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#GeometryProcessing

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Kevin Moerman 🔓🦿<p>A simple parameterised hexahedral mesh of a cylindrical solid. </p><p>Coming soon to <a href="https://fediscience.org/tags/Comodo" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Comodo</span></a> </p><p><a href="https://github.com/COMODO-research/Comodo.jl" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">github.com/COMODO-research/Com</span><span class="invisible">odo.jl</span></a></p><p><a href="https://fediscience.org/tags/opensource" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>opensource</span></a> <a href="https://fediscience.org/tags/computationalmechanics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>computationalmechanics</span></a> <a href="https://fediscience.org/tags/geometryprocessing" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>geometryprocessing</span></a></p>
Kevin Moerman 🔓🦿<p>Evaluating of simple <a href="https://fediscience.org/tags/additivemanufacturing" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>additivemanufacturing</span></a> cost function metrics (build height, footprint area, support volume, overhang area, ... ). The model is rotated and all metrics are computed, next the sphere is "painted" to show the magnitude of that metric for that orientation (sum of the lengths of the black lines as estimate of support material use). This way the sphere provides a nice summary visualisation of which orientations are best e.g. in terms of minimising support material use.</p><p><a href="https://fediscience.org/tags/geometryprocessing" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>geometryprocessing</span></a> <a href="https://fediscience.org/tags/3dprinting" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>3dprinting</span></a> <a href="https://fediscience.org/tags/opensource" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>opensource</span></a> <a href="https://fediscience.org/tags/julialang" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>julialang</span></a></p>
Kevin Moerman 🔓🦿<p>Just a bunny rotating according to a uniform set of directions on the sphere. The bunny is colored towards the "overhang" angle with respect to the ground. The black area on the ground is the projection of the bunny onto the ground (a bit like a shadow). This is a simple toy simulation that computes some metrics relevant to the simulation of 3D printing preparation. </p><p><a href="https://fediscience.org/tags/geometryprocessing" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>geometryprocessing</span></a> <a href="https://fediscience.org/tags/Julialang" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Julialang</span></a> <a href="https://fediscience.org/tags/Comodo" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Comodo</span></a> <a href="https://fediscience.org/tags/ComputationalDesign" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>ComputationalDesign</span></a></p>