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Minimizing Material Consumption of 3D Printing with Stress-Guided Optimization

3D printing has been widely used in daily life, industry, architecture, aerospace, crafts, art, etc. Minimizing 3D printing material consumption can greatly reduce the costs. Therefore, how to design 3D printed objects with less materials while maintain structural soundness is an important problem....

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Detalles Bibliográficos
Autores principales: Zheng, Anzong, Bian, Shaojun, Chaudhry, Ehtzaz, Chang, Jian, Haron, Habibollah, You, Lihua, Zhang, Jianjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7302548/
http://dx.doi.org/10.1007/978-3-030-50426-7_44
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author Zheng, Anzong
Bian, Shaojun
Chaudhry, Ehtzaz
Chang, Jian
Haron, Habibollah
You, Lihua
Zhang, Jianjun
author_facet Zheng, Anzong
Bian, Shaojun
Chaudhry, Ehtzaz
Chang, Jian
Haron, Habibollah
You, Lihua
Zhang, Jianjun
author_sort Zheng, Anzong
collection PubMed
description 3D printing has been widely used in daily life, industry, architecture, aerospace, crafts, art, etc. Minimizing 3D printing material consumption can greatly reduce the costs. Therefore, how to design 3D printed objects with less materials while maintain structural soundness is an important problem. The current treatment is to use thin shells. However, thin shells have low strength. In this paper, we use stiffeners to stiffen 3D thin-shell objects for increasing the strength of the objects and propose a stress guided optimization framework to achieve minimum material consumption. First, we carry out finite element calculations to determine stress distribution in 3D objects and use the stress distribution to guide random generation of some points called seeds. Then we map the 3D objects and seeds to a 2D space and create a Voronoi Diagram from the seeds. The stiffeners are taken to be the edges of the Voronoi Diagram whose intersections with the edges of each of the triangles used to represent the polygon models of the 3D objects are used to define stiffeners. The obtained intersections are mapped back to 3D polygon models and the cross-section size of stiffeners is minimized under the constraint of the required strength. Monte-Carlo simulation is finally introduced to repeat the process from random seed generation to cross-section size optimization of stiffeners. Many experiments are presented to demonstrate the proposed framework and its advantages.
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spelling pubmed-73025482020-06-19 Minimizing Material Consumption of 3D Printing with Stress-Guided Optimization Zheng, Anzong Bian, Shaojun Chaudhry, Ehtzaz Chang, Jian Haron, Habibollah You, Lihua Zhang, Jianjun Computational Science – ICCS 2020 Article 3D printing has been widely used in daily life, industry, architecture, aerospace, crafts, art, etc. Minimizing 3D printing material consumption can greatly reduce the costs. Therefore, how to design 3D printed objects with less materials while maintain structural soundness is an important problem. The current treatment is to use thin shells. However, thin shells have low strength. In this paper, we use stiffeners to stiffen 3D thin-shell objects for increasing the strength of the objects and propose a stress guided optimization framework to achieve minimum material consumption. First, we carry out finite element calculations to determine stress distribution in 3D objects and use the stress distribution to guide random generation of some points called seeds. Then we map the 3D objects and seeds to a 2D space and create a Voronoi Diagram from the seeds. The stiffeners are taken to be the edges of the Voronoi Diagram whose intersections with the edges of each of the triangles used to represent the polygon models of the 3D objects are used to define stiffeners. The obtained intersections are mapped back to 3D polygon models and the cross-section size of stiffeners is minimized under the constraint of the required strength. Monte-Carlo simulation is finally introduced to repeat the process from random seed generation to cross-section size optimization of stiffeners. Many experiments are presented to demonstrate the proposed framework and its advantages. 2020-05-25 /pmc/articles/PMC7302548/ http://dx.doi.org/10.1007/978-3-030-50426-7_44 Text en © Springer Nature Switzerland AG 2020 This article is made available via the PMC Open Access Subset for unrestricted research re-use and secondary analysis in any form or by any means with acknowledgement of the original source. These permissions are granted for the duration of the World Health Organization (WHO) declaration of COVID-19 as a global pandemic.
spellingShingle Article
Zheng, Anzong
Bian, Shaojun
Chaudhry, Ehtzaz
Chang, Jian
Haron, Habibollah
You, Lihua
Zhang, Jianjun
Minimizing Material Consumption of 3D Printing with Stress-Guided Optimization
title Minimizing Material Consumption of 3D Printing with Stress-Guided Optimization
title_full Minimizing Material Consumption of 3D Printing with Stress-Guided Optimization
title_fullStr Minimizing Material Consumption of 3D Printing with Stress-Guided Optimization
title_full_unstemmed Minimizing Material Consumption of 3D Printing with Stress-Guided Optimization
title_short Minimizing Material Consumption of 3D Printing with Stress-Guided Optimization
title_sort minimizing material consumption of 3d printing with stress-guided optimization
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7302548/
http://dx.doi.org/10.1007/978-3-030-50426-7_44
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