4.6 Article

The Effect of Void Arrangement on the Pattern Transformation of Porous Soft Solids under Biaxial Loading

期刊

MATERIALS
卷 14, 期 5, 页码 -

出版社

MDPI
DOI: 10.3390/ma14051205

关键词

porous soft solids; biaxial loading; void morphology; pattern transformation

资金

  1. National Natural Science Foundation of China [11872139, 11732004, 11821202, 12072057]
  2. Dalian University of Technology Fundamental Research Fund [DUT20RC(5)008]
  3. Fundamental Research Funds for the Central Universities [DUT20RC(3)032]
  4. Program for Changjiang Scholars, Innovative Research Team in University (PCSIRT) [2016YFB0201601]
  5. National Key Research and Development Plan [2016YFB0201601]
  6. Open Project of State Key Laboratory of Superhard Materials (Jilin University) [201905]

向作者/读者索取更多资源

The study investigates the mechanical behaviors of porous soft solids under biaxial loads, revealing new pattern transformations under biaxial compression for soft solids with oblique lattices of circular voids. Introducing tensile deformation in one direction can inhibit this pattern transformation, while the number of voids in square lattices of voids affects the deformation behaviors quantitatively rather than qualitatively. The results suggest that void morphology and biaxial loading can be utilized to tune the pattern transformations of porous soft solids under large deformation, providing new possibilities for controlling their deformation patterns under specific biaxial stress-states.
Structural topology and loading condition have important influences on the mechanical behaviors of porous soft solids. The porous solids are usually set to be under uniaxial tension or compression. Only a few studies have considered the biaxial loads, especially the combined loads of tension and compression. In this study, porous soft solids with oblique and square lattices of circular voids under biaxial loadings were studied through integrated experiments and numerical simulations. For the soft solids with oblique lattices of circular voids, we found a new pattern transformation under biaxial compression, which has alternating elliptic voids with an inclined angle. This kind of pattern transformation is rarely reported under uniaxial compression. Introducing tensile deformation in one direction can hamper this kind of pattern transformation under biaxial loading. For the soft solids with square lattices of voids, the number of voids cannot change their deformation behaviors qualitatively, but quantitatively. In general, our present results demonstrate that void morphology and biaxial loading can be harnessed to tune the pattern transformations of porous soft solids under large deformation. This discovery offers a new avenue for designing the void morphology of soft solids for controlling their deformation patterns under a specific biaxial stress-state.

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