Dissipation under Indentation and Friction Force”, Mech. Solids, 57:7 (2022), 1701
Elena V. Torskaya, Fedor I. Stepanov, Biologically-Inspired Systems, 15, Contact Problems for Soft, Biological and Bioinspired Materials, 2022, 199
Irina Goryacheva, Yulia Makhovskaya, Discrete Contact Mechanics with Applications in Tribology, 2022, 101
I. A. Soldatenkov, “Contact with Intermolecular Interactions for a Viscoelastic Layer (Self-Consistent Approach): Feature Analysis of the Indenter Approach/Retract Process”, Mech. Solids, 56:7 (2021), 1259
I. A. Soldatenkov, “Contact with Intermolecular Interaction Forces for a Viscoelastic Layer (Self-Consistent Approach): Calculation of the Stress-Strain State and Energy Dissipation”, Mech. Solids, 55:7 (2020), 1077
Elena V. Torskaya, Fedor I. Stepanov, “Effect of Surface Layers in Sliding Contact of Viscoelastic Solids (3-D Model of Material)”, Front. Mech. Eng., 5 (2019)
A. N. Lyubicheva, “Closed-form solution of axisymmetric contact problem for a viscoelastic base within cycle of increasing and decreasing of load on the indenter”, J. Frict. Wear, 38:2 (2017), 138
Irina Goryacheva, Yulia Makhovskaya, “Adhesion effect in sliding of a periodic surface and an individual indenter upon a viscoelastic base”, The Journal of Strain Analysis for Engineering Design, 51:4 (2016), 286