
丁悦
[1] Ding Y*, Yuan WK, Liang XM and Wang GF*. A simple and robust method for characterizing the power‑law rheology behavior of biological cells through indentations. Biomechanics and Modeling in Mechanobiology, 2026, 25, 16.
[2] Ding Y*, Liang XM, Yuan WK and Wang GF*. Effects of surface tension on spherical indentation of viscoelastic materials during loading and unloading. International Journal of Solids and Structures, 2026, 325, 113707.
[3] Ding Y*, Yuan WK, Liang XM, Niu XR and Wang GF*. Power-law rheology behavior of soft matter with surface tension under spherical relaxation and creep indentations. Journal of Applied Mechanics, 2026,.
[4] Liang XM, Yuan WK, Ding Y and Wang GF. Adhesive Contact of Rough Elastic Solids Based on an Incremental Model. Tribology Letters, 2026, 74,21.
[5] Wang JJ, Yuan WK, Ding Y and Wang GF. On the interface stresses and local-slip evolution in the frictional contact between rigid cylinder and single-crystal copper. Scientia Sinica Physica Mechanica & Astronomica, 2026,
[6] Bian JJ, Yuan WK, Ding Y, SHAO ZS and Wang GF. Crystal Dislocation Generator (CryDisGen): A versatile toolkit to create general dislocation structures in crystals. Computer Physics Communications, 2026, 327, 110287.
[7] Li CY, Liang XM, Yuan WK, Ding Y and Wang GF. Size-dependent effects and surface roughness in contact mechanics. Applied Mechanics Reviews, 2026, 78, 010801.
[8] Ding Y*, Yuan WK, Liang XM, Niu XR and Wang GF*. Relaxation and creep of biological materials under spherical indentation considering surface tension. Mechanics of Materials, 2025, 202, 105257.
[9] Ding Y*, Yuan WK, Chen SW, Niu XR and Wang GF*. The effects of surface tension on spherical oscillatory indentation of biological material. Journal of Applied Mechanics, 2025, 92, 031004.
[10] Wang SC, Ding Y*, Zhou YL and Wang GF*. Temperature Rise in Frictional Sliding Contact of Elastic-Plastic Solids with Fractal Surface. Tribology Letters, 2025, 73, 2.
[11] Yuan WK, Ding Y, Bian JJ and Wang GF. General load-depth relations for spherical, conical, and flat-ended cylindrical indentations of soft elastic layers: From ultra-thin-film to half-space. Mechanics of Materials, 2025, 211, 105502.
[12] Bian JJ, Yuan WK, Yang L, Ding Y, Yu XH, Shao ZS, Zhang H and Wang GF. Influence of planar defects on the mechanical behaviors of spherical metallic nanoparticles. Physica Scripta, 2025, 100, 015921.
[13] Ding Y*, Li CY, Niu XR and Wang GF*. Effects of surface energy and substrate on modulus determination of biological films by conical indentation. SCIENCE CHINA Technological Sciences, 2024, 67(6), 1757–1764.
[14] Yuan WK, Ding Y, Wang GF and Niu XR. Analytical expression for the atomic friction of a single asperity based on the prandtl–tomlinson model. Acta Mechanica Solida Sinica, 2024, 37, 416.
[15] Yuan WK, Ding Y, Niu XR and Wang GF. Adhesion of a Rigid Sphere to a Freestanding Elastic Membrane With Pre-Tension. Journal of Applied Mechanics, 2024, 91(12), 121008.
[16] Ding Y, Liang XM, Li CY and Wang GF. Surface effects on the spherical indentation of biological film/substrate structures. Journal of Physics D: Applied Physics, 2023, 56, 385307.
[17] Liang XM, Ding Y, Li CY, Wang GF. An Incremental Contact Model for Rough Viscoelastic Solids. International Journal of Mechanical Sciences, 2023, 255, 108483.
[18] Li CY, Ding Y, Liang XM, Wang GF. An improved elastic-plastic contact model with asperity interactions based on Greenwood-Williamson theory. Acta Mechanica, 2023, 234 (11), 5187.
[19] Yuan WK, Ding Y and Wang GF. Universal contact stiffness of elastic solids covered with tensed membranes and its application in indentation tests of biological materials. Acta Biomaterialia, 2023, 171, 202.
[20] Ding Y, Yuan WK, Liang XM, Wang GF and Niu XR. Identification of Plastic Properties through Spherical Indentation. Advanced Engineering Materials, 2022, 24 (11), 2200379.
[21] Ding Y, Liang XM and Wang GF. An Incremental Contact Model for Rough Surfaces of Strain-Hardening Solids. International Journal of Applied Mechanics, 2022, 14 (8), 2250088.
[22] Liang XM, Ding Y, Duo Y, Yuan WK, Wang GF. Elastic-Perfectly Plastic Contact of Rough Surfaces: An Incremental Equivalent Circular Model. Journal of Tribology, 2022, 144, 051501.
[23] Ding Y, Apostolidou D and Marszalek P. Mechanical Stability of a Small, Highly-Luminescent Engineered Protein NanoLuc. International Journal of Molecular Sciences, 2021, 22, 55.
[24] Ding Y and Wang GF. Size-dependent yield hardness induced by surface energy. Extreme Mechanics Letters, 2020, 38, 100736.
[25] Ding Y, Yuan WK and Wang GF. Spherical indentation on biological films with surface energy. Journal of Physics D: Applied Physics, 2018, 51 (48), 295401.
[26] Ding Y, Wang J, Xu GK and Wang GF. Are elastic moduli of biological cells indent depth dependent? A clarification by a new contact model with surface tension. Soft Matter, 2018, 14, 7534.
[27] Ding Y, Wang GF, Feng XQ and Yu SW. Micropipette aspiration method for characterizing biological materials with surface energy. Journal of Biomechanics, 2018, 80, 32.
[28] Yuan WK, Long JM, Ding Y and Wang GF. Statistical contact model of rough surfaces: The role of surface tension. International Journal of Solids and Structures, 2018, 138, 217.
[29] Li SH, Yuan WK., Ding Y and Wang GF. Indentation load–depth relation for an elastic layer with surface tension. Mathematics and Mechanics of Solids, 2018, 24, 1147.
[30] Ding Y, Xu GK and Wang GF. On the determination of elastic moduli of cells by AFM based indentation. Scientific Reports, 2017, 7, 45575.
[31] Long JM, Ding Y, Yuan WK, Chen W and Wang GF. General relations of indentations on solids with surface tension. Journal of Applied Mechanics, 2017, 84 (5), 051007.
[32] Long JM, Ding Y and Wang GF. Contact problems at micro/nano scale with surface tension. Procedia IUTAM, 2017.
[33] Ding Y, Niu XR, Wang GF, Feng XQ and Yu SW. Surface effects on nanoindentation of soft solids by different indenters. Materials Research Express, 2016, 3 (11), 115021.
[34] Yuan WK, Long JM., Ding Y and Wang GF. Micro/Nanocontact Between a Rigid Ellipsoid and an Elastic Substrate With Surface Tension. Journal of Applied Mechanics, 2016, 84 (1), 011012.
[35] Yang L, Feng J, Ding Y, Bian JJ and Wang GF. An analytical description for the elastic compression of metallic polyhedral nanoparticles. Aip Advances, 2016, 6 (8), 085113.
[36] Ding Y, Niu XR and Wang GF. Compression of Hyperelastic Cells at Finite Deformation with Surface Energy. International Journal of Applied Mechanics, 2016, 8 (6), 1650080.
[37] Ding Y, Niu XR and Wang GF. Elastic compression of nanoparticles with surface energy. Journal of Physics D: Applied Physics, 2015, 48 (48), 485303.
