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In this study, the porosity created during the AM process is investigated, and its influence on performance is quantified with respect to the PSPP framework.
In reality, the geometry obtained by the AM process profoundly differs from the original one, in particular local geometrical irregularities were found to produce local stress and strain localizations which are difficult to be a-priori predicted by the analyses on the idealized structures.
However, optimizing either build orientation or tool-path direction independently undermines the hierarchical relationship in the AM process plan and may produce a sub-optimal solution.
Among them, material deposition plan can frequently interrupt the AM process due to tool-path changes, tool start-stop and non-deposition time, which can be challenging during free-form part fabrication.
First, we demonstrate how the AM process itself influences the characteristics of these cellular materials across a range of length scales, and, crucially, how this influences the dynamic deformation.
One of the most significant features of the AM process is that it can ensure the consistency of parts because it starts from point(s), continues to line(s) and layer(s), and ends with the competed part.
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The first is process.
(Later, the survivors were processed for deportation).
The data is processed.
The pellet was processed for electron microscopy.
The data were processed as described previously.
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