micromechanical modeling
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2022 ◽  
Vol 327 ◽  
pp. 127-132
Author(s):  
Te Cheng Su ◽  
Catherine O'Sullivan ◽  
Hideyuki Yasuda ◽  
Christopher M. Gourlay

To gain better understanding of rheological transitions from suspension flow to granular deformation and shear cracking, this research conducted shear-deformation on globular semi-solid Al-Cu alloys to study the rheological behavior of semi-solid as a function of solid fraction (38% - 85%) and shear rate (10-4 – 10-1 s-1) under real-time synchrotron radiography observation. By analyzing 17 X-ray imaging datasets, we define three rheological transitions: (i) the critical solid fraction from a suspension to a loosely percolating assembly; (ii) from the net contraction of a loose assembly to the net dilation of a densely packed assembly, and (iii) to shear cracking at high solid fraction and shear rate. Inspired by in-situ observations of semi-solid deformation showing a disordered assembly of percolating crystals in partially-cohesive contact with liquid flow, we reproduced a two-phase sample using the coupled lattice Boltzmann method-discrete element method (LBM-DEM) simulation approach for granular micromechanical modeling. In DEM, each globular Al grain is represented by a discrete element, and the flow of interstitial liquid is solved by LBM. The LBM-DEM simulations show quantitative agreement of semi-solid strain localization with the experiments and are used to explore the components involved in the shear rate dependence of the transitions, and the role of liquid pressure on the initiation of shear cracking.


2022 ◽  
Vol 317 ◽  
pp. 126107
Author(s):  
Pouria Hajikarimi ◽  
Alireza Sadat Hosseini ◽  
Elham H. Fini

2021 ◽  
Vol 147 ◽  
pp. 103124
Author(s):  
Bo Xiao ◽  
Surya D. Yadav ◽  
Lei Zhao ◽  
Zhengxin Tang ◽  
Yongdian Han ◽  
...  

Polymers ◽  
2021 ◽  
Vol 13 (22) ◽  
pp. 3947
Author(s):  
Ferran Serra-Parareda ◽  
Fabiola Vilaseca ◽  
Roberto Aguado ◽  
Francesc X. Espinach ◽  
Quim Tarrés ◽  
...  

In this study, Young’s modulus of henequen fibers was estimated through micromechanical modeling of polypropylene (PP)-based composites, and further corroborated through a single filament tensile test after applying a correction method. PP and henequen strands, chopped to 1 mm length, were mixed in the presence of maleic anhydride grafted polypropylene (MAPP). A 4 wt.% of MAPP showed an effective enhancement of the interfacial adhesion. The composites were mold-injected into dog-bone specimens and tensile tested. The Young’s modulus of the composites increased steadily and linearly up to 50 wt.% of fiber content from 1.5 to 6.4 GPa, corresponding to a 327% increase. Certainly, henequen fibers showed a comparable stiffening capacity of PP composites than glass fibers. The intrinsic Young’s modulus of the fibers was predicted through well established models such as Hirsch or Tsai-Pagano, yielding average values of 30.5 and 34.6 GPa, respectively. The single filament test performed to henequen strands resulted in values between 16 and 27 GPa depending on the gauge length, although, after applying a correction method, a Young’s modulus of 33.3 GPa was obtained. Overall, the present work presents the great potential for henequen fibers as PP reinforcement. Moreover, relationships between micromechanics models and filament testing to estimate Young’s modulus of the fibers were explored.


2021 ◽  
Vol 33 (11) ◽  
pp. 04021306
Author(s):  
Fengrui Rao ◽  
Zhen Zhang ◽  
Guanbao Ye ◽  
Jiangting Liu

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