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First, it is required to act only on the smallest scales that the mesh can represent.
The resulting mesh can represent arbitrary beam- or plate-like geometries, which are a large part of adhesive joint designs.
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The resulting optimized meshes can represent the displacement and stresses at the region of interest with considerable accuracy while capturing the yield along joints in the rock mass.
These graphs are preferable to base complexes, because the mesh can be represented with a smaller number of segments, as T-joints (where the intersection of two neighboring segments does not involve the whole edge or the vertex) are allowed in quadrilateral segmentation.
An industrial wireless mesh network can be represented as a simple connected graph, G = (V, E), where V and E denote the set vertices and the set of edges, respectively.
Input data consists of both a closed triangle mesh representing the exterior geometric shape of the object and interior triangle meshes that can represent material attributes or other interior features.
The LDNI for a solid model whose boundary is represented by a closed polygonal mesh can be generated efficiently with the help of hardware accelerated sampling.
Similar to the case of classical FETI, a computational domain represented by a T-spline mesh can be split into subdomains.
The finite element mesh can be constructed using partially/fully saturated soil elements to represent the salient aspects of unsaturated permeability and the soil water characteristic curve.
Let each feature point be represented by ß, then the total feature points per face mesh can be given as: ß i = ( x i, y i, z i ) (1) for i=1,2,…,29.
(C ) The mesh can be even more simplified to keep only the cell junctions (green dots), cell boundaries represented by edges (red) and centers (not shown).
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