Fluid-solid interaction in the rate-dependent failure of brain tissue and biomimicking gels

被引:12
作者
Terzano, M. [1 ]
Spagnoli, A. [1 ]
Dini, D. [2 ]
Forte, A. E. [3 ,4 ]
机构
[1] Univ Parma, Dept Engn & Architecture, Parco Area Sci 181-A, I-43124 Parma, Italy
[2] Imperial Coll London, Dept Mech Engn, Exhibit Rd, London SW7 2AZ, England
[3] Politecn Milan, DEIB, Via Ponzio 34-5, I-20133 Milan, Italy
[4] Harvard Univ, Sch Engn & Appl Sci, Cambridge, MA 02138 USA
基金
欧盟地平线“2020”; 英国工程与自然科学研究理事会;
关键词
Brain tissue; Hydrogels; Rate-dependent fracture; Poroelasticity; LARGE-DEFORMATION; FRACTURE; DIFFUSION; POROELASTICITY; MECHANISMS; HYDROGELS;
D O I
10.1016/j.jmbbm.2021.104530
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Brain tissue is a heterogeneous material, constituted by a soft matrix filled with cerebrospinal fluid. The interactions between, and the complexity of each of these components are responsible for the non-linear rate dependent behaviour that characterises what is one of the most complex tissue in nature. Here, we investigate the influence of the cutting rate on the fracture properties of brain, through wire cutting experiments. We also present a computational model for the rate-dependent behaviour of fracture propagation in soft materials, which comprises the effects of fluid interaction through a poro-hyperelastic formulation. The method is developed in the framework of finite strain continuum mechanics, implemented in a commercial finite element code, and applied to the case of an edge-crack remotely loaded by a controlled displacement. Experimental and numerical results both show a toughening effect with increasing rates, which is linked to the energy dissipated by the fluid-solid interactions in the region surrounding the crack tip. Brain tissue is a heterogeneous material, constituted by a soft matrix filled with cerebrospinal fluid. The interactions between, and the complexity of each of these components are responsible for the non-linear rate dependent behaviour that characterises what is one of the most complex tissue in nature. Here, we investigate the influence of the cutting rate on the fracture properties of brain, through wire cutting experiments. We also present a computational model for the rate-dependent behaviour of fracture propagation in soft materials, which comprises the effects of fluid interaction through a poro-hyperelastic formulation. The method is developed in the framework of finite strain continuum mechanics, implemented in a commercial finite element code, and applied to the case of an edge-crack remotely loaded by a controlled displacement. Experimental and numerical results both show a toughening effect with increasing rates, which is linked to the energy dissipated by the fluid-solid interactions in the region surrounding the crack tip.
引用
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页数:10
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共 46 条
  • [1] Minimally Invasive and Regenerative Therapeutics
    Ashammakhi, Nureddin
    Ahadian, Samad
    Darabi, Mohammad Ali
    El Tahchi, Mario
    Lee, Junmin
    Suthiwanich, Kasinan
    Sheikhi, Amir
    Dokmeci, Mehmet R.
    Oklu, Rahmi
    Khademhosseini, Ali
    [J]. ADVANCED MATERIALS, 2019, 31 (01)
  • [2] On the measurement of the fracture resistance of polyacrylamide hydrogels by wire cutting tests
    Baldi, Francesco
    Bignotti, Fabio
    Peroni, Isabella
    Agnelli, Silvia
    Ricco, Theonis
    [J]. POLYMER TESTING, 2012, 31 (03) : 455 - 465
  • [3] Effect of Solvent Diffusion on Crack-Tip Fields and Driving Force for Fracture of Hydrogels
    Bouklas, Nikolaos
    Landis, Chad M.
    Huang, Rui
    [J]. JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2015, 82 (08):
  • [4] A nonlinear, transient finite element method for coupled solvent diffusion and large deformation of hydrogels
    Bouklas, Nikolaos
    Landis, Chad M.
    Huang, Rui
    [J]. JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2015, 79 : 21 - 43
  • [5] Swelling mechanism in smart polymers responsive to mechano-chemical stimuli
    Brighenti, Roberto
    Cosma, Mattia Pancrazio
    [J]. JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2020, 143
  • [6] Viscoelastic parameter identification of human brain tissue
    Budday, S.
    Sommer, G.
    Holzapfel, G. A.
    Steinmann, P.
    Kuhl, E.
    [J]. JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2017, 74 : 463 - 476
  • [7] Mechanical characterization of human brain tissue
    Budday, S.
    Sommer, G.
    Birkl, C.
    Langkammer, C.
    Haybaeck, J.
    Kohnert, J.
    Bauer, M.
    Paulsen, F.
    Steinmann, P.
    Kuhl, E.
    Holzapfel, G. A.
    [J]. ACTA BIOMATERIALIA, 2017, 48 : 319 - 340
  • [8] Fifty Shades of Brain: A Review on the Mechanical Testing and Modeling of Brain Tissue
    Budday, Silvia
    Ovaert, Timothy C.
    Holzapfel, Gerhard A.
    Steinmann, Paul
    Kuhl, Ellen
    [J]. ARCHIVES OF COMPUTATIONAL METHODS IN ENGINEERING, 2020, 27 (04) : 1187 - 1230
  • [9] Cheng A.H.-D., 2016, Poroelasticity Theory and Applications of Transport in Porous Media, V27
  • [10] Micromechanics of diffuse axonal injury: influence of axonal orientation and anisotropy
    Cloots, R. J. H.
    van Dommelen, J. A. W.
    Nyberg, T.
    Kleiven, S.
    Geers, M. G. D.
    [J]. BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2011, 10 (03) : 413 - 422