Constitutive deep neural network parameters and training data for DeltaFix tool
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The FEA was conducted for a set of 2-D workpieces with boundary conditions of Clamping and machining forces. The aim of this test is to determine the deformation level of the workpiece under different configurations of fixture layout and machining forces. The constitutive deep neural network model is part of DeltaFix tool development. DeltaFix is developed to work on NX 10.0 CAD environment, based on C++ and NXOpen libraries. The tool aim to solve the problem of fixture synthesis where an optimization is carried out to obtain the robust fixture layout for a workpiece with known clamping and machining forces. The CNN model is responsible for part of the evaluation process in the tool during fixture layout optimization task (The CNN predicts the deformation level of a workpiece based at a specific fixture layout).The tool is available online at : https://github.com/taqiaden/deltafix andtaqiaden. (2021). taqiaden/deltafix: DeltaFix tool (v2.0). Zenodo. https://doi.org/10.5281/zenodo.5803166<br>
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figshare
创建时间:
2022-02-16



