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In this article, the geometric properties of the closed-cell model is compared with the real foam.
This approach can also account for cavities within struts and nodes, which are observed in many real foam structures.
Profile control for well group X4101 was conducted on 3 September, 2011 and the real foam injection volume is 2,516 m3.
The flow field established in complex tridimensional geometries reproduces the real foam behavior as proved by the comparison between numerical simulations and experiments.
The specific surface areas of the generated foams of different porosities are compared with real foam geometries showing a reasonable agreement.
It has been shown that the accuracy to predict the elastic properties of open cell foams increases with an increasing level of detail and resemblance to real foam microstructures.
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The quality of the generated foam models is verified using CT data of real foams.
The analytical model is "perfect" in the sense that geometrical imperfections which are known from real foams are neglected.
Two different types of lattice were considered: an isotropic lattice and an elongated (stretched) lattice, the latter simulating the geometrical anisotropy found in real foams.
Firstly, MATLAB image processing is used to deal with synchrotron X-ray computed tomography (μCT) scanning images of real aluminum foam and reconstruct geometric model.
This disregards strut thickness variations and node rounding which are observed in real open-cell foams.
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