近期论文发表目录
1. Jie Wang, Xuan Ye, Xiaoyu Yang, Mengxiong Liu, Xide Li. The applicability and the low limit of the classical fracture theory at nanoscale: the fracture of graphene, Engineering Fracture Mechanics, 2023.
2. Zhen Wang, Xingzhi Huang, Xuan Ye, Chong Zhao, Jianqiao Hu, Zhigang Li, Xiaoming Liu, Xide Li, Can electric heating replace contact heating in high-temperature test for nickel base single crystal superalloy? Journal of Alloys and Compounds, 2023, 945, 169321.
3.Mengxiong Liu, Run Li, Jie Wang, Xuan ye, Haomin Wang, Yingying Zhang, Rufan Zhang, Xide Li, Strength and fracture behaviors of ultralong carbon nanotubes with defects, Carbon, 2022, 199: 300-317.
4.Zhen Wang, Chong Zhao, Jie Wang, Wenwang Wu, Xide Li, In-situ dwell-fatigue fracture experiment and CPFE simulation of SLM AlSi10Mg alloy at high temperature, Int J Fract., 2022, 235:159-178.
5.Mengxiong Liu, Zhiming Xue, Yafei Wang, Xide Li, Changguo Wang, Lateral constrained wrinkling of the film with partial contact, International Journal of Mechanical Sciences, 2022,217, 107022.
6.M Liu, X Li, Mechanical properties measurement of materials and devices at micro-and nano-scale by optical methods: A review, Optics and Lasers in Engineering, 2022, 150,106853.
7.C Zhao, X Li, Quantitative study of residual strain and geometrically necessary dislocation density using HR‑EBSD method, Experimental Mechanics, 2021, 61(8):1281-1290.
8.Xie Hongfu, Wang Jie, Wang Zhen, Jiecun Liang, Xide Li. In situ scanning-digital image correlation for high-temperature deformation measurement of nickel-based single crystal superalloy, Measurement Science and Technology, 2021, 32(8): 084008.
9. M Liu, et al., Multi-scale analysis of the interaction in ultra-long carbon nanotubes and bundles, Journal of the Mechanics and Physics of Solids, 2020,142, 104032.
10. Y Bai, et al., Super-durable carbon nanotubes, Science, 2020, 369(6507):1104-1106.
11. Z Wang, et al., Creep–fatigue interaction behavior of nickel-based single crystal superalloy at high temperature by in-situ SEM observation. International Journal of Fatigue, 2020, 141, 105879.
12. H Xie, et al., Scanning imaging restoration of moving or dynamically deforming object. IEEE Transactions on Image Processing, 2020, 29: 7290-7305.
13. H Xie, et al., Scanning-digital image correlation for moving and temporally deformed surfaces in scanning imaging mode, Experimental Mechanics, 2020, 60(8): 1079-1101.
14. J Liang, et al., In situ scanning electron microscopy analysis of effect of temperature on small fatigue crack growth behavior of nickel-based single-crystal superalloy,International Journal of Fatigue, 2019, 128: 105195.
15. X Jin, et al., Continuous, ultra-lightweight, and multi-purpose super-aligned carbon nanotube tapes viable over a wide range of temperatures, Nano Letters 2019 19: 6756-6764.
16. Z Wang, et al., In-situ SEM investigation on fatigue behaviors of additive manufactured Al-Si10-Mg alloy at elevated temperature, Engineering Fracture Mechanics, 2019, 214:149-163.
17. X Ye, et al., Tensile properties of individual multicellular Bacillus subtilis fibers, Sci. China-Phys. Mech. Astron. 2019, 62, 994611.
18. W Wang, et al., Interlayer motion and ultra-low sliding friction in microscale graphite flakes, EPL, 2019, 125: 26003.
19. H Xie, et al., Bending-peeling method to research the effect of lateral stress on superconductivity of REBCO tape at liquid-nitrogen temperature, IEEE Transactions on Applied Superconductivity, 2019, 29(6), 8400508.
20. X Huang, et al., Temperature control method during current heating of a specimen in scanning microenvironment, Journal of Experimental Mechanics, 2019, 34(6): 911-925. (In Chinese)
22. M Liu, et al., Rigid-flexible contact analysis of an inflated membrane balloon with various contact conditions, International Journal of Solids and Structures, 2018, 144–145: 218–229.
23. P Jin, et al., Discrete loading ring-core method for nonuniform in-plane residual stress analysis in micro area, J. Appl. Mech. 2018, 85(9), 091002.
24. Y Bai, et al. Carbon nanotube bundles with tensile strength over 80 GPa, Nature nanotechnology, 2018, 13: 589-595.
25. J Liang, et al., In situ scanning electron microscopy-based high-temperature deformation measurement of nickel-based single crystal superalloy up to 800°C, Optics and Lasers in Engineering, 2018, 108: 1-14.
26. X Zhang, et al., Sensing performance analysis on quartz tuning fork-probe at the high order vibration mode for multi-frequency scanning probe microscopy, Sensors, 2018, 18(2),336.
27. P Jin, et al., Bending-peeling method to measure interface strength of YBCO tape. IEEE Transactions on Applied Superconductivity, 2018, 28(3), 6600306.
28. J Liang, et al., In-situ high-temperature mechanical property measurement technology and its application in scanning electron microscopy,SCIENTIA SINICA Physica, Mechanica & Astronomica, 2018, 48(9), 094606. (In Chinese)
29. X Ye, et al., Study of the tensile properties of individual multicellular fibres generated by Bacillus subtilis, Scientific Reports, 2017, 7, 46052.
30. X Ye, et al., A multiscale material testing system for in situ optical and electron microscopes and its application. Sensors 2017, 17, 1800.
31. P Jin, et al., Residual stress in Nb3Sn superconductor strand introduced by structure and stoichiometric distribution after heat treatment, IEEE Transactions on Applied Superconductivity, 2017, 27(5):6000909.
32. P Jin, et al., Comparison of residual stress analysis methods:X-Ray diffraction method vs stress release method, Journal of Experimental Mechanics, 2017, 32(5):645-651. (In Chinese)
33. X Zhang,et al., Dynamic characterization of small fibers based on the flexural vibrations of a piezoelectric cantilever probe. Measurement Science and Technology, 2016, 27(8), 085006.
34. P Jin, et al., Correction of image drift and distortion in a scanning electron microscopy, Journal of Microscopy, 2015, 260(3): 268-280.
35. F Gao, et al., Research on the sensing performance of the tuning fork-probe as a micro interaction sensor, Sensors, 2015, 15(9): 24530-24552.
36. W Wang, et al., Measurement of the cleavage energy of graphite, Nature Communications, 2015, 6, 7853.
37. X Ling, et al., Characterization of micro-contact resistance between a gold nanocrystalline line and a tungsten electrode probe in interconnect fatigue testing. Review of Scientific Instruments, 2014, 85, 104708.
38. F Gao, et al, Dynamic behavior of tuning fork shear-force structures in a SNOM system, Ultramicroscopy, 2014, 142:10-23.
39. D Su, et al., Investigation of Near-Surface Mechanical Properties of Materials Using Atomic Force Microscopy. Experimental Mechanics, 2014, 54(1):11-24.
40. X Li, et al., Optical metrology under extreme conditions, Scientific World Journal, 2014, 2014:263603.
41. Y Fu, et al., Interferometric dynamic measurement: Techniques based on high-speed imaging or a single photodetector, Scientific World Journal, 2014, 2014,232906.
42. W Guo, et al., Correlation study between the spinal symmetry index and the quantified clinical manifestation of lumbar disc herniation patients before and after FSM therapy, China Journal of Traditional Chinese Medicine and Pharmacy, 2014, 29(3): 936-939. (In Chinese)
43. J Yang, et al., Observation of high-speed microscale superlubricity in graphite. Physical Review Letters, 2013, 110, 255504.
44. W Zhang, et al., Therapeutic Effects of Chinese Osteopathy in Patients with Lumbar Disc Herniation. American Journal of Chinese Medicine, 2013, 41(5):983-994.
45. Li X; Ling X; Sun L; Liu L; Zeng D; Zheng Q. Measurement of mechanical properties of one-dimensional nanostructures with combined multi-probe platform, Composites: Part B, 2012, 43:70-75.
46. Sun L; Ling X; Li X. Alternating-current induced thermal fatigue of gold interconnects with nanometer-scale thickness and width. Rev. Sci. Instrum. 2011, 82: 103903.
47. Wang G, Li X. On the surface deformation measurement and Energy absorption of a honeycomb panel subjected to low-velocity impact,Journal of Experimental Mechanics, 2011, 26(5): 675-681. (In Chinese)
48. Xia R, Li X, Qin Q, Liu n, Feng X. Surface effects on the mechanical properties of nanoporous materials. Nanotechnology, 2011, 22(26), 265714.
49. Sun C, Su D, Li X. Investigation of loading and force sensing properties of a probe type microforce sensor with force-distance curves, Science China, Technological Sciences 2011, 54(8):1362-1370.
50. Liu L, Li X. A sequence pulse counting method for shape measurement in dual-beam speckle interferometry. Science China, Physics, Mechanics & Astronomy, 2011,54(4):640-646.
51. X Li, H Xie, Y Kang, X Wu. A brief review and prospect of experimental solid mechanics in China, Acta Mechanica Solida Sinica, 2010, 23(6): 498-548.
52. Li X, Su D, Zeng D, Sun l. Progress of micro and nano solid experimental mechanics based on the optical and probe techniques, Chinese Journal of Solid Mechanics, 2010, 31(6):664-678. (In Chinese)
53. D Su, X Li. Fractionized calibration of the sample stage used in an AFM-probe mechanical testing system, Optics and Lasers in Engineering, 2010, 48:1076-1081.
5. Xia R, Li W, Wang R, et al., Correlation of the thermal and electrical conductivities of nanoporous gold, Nanotechnology, 21(8), 085703, 2010.