同济大学
导师风采
曹国鑫
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个人信息

Personal Information

  • 教授
  • 导师类别:硕士,博士生导师
  • 性别: 男
  • 学历:博士研究生
  • 学位:博士

联系方式

Contact Information

  • 所属院系:航空航天与力学学院
  • 所属专业: 力学
  • 邮箱 : caogx@tongji.edu.cn
  • 工作电话 : -

个人简介

Personal Profile

目前为同济大学航空航天与力学系教授。1989 年进入大连理工大学化工机械系学习,后分别就读于北京航空航天大学、美国 Clemson 大学,荣获材料学博士学位,后在美国哥伦比亚大学从事博士后,内布拉斯加-林肯大学从事助理研究教授工作,以及2010年至2017年在北京大学工学院工作。


  • 研究方向Research Directions
微纳米力学,复杂系统力学行为的跨尺度模拟,物理力学,生物力学
2. 机电结构优化与控制 研究内容:在对机电结构进行分析和优化的基础上,运用控制理论进行结构参数的调整,使结构性能满足设计要求。1. 仿生结构材料拓扑优化设计, 仿生机械设计 研究内容:以仿生结构为研究对象,运用连续体结构拓扑优化设计理论和方法,对多相仿生结构(机构)材料进行2. 机电结构优化与控制 研究内容:在对机电结构进行分析和优化的基础上,运用控制理论进行结构参数的调整,使结构性能满足设计要求。1. 仿生结构材料拓扑优化设计, 仿生机械设计 研究内容:以仿生结构为研究对象,运用连续体结构拓扑优化设计理论和方法,对多相仿生结构(机构)材料进行整体布局设计。 整体布局设计。
团队展示

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项目情况

1.   2020/1-2023/12,国家自然基金面上项目(11972258),“液固复合材料的可重复吸能使用设计及其工作机理研究”,项目主持;

2.   2020/1-2021/12,爆炸科学与技术国家重点实验室开放课题,“液固复合材料的冲击防护研究”,项目主持;

3.   2019/1-2019/12,同济-荣泰联合实验室课题,“人体背部曲线的接触力学测试方法”,项目主持;

4.   2012/1-2015/12,国家自然基金面上项目(11172002),“基于纳米多孔材料的新型能量吸收系统”, 项目主持;

5.   2015/1-2019/12,科技部重大专项, 2015GB113000、基于载能粒子辐照的聚变堆材料快速筛选的等效性研究,参与;

6.  2013/1-2017/12,纳米研究重大科学研究计划项目, “单分子单细胞水平高分辨实时动态纳米检测技术及应用;课题名称:高分辨、高通量、三维细胞微纳米力学表征技术及其应用” (2013CB933702),参与。


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科研项目

1.  2020/1-2023/12,国家自然基金面上项目(11972258),“液固复合材料的可重复吸能使用设计及其工作机理研究”,项目主持;

2.  2020/1-2021/12,爆炸科学与技术国家重点实验室开放课题,“液固复合材料的冲击防护研究”,项目主持;

3.  2019/1-2019/12,同济-荣泰联合实验室课题,“人体背部曲线的接触力学测试方法”,项目主持;

4.  2012/1-2015/12,国家自然基金面上项目(11172002),“基于纳米多孔材料的新型能量吸收系统”, 项目主持;

5.   2015/1-2019/12,科技部重大专项, 2015GB113000、基于载能粒子辐照的聚变堆材料快速筛选的等效性研究,参与;

6.  2013/1-2017/12,纳米研究重大科学研究计划项目, “单分子单细胞水平高分辨实时动态纳米检测技术及应用;课题名称:高分辨、高通量、三维细胞微纳米力学表征技术及其应用” (2013CB933702),参与。


研究成果

科研论文发表(PUBLICATIONS):

1.      黄安,曹国鑫*,爆炸冲击波作用下均质颅骨模型有效性研究,力学学报,2023,待发表。

2.      An Huang and Guoxin Cao*. Establishingthe homogeneous skull model based upon the blast loading response ofskull/brain assembly. Biomechanics and Modeling inMechanobiology. 2022; xxx: in review.

3.      Guoxin Cao* and FeiAn. Mechanical properties characterization of 2D materials via pressure bulgetesting. Journal of Physics D-Applied Physics. 2023, 56, 075302.

4.      Guoxin Cao* and FeiAn. Effectiveness of the analytical models used in standard techniques formechanical property characterization of 2D materials. MaterialsToday Communications. 2022, 33, 104802.

5.      Guoxin Cao*. Nanofluidic energy damper: modeling, simulation and analysis. Journal ofMicromechanics and Molecular Physics, 2022, 6(2), 1-23.

6.      Guoxin Cao*. Transport behavior of pressure-driven electrolyte solution through asurface-charged nanochannel. Nanotechnology, 2020, 31(44), 445404. (SCI, IF =3.551,Q2)

7.      Guoxin Cao* and YunpengRen. A paradox in mechanical property characterization of multilayer 2Dmaterials based on existing indentation bending model. International Journal ofMechanical Sciences. 2020; 187: 105912.  (SCI, IF = 5.329, Q1)

8.       任云鹏,曹国鑫*,几何褶皱与晶界偶合作用对石墨烯断裂行为的影响,力学学报,2019,51(5): 1381-1392。

9.       Yunpeng Ren and Guoxin Cao*,Understanding adhesive boundary effect on free-standing indentationcharacterization of chemical vapor deposition graphene: Nominal material softeningand stiffening, Carbon, 2019, 153: 438-446。(SCI, IF = 9.59, Q1)

10.   Guoxin Cao* andHuaJian Gao*. Mechanicalproperties characterization of two-dimensional materials via nanoindentationexperiments. Progress in Materials Science, 103: 558-595 (2019). (SCI, IF = 39.58,Q1).

11.   Guoxin Cao* andTianxiao Niu. Finite element modeling of the indentation behavior oftwo-dimensional materials, Acta Mechanics, 230:1367-1376 (2019). (SCI, IF = 2.698,Q1).

12.    Lixin. Zhou and Guoxin Cao*.Mechanical behavior of two-dimensional materials investigated by indentationtests. Advances in Mechanics, 48: 201804, (2018).

13.   Guoxin Cao*, YanweiLiu and Tianxiao Niu. Indentation response of two-dimensional materialsmounted on different substrates, International Journal of Mechanical Sciences,137, 96-104 (2018). (SCI, IF = 5.329, Q1)

14.   Tianxiao Niu, Guoxin Cao*,and Chunyang Xiong. Indentation Behavior of theStiffest Membrane Mounted on a Very Compliant Substrate: Graphene on PDMS,International Journal of Solids and Structures, 132, 1-8 (2018). (SCI, IF = 3.9,Q1)

15.    Xiong Si. and Guoxin Cao*,Continuum thin-shell model of the anisotropic two-dimensional materials:Single-layer black phosphorus. Extreme Mechanics Letters, 15, 1–9 (2017). (SCI,IF = 6.7, Q1)

16.    Liusi Yang, Tianxiao Niu, Hui Zhang, Wenjing Xu,Mingchu Zou, Lu Xu, Guoxin Cao* and Anyuan Cao*. Self-assembly ofsuspended graphene wrinkles with high pre-tension and elastic property. 2DMaterials, 4, 041001 (2017). (SCI, IF = 7.103)

17.   Guoxin Cao*.Nanofluidic Energy Absorption System: A review. Advances in Mechanics, 47:201706, (2017).

18.   Guoxin Cao*.Computational simulations of pressure-driven nanofluidic behavior, Scientia Sinica Physics,Mechanica & Astronomica, 47(7), 070011, (2017).

19.    Tianxiao Niu, Guoxin Cao*,and Chunyang Xiong*. Fracture behavior ofgraphene mounted on stretchable substrate, Carbon,109, 852-859 (2016). (SCI, IF= 9.59)

20.    Yunpeng Ren and Guoxin Cao*, Effectof geometrical defects on the tensile properties of graphene, Carbon, 2016,103, pp125-133. (SCI, IF = 9.59)

21.    Hailong Liu and Guoxin Cao*, Effectiveness of the Yang-Laplace equation at nanoscale, Scientific Reports 2016, 6, 23936. (SCI, IF = 5.8)

22.    Hailong Liu and Guoxin Cao*, Reusable Energy Absorption Performance Based on Nanofluidic Systems, Journal of physical Chemistry C, 2016, 120(9), pp 5213–5220 (SCI, IF = 4.8)

23.    L. Zhou and Guoxin Cao*. Nonlinearanisotropic deformation behavior of graphene monolayer under uniaxial tension,Physical Chemistry Chemical Physics 18, 1657 (2016) (SCI, IF = 4.5)

24.    Xiong Si. and Guoxin Cao*, Bending responseof single layer MoS2, Nanotechnology 27, 105701 (2016) (SCI, IF = 3.8)

25.    Xiong Si. and Guoxin Cao*,Molecular dynamics simulations of mechanical properties of monolayer MoS2.Nanotechnology, 26(18), 185705 (2015). (SCI, IF = 3.8)

26.    Guoxin Cao*.Atomistic Studies of Mechanical Properties of Graphene, Polymers, 6(9), 2404-2432 (2014).(SCI, IF = 3.7)

27.    Tianxiao Niu and Guoxin Cao*.Finite size effect does not depend on the loading history in soft matterindentation, Journal of Physics D-Applied Physics, 47 (38), 385303 (2014). (SCI, IF = 2.7)

28.    Tianxiao Niu and Guoxin Cao*.Power-law rheology analysis of biological cell properties under AFM indentationmeasurement, Rsc Advances, 4(55), 29291-29299 (2014). (SCI, IF = 3.8)

29.    Hailong Liu and Guoxin Cao*.Super-high Energy Absorption System Based on Nanofluidic Glycerol Solution,Journal of physical Chemistry C, 118(43), 25223-25233 (2014). (SCI, IF =4.8)

30.    L. Zhou, Y. Wang and Guoxin Cao*.Estimating the elastic properties of few-layer graphene from free-standingindentation response, Journal of Physics: Condensed Matter, 25, 475301 (2013).(SCI, IF = 2.4)

31.    L. Zhou, Y. Wang and Guoxin Cao*.Boundary condition and pre-strain effects on the free standing indentationresponse of graphene monolayer, Journal of Physics: Condensed Matter, 25,475303 (2013). (SCI, IF = 2.4)

32.    Hailong Liu and Guoxin Cao*.Effects of impact velocity on pressure-driven nanofluid, Journal of ChemicalPhysics, 139,114701 (2013). (SCI, IF = 3.2)

33.    L. Zhou, J. Xue, Y. Wang and Guoxin Cao*.Nanoindentation and deformation mechanism in free-standing monolayer graphene,Carbon, 63, 117-124 (2013). (SCI, IF = 8.82)

34.    L. Zhou, Y. Wang and Guoxin Cao*.Van der waals effect on the nanoindentation response of free standing monolayergraphene, Carbon, 57,357-362 (2013). (SCI, IF = 8.82)

35.    L. Zhou, Y. Wang and Guoxin Cao*.Elastic properties of monolayer graphene with different chiralities, Journal ofPhysics: Condensed Matter, 25, 125302 (2013).

36.    Hailong Liu and Guoxin Cao*.Interaction between Mechanical Wave and Nanoporous Energy Absorption System,Journal of physical Chemistry C, 117, 4245-4252 (2013).

37.    Guoxin Cao*, JieSui and Suli Sun. Evaluating the Nucleus Effect on the Dynamic IndentationBehavior of Cells. Biomechanics and Modeling in Mechanobiology, 12, 55-66 (2013).

38.    Zigang Ge, Chao Li, Boon Chin Heng, GuoxinCao, Zheng Yang. Functional biomaterials for cartilage regeneration.Journal of Biomedical Materials Research Part A. 100A,2526–2536 (2012).

39.    Guoxin Cao*.Working Mechanism of Nanoporous Energy Absorption System under High SpeedLoading, Journal of physical Chemistry C, 116 (14), 8278–8286 (2012).

40.    Guoxin Cao*, andNamas Chandra. Evaluation of Biological Cell Properties Using DynamicIndentation Method. Physical Review E 81, 021924 (2010).

41.    Guoxin Cao, XiChen, Zhi-Hui Xu and Xiaodong Li. Measuring Mechanical Properties of Micro- And Nano-Fibers Embedded In AnElastic Substrate: Theoretical Framework And Experiment. Composites Part B:Engineering, 41, 33-41 (2010).

42.    Xi Chen, Guoxin Cao, Aijie Han,Patricia J. Culligan, and Yu Qiao. Nanoscale Fluid Transport: Size and RateEffects, Nano Letters, 8 (9), 2988–2992 (2008).

43.    Guoxin Cao, YuQiao, Qulan Zhou, and Xi Chen, Water Infiltration Behaviors in Carbon Nanotubesunder Static and Dynamic Loading Conditions. Molecular Simulation 34, 1267-1274(2008).

44.    Guoxin Cao, YuQiao, and Xi Chen. The Infiltration Behavior of Water in Carbon Nanotube underExternal Pressure, Philosophical Magazine Letters. 88, 371–378 (2008).

45.    Guoxin Cao and XiChen. Self-Assembled Triangular and Labyrinth Buckling Patterns of Thin Filmson Spherical Substrates. Physical Review Letters, 100, 036102 (2008).

46.    Guoxin Cao and XiChen. The Size Dependence and Orientation Dependence of Elastic Property of ZnOFilms. International Journal of solids and Structure, 45, 1730–1753, (2008).

47.    Liu Ling, Guoxin Cao, and Xi Chen.Mechanisms Of Nanoindentation on Multi-Walled Carbon Nanotube And NanotubeCluster, Journal of Nanomaterials. 271763, (2008).

48.    Guoxin Cao and XiChen. The Size Effect Of Nanoindentation On Zno Nanofilms. Journal of AppliedPhysics, 102, 123513 (2007).

49.    Xi Chen and Guoxin Cao. AtomisticStudies of Mechanical Properties of Carbon Nanotube. Journal of theoretical andcomputational nanoscience, 4, 823-839, (2007).

50.    Guoxin Cao and XiChen. An Energy Analysis of Size-Dependent Elastic Properties of ZnO Nanofilms.Physical Review B, 76, 165407 (2007).

51.    Yu Qiao, Guoxin Cao, and Xi Chen,Effects of gas molecules on nanofluidic behaviors, Journal of the AmericanChemical Society. 129, 2355-2359 (2007).

52.    Guoxin Cao,Jeffrey W. Kysar and Xi Chen, The mean path of dislocations in nanoparticle andnanorod reinforced metal composites and implication for strengtheningmechanisms, Mechanics Research Communication, 34, 275–282 (2007).

53.    Guoxin Cao and XiChen, The effects of chirality and boundary conditions on the mechanicalproperties of single-walled carbon nanotubes. International Journal of Solidsand Structures 44, 5447-5465 (2007).

54.    Guoxin Cao and XiChen, Buckling Behavior of Single-walled Carbon Nanotubes and a TargetedMolecular Mechanics Approach. PHYSICAL REVIEW B 74, 165422 (2006).

55.    Guoxin Cao, XiChen and Jeffrey W. Kysar, Radial Breathing Mode of the Deformed Single-WalledCarbon Nanotubes, Journal of Applied Physics 100, 124305 (2006).

56.    Guoxin Cao and XiChen. The effect of the displacement increment on the axial compressivebuckling behaviors of single-walled carbon nanotubes. Nanotechnology 17,3844–3855 (2006).

57.    Yuye Tang, Guoxin Cao, Xi Chen,Jejoong Yoo, Arun Yethiraj and Qiang Cui. A finite element framework forstudying mechanical response of macromolecules: Application to the gating ofthe mechanosensitive channel, MscL. Biophysical Journal, 91, 1248-1263published as a cover article (2006).

58.    Guoxin Cao, XiChen and Jeffrey W. Kysar. Thermal vibration and apparent thermal contractionof single-walled carbon nanotubes. Journal of the Mechanics and Physics ofSolids, 54, 1206–1236 (2006).

59.    Guoxin Cao and XiChen. Buckling of single-walled carbon nanotubes upon bending: Moleculardynamics simulations and finite element method. Physical Review B, 73, 155435(2006).

60.    Guoxin Cao and XiChen. Mechanisms of nanoindentation on single-walled carbon nanotubes part I:the effect of nanotube length. Journal of Material Research, 21, 1048-1070(2006).

61.     Xi Chenand Guoxin Cao. A new structural mechanics approach ofsingle-walled carbon nanotubes generalized from atomistic simulation,Nanotechnology, 17, 1004-1015 (2006).

62.    Guoxin Cao, YuyeTang and Xi Chen. Elastic properties of Carbon Nanotubes in Radial Direction.Proceedings of the I MECH E Part N, Journal of Nanoengineering and Nanosystems,219, Number 2, 73-88 (2005).

63.    Guoxin Cao, XiChen and Jeffrey W. Kysar. Strain sensing with carbon nanotubes: numericalanalysis of the vibration frequency of deformed single-walled carbon nanotubes.Physical Review B, 72, 195412 (2005).

64.    Guoxin Cao, XiChen and Jeffrey W. Kysar. On the apparent thermal contraction of single-walledcarbon nanotubes. Physical Review B, 72, 235404 (2005).

65.    M. Grujicic, Guoxin Cao, W. N. Roy.Computational analysis of the lattice contribution to thermal conductivity ofsingle-walled carbon nanotubes. Journal of Materials Science, 40(8), 1943-1952(2005).

66.    M. Grujicic, Guoxin Cao and W. N.Roy. Suitability of boron-nitride single-walled nanotubes as fluid-flowconduits in nano-valve applications. Applied Surface Science, 246, 149-158(2005).

67.    M. Grujicic, K. M. Chittajallu, Guoxin Caoand W. N. Roy. An atomic level analysis of conductivity and strength inpoly(ethylene oxide) sulfonic acid based solid polymer electrolytes. MaterialsScience and Engineering B, 117, 187-197 (2005).

68.    M. Grujicic, Guoxin Cao, B.Pandurangan and W. N. Roy, Finite element analysis-based design of a fluid-flowcontrol nano-valve. Materials Science and Engineering B, 117, 53-61 (2005).

69.    M. Grujicic, Guoxin Cao, and W. N.Roy. A computational analysis of the percolation threshold and the electricalconductivity of carbon nanotubes reinforced polymeric materials. Journal ofMaterials Science, 39, 4441-4449 (2004).

70.    M. Grujicic, Guoxin Cao, and W. N.Roy. A computational analysis of the carbon- nanotube-based resonant-circuitsensors. Applied Surface Science, 229, 316-323 (2004).

71.    M. Grujicic, Guoxin Cao, and B.Gersten. Atomic-computations of the lattice contribution to thermal conductivityof single-walled carbon nanotubes. Materials Science and Engineering B, 107,204-216 (2004).

72.    M. Grujicic, Guoxin Cao, and W. N.Roy. Atomistic simulations of solubilization of single-walled carbon nanotubesin toluene. Journal of Materials Science, 39, 2315-2325 (2004).

73.    M. Grujicic, Guoxin Cao, and W. N.Roy. Atomistic modeling of solubilization of carbon nanotubes by non-covalentfunctionalization with poly(p-phenylenevinylene-co-2,5-dioctoxy-m-phenylenevinylene). Applied Surface Science, 227, 349-363 (2004).

74.    M. Grujicic, Guoxin Cao, and P. F.Joseph. Multiscale modeling of deformation and fracture of polycrystallinelamellar g-TiAl+a2-Ti3Al alloys. International Journal for MultiscaleComputational Engineering, 1, 3-24 (2003).

75.    M. Grujicic, Guoxin Cao, A. M. Rao,T. M. Tritt and S. Nayak. UV-light enhanced oxidation of carbon nanotubes.Applied Surface Science, 214, 289-303 (2003).

76.    M. Grujicic, Guoxin Cao, R. Singh.The effect of topological defects and oxygen adsorption on the electronictransport properties of single-walled carbon-nanotubes. Applied SurfaceScience, 211, 166-183 (2003).

77.    M. Grujicic, Guoxin Cao. Reactorlength-scale modeling of chemical vapor deposition of carbon nanotubes. Journalof Materials Science, 38, 1819-1830 (2003).

78.    M. Grujicic, Guoxin Cao, and B.Gersten. Enhancement of field emission in carbon nanotubes through adsorptionof polar molecules. Applied Surface Science, 206, 167-177 (2003).

79.    M. Grujicic, Guoxin Cao, S. Batchu.Crystal plasticity-based finite element analysis of deformation and fracture ofpolycrystalline lamellar g-TiAl + a2-Ti3Al alloys. Journal of MaterialsScience. 38, 307-322 (2003).

80.    M. Grujicic, Guoxin Cao, B.Gersten. Optimization of the chemical vapor deposition process for carbonnanotubes fabrication. Applied Surface Science, 199, 90-106 (2002).

81.    M. Grujicic, Guoxin Cao, R. S.Miller. Computer modeling of the evolution of dendrite microstructure in binaryalloys during non-isothermal solidification. Journal of Materials SynthesisProcessing. 10,191-203 (2002).

82.    M. Grujicic, Guoxin Cao. Crackgrowth in lamellar titanium aluminides containing beta phase precipitates.Journal of Materials Science, 37, 2949-2963 (2002).

83.    M. Grujicic, Guoxin Cao, B.Gersten. An atomic-scale analysis of catalytically-assisted chemical vapordeposition of carbon nanotubes. Materials Science and Engineering B, 94,247-259 (2002).

84.    M. Grujicic, Guoxin Cao, G. M.Fadel. Effective materials properties: determination and application inmechanical design and optimization. Journal of Materials: Design &Applications, 215, 225-234 (2002).

85.    M. Grujicic, Guoxin Cao, R. S.Figliola. Computer simulations of the evolution of solidificationmicrostructure in the LENS (TM) rapid fabrication process. Applied SurfaceScience, 183, 43-57 (2001).

86.    R. S. Miller, Guoxin Cao, M.Grujicic. Monte Carlo Simulation of Three-Dimensional NonisothermalGrain-Microstructure Evolution: Application to LENS Rapid Fabrication. Journalof Materials Synthesis Processing, 9, 329-345 (2001).

87.    Guoxin Cao*,Lianfen Fu, Jianguo Lin, Yonggang Zhang, Changqi Chen. The rRelationships ofMicrostructure and Properties of a Fully Lamellar TiAl Alloy. Intermetallics,8, 647-653 (2000).

88.    Guoxin Cao*,Jianguo Lin, Yonggang Zhang, Changqi Chen. Phase transformation of fullylamellar gamma-TiAl alloys in alpha plus gamma field. Transactions ofNonferrous Metals Society of China, 10, 425-429 (2000).

89.    Guoxin Cao*,Jianguo Lin, Yonggang Zhang, Changqi Chen. Influences of grain size andlamellar spacing on the properties of fully lamellar γ-TiAl alloys. Rare MetalMaterials and Engineering, 29, 172-176 (2000) (in Chinese).

PUBLICATIONSIN CONFERENCE PROCEEDINGS

1.   G. Shailesh, L. Gu, Guoxin Cao andN. Chandra. The Effect of Shock Wave on a Human Head. Proceedings of The ASMEInternational Mechanical Engineering Congress and Exposition, 2, 339-346.(2010).

2.   Guoxin Cao, Zhou,You; Lee, Jeong Soon; et al.. Computational Simulation of the Deformation ofNeuronal Cells, Proceedings of the Asme International Mechanical EngineeringCongress and Exposition 2010, Vol 2 Pages: 179-180.

3.   Guoxin Cao, Zhou,You; Lee, Jeong Soon; et al.. Mechanical Model of Neuronal Function Loss,Proceedings of the Asme International Mechanical Engineering Congress andExposition 2010, Vol 2 Pages: 185-186.

4.   Guoxin Cao and NamasChandra. Evaluating nucleus effect on the cell mechanical behavior. Proceedingsof The ASME International Mechanical Engineering Congress and Exposition, 2,503-504 (2010).

5.   Guoxin Cao andNamas Chandra. Substrate Effect on Dynamic Indentation Measurement ofBiological Cell Properties. Structure-Property Relationships In BiomineralizedAnd Biomimetic Composites, Book Series: Materials Research Society SymposiumProceedings, 1187, 121-126 (2009).


学术会议邀请报告

1.  2023年4月22日,2023力学交叉研讨会,“流固交叉新前沿及应用”分会场邀请报告“新型高性能纳米液固复合系统的吸能耗散行为”,2023,南京,中国。

2.  2022年11月8日,中国力学大会-2022,“MS13 轻质多孔材料及结构的基础理论及应用”专题研讨会邀请报告“纳米液固复合材料的可重复吸能耗散研究”;“MS16 微纳米力学与低维材料力学”专题研讨会邀请报告“多晶石墨烯的断裂行为研究”,2022,北京,中国。

3.  2021 年8 月14-15日,第1届全国微纳米表征与测量技术会议分会场邀请报告“纳多晶石墨烯断裂行为研究”,成都,中国;

4.  2021 年8 月14-15日,第16届全国物理力学会议分会场邀请报告“纳米液固复合材料的可重复吸能行为”,北京,中国;

5.  2020 年11 月20-23日,第20届华东固体力学会议分会场邀请报告“二维材料弯曲压痕响应测试结果的正确理解”,浙江宁波,中国;

6.  2019年11月12日,上海科技大学物质科学与技术学院,系统材料研究部学术邀请报告“Mechanical properties characterization of two-dimensional materialsvia nanoindentation experiments”。

7.  2019年10月30日,International Symposium on the Mechanics of Liquid-Filled PorousMaterials,邀请报告“Energy Absorption Design and WorkingMechanism for Solid/Liquid Hybrid Composite”,中国西安。

8.  2019年8月25日,中国力学大会-2019,“纳米力学分会场邀请报告”;“低维材料纳米力学”专题研讨会邀请报告“二维材料力学性能的纳米压痕测试分析”;“薄膜、涂层及界面力学”专题研讨会邀请报告“基于机械自组装的GO 薄膜悬空压痕测试”;“ 轻质多孔材料及结构的基础理论及应用”专题研讨会邀请报告“纳米流控能量吸收耗散系统”杭州,浙江。

9.  2019年4月24日,东华大学纺织科技创新中心邀请报告,Mechanical properties characterization of two-dimensional materialsvia nanoindentation experiments;

10.2019年4月12日-14日,第四届低维材料力学青年研讨会邀请报告,“二维材料力学行为的压痕测试”,江南大学,无锡;

11.2019年3月12日,北京理工大学爆炸科学与技术国家重点实验室邀请报告,Mechanical properties characterization of two-dimensional materialsvia nanoindentation experiments;

12.2018年11月30日,浙江大学固体力学所邀请报告,Discussion of Mechanics of Traumatic Brain Injury;

13.2018年9月21-23日,第十五届全国物理力学学术会议,G 分会:第三届低维材料力学青年研讨会邀请报告,“带基底二维材料的压痕响应”,合肥;

14.2018年4月19日,西安交通大学机械结构强度与振动国家重点实验室邀请报告“Mechanical properties characterization of two-dimensional materialsvia nanoindentation experiments”;

15.2017年3月10日,北航大学汽车工程系邀请报告,“纳米流控能量吸收系统”;

16.2016年9月27-29日,第十四届全国物理力学学术会议,多尺度物理力学分会邀请报告“Graphene/PDMS纳米复合结构的纳米压痕响应”;

17.2016年7月5日,Polymer and Composite Engineering Group (PaCE), University ofVienna, “Mechanical response of graphene/PDMS nanocomposite undernanoindentation”;

18.2016年4月15日,Department of Engineering Mechanics, Tsinghua University, BeijingChina, “Wetting properties of liquids at nano- environments”;

19.2016年4月15日,Department of Mechanics and Engineering Science, Peking University,Beijing China, “Multiscale simulation of mechanical behavior of low-dimensionalmaterials”;

20.2015年9月7日, Beijing Institute of Applied Physics and ComputationalMathematics, Beijing China, “working mechanism of nanoporous energy absorptionsystem under high speed loading”;

21.2015年9月19日, International Computational Mechanics Workshop, Peking University,Beijing China, “Free-standing indentation response of 2D materials”;

22.2015年7月13日, 2015 International Conference of Computational Mechanics (ICCM),Auckland, Newzeland, Symposium Keynote talk “FEM study of the indentationresponse of graphene with soft substrate”;

23.2014年3月6日, Department of Engineering Mechanics, Tsinghua University, BeijingChina, “working mechanism of nanoporous energy absorption system under highspeed loading”;

24.2013年4月12日清华大学工程力学系邀请报告:“二维材料力学行为的多尺度研究”;

25.2012年5月13日-15日第六届国际分子模拟与信息技术应用学术会议材料科学分会邀请报告:TheApplication of Solid-liquid Interaction in Nanofluidic System;

26. 2012年8月25日 参加西安交通大学中美力学研讨会;

27. 2011 年 7月美国内布拉斯加-林肯大学 工程力学系邀请报告:NanoporousEnergy Absorption System;

28. 2011年3月18日-20日PKU-YNU FacultyResearch Workshop 邀请报告“The Application of NanofluidicSystem in Mechanical Energy Damping”;

29.2010年3月1日Department of Mechanical Engineering, North Dakota state university,Topic:Nanoporous Energy Absorption/DampingSystem;

30.2008年9月9日  Seminar in Department ofEngineering Mechanics, the University of Nebraska-Lincoln, NE 68588, Sept 9, 2008, Topic: ComputationalSimulation of the Elastic Property of ZnO Nanofilms;

2007年2月15日 Seminar inDepartment of Civil Engineering and Engineering Mechanics, Columbia University,NY 10027 , Topic: Some Recent Studies on the Mechanics of Carbon Nanotubes。


主要研究方向简介

1.微纳米力学

主要从事微纳米测试分析力学领域的相关研究工作,采用跨尺度理论模型、多尺度计算模拟和材料力学性能测试相结合的研究方法。主要研究成果体现在:

(1)改进纳米压痕测试技术:在对传统纳米压痕技术进行全面分析基础上,提出改进手段,可以有效开展带基底二维材料、石墨烯电子皮肤和纳米复合薄膜等材料的力学性能测试;

(2)从分析模型和实验参数设置入手,改进和发展悬空二维材料压痕、鼓泡测试分析模型和方法,为准确获取二维材料的弹性模量提供理论指导,对于发展基于低维材料的电子皮肤类柔性传感器的设计和工程应用具有推动作用。

2.物理力学

主要研究纳米尺度下液体流控行为,提出纳米尺度下液体基本力学行为的计算模拟新方法,可有效用于纳米尺度下液体表面张力、液固接触角、Young-Laplace方程适用性等问题,可应用于纳米流控电池、微流控、纳米润滑、海水淡化、环保净化和吸能缓冲等领域;

3.生物力学

(1)研究人体颅脑爆炸冲击损伤和防护,一方面,构建颅脑数值模型,基于有限元模拟研究颅脑的爆炸冲击响应,为阐明颅脑损伤机制和研发损伤防护装备提供理论指导;另一方面,研发新型冲击能吸收机制和结构,具有高吸能密度、低响应时间、可重复使用等优点,为研发新型冲击防护装备提供帮助。

(2)人体背部曲线的接触力学测试方法研究。

4.复杂系统力学行为的跨尺度模拟

(1)结合分子动力学、有限元模拟研究先进系统的力学行为;

(2)基于机器学习技术的低维材料增韧设计研究;

(3)3D打印过程对金属件组织与性能影响的数值模拟研究。

已发表SCI论文100余篇,总引用数大于4600次,H因子38(Google Scholar数据)。发表相关研究领域综述类文章5篇,其中《力学进展》2篇,《Progress in Material Science》《中国科学》和《Polymers》各1篇。多次受邀在国内外学术会议、研究机构作学术邀请报告。

Researchgate介绍: https://www.researchgate.net/profile/Guoxin_Cao

Googlescholar: https://scholar.google.com/citations?hl=zh-CN&user=7GcZdgwAAAAJ&view_op=list_works&sortby=pubdate

Orcid https://orcid.org/0000-0002-6598-2899


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