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Experimental investigations on phenomenological constitutive model of closed-cell PVC foam considering the effects of density, strain rate and anisotropy

  • Yu Tang
  • , Wei Zhang*
  • , Xiongwen Jiang
  • , Jiuzhou Zhao
  • , Wenbo Xie
  • , Tuo Chen
  • *Corresponding author for this work
  • Harbin Institute of Technology
  • Power China Kunming Engineering Corporation Limited

Research output: Contribution to journalArticlepeer-review

Abstract

The uniaxial compressive mechanical properties of PVC foams considering the effects of density (ρ=60−200 kg/m3), strain rate (ε˙=0.001−721/s) and anisotropy (R=1−1.57) have been investigated by quasi-static and dynamic (Split Hopkinson Pressure Bar, SHPB) experiments. In order to verify the effectiveness of the experiments, a control group was set to eliminate the size effect, and to achieve the repeatability of the experiments. Besides, the stress equilibrium of the specimen in the SHPB experiment was examined by the polyvinylidene fluoride (PVDF) pressure sensors. The macroscopic deformation of the specimen during the whole loading process was recorded by the high-speed photography system. The microstructural failure morphology and mechanism were analyzed by combining the single loading control technique (SLCT) and scanning electron microscope (SEM). On this basis, an equation was proposed to predict the collapse stress of PVC foams considering the effects of density, strain rate and anisotropy. Moreover, a rigid-plastic hardening constitutive model (RP-H model) involving above three factors was summarized to characterize the uniaxial compressive mechanical properties of PVC foams.

Original languageEnglish
Article number109885
JournalComposites Part B: Engineering
Volume238
DOIs
StatePublished - 1 Jun 2022

Keywords

  • Effects of density, strain rate and anisotropy
  • Macroscopic deformation
  • Microstructural failure morphology and mechanism
  • PVC foams
  • Rigid-plastic hardening constitutive model (RP-H model)
  • Single loading control technique (SLCT)
  • Stress equilibrium

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