New Approaches to Modeling Failure and Fracture of Rubberlike Materials

被引:4
|
作者
Volokh, K. Y. [1 ]
机构
[1] Technion Israel Inst Technol, Fac Civil & Environm Engn, Haifa, Israel
基金
以色列科学基金会;
关键词
CRACK-GROWTH; CAVITATION INSTABILITY; NUMERICAL-SIMULATION; VOID NUCLEATION; DAMAGE MODEL; RUPTURE; LOCALIZATION; DEFORMATION; PROPAGATION; ELASTICITY;
D O I
10.1007/12_2020_64
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
In this chapter we review some recent approaches to modeling failure and fracture of soft materials. By failure we mean the onset of damage via material instability. By fracture we mean further localization of damage into cracks with their subsequent propagation. Mathematical description of failure is simple and it only requires some bounding of the strain energy density. The bounded strain energy automatically implies the bounded achievable stress, which is an indicator of material failure. By bounding the strain energy via energy limiters we show, for instance, how to explain cavitation, analyze strength of soft composites, and predict direction of possible cracks. Mathematical description of fracture is more involved because it requires regularized formulations suppressing the so-called pathological mesh sensitivity. Most existing approaches utilize purely formal regularization schemes that lack physical grounds. We discuss a more physically based approach rooted in the idea that bulk cracks are not a peaceful unzipping of adjacent atomic layers but rather a catastrophic explosion of bonds localized within a finite characteristic area.
引用
收藏
页码:131 / 151
页数:21
相关论文
共 50 条
  • [31] EFFECT OF STRETCH ON WAVE SPEED IN RUBBERLIKE MATERIALS
    VAUGHAN, H
    QUARTERLY JOURNAL OF MECHANICS AND APPLIED MATHEMATICS, 1979, 32 (AUG): : 215 - 231
  • [32] Fracture of Elastomeric Materials by Crosslink Failure
    Mao, Yunwei
    Anand, Lallit
    JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2018, 85 (08):
  • [33] Measurement of shear elasticity and viscosity of rubberlike materials
    Andreev, V. G.
    Burlakova, T. A.
    ACOUSTICAL PHYSICS, 2007, 53 (01) : 44 - 47
  • [34] Rubberlike materials made from soy protein
    Wang, H.
    Huang, H.
    Zhang, Y.
    Hecheng Xiangjiao Gongye/China Synthetic Rubber Industry, 2001, 24 (05):
  • [35] Data driven constitutive modelling of rubberlike materials
    Denli, F. A.
    Kaliske, M.
    Acan, A. K.
    Tufekcioglu, M. E.
    Dal, H.
    CONSTITUTIVE MODELS FOR RUBBER XII, ECCMR 2022, 2023, : 105 - 111
  • [36] Determination of total sulfur in rubber and rubberlike materials
    Cheyney, LE
    INDUSTRIAL AND ENGINEERING CHEMISTRY-ANALYTICAL EDITION, 1943, 15 : 164 - 165
  • [37] THERMOELASTIC BEHAVIOR OF RUBBERLIKE MATERIALS AT LARGE DEFORMATIONS
    SHEN, M
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1970, 15 (03): : 374 - &
  • [38] STORED ENERGY FUNCTION OF COMPRESSIBLE RUBBERLIKE MATERIALS
    PENG, TJ
    LANDEL, RF
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1974, 19 (03): : 240 - 240
  • [39] ON PROPAGATION OF FINITE DISTURBANCES IN BARS OF RUBBERLIKE MATERIALS
    NOWINSKI, JL
    JOURNAL OF ENGINEERING FOR INDUSTRY, 1965, 87 (04): : 523 - &
  • [40] Vibration properties of rubberlike materials - Dependence on temperature
    Stambaugh, RB
    INDUSTRIAL AND ENGINEERING CHEMISTRY, 1942, 34 : 1358 - 1365