Adaptive voids

Primal and dual adaptive cellular structures for additive manufacturing

Verfasser / Beitragende:
[Asla MedeiroseSá, Vinícius Mello, Karina RodriguezEchavarria, Derek Covill]
Ort, Verlag, Jahr:
2015
Enthalten in:
The Visual Computer, 31/6-8(2015-06-01), 799-808
Format:
Artikel (online)
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024 7 0 |a 10.1007/s00371-015-1109-8  |2 doi 
035 |a (NATIONALLICENCE)springer-10.1007/s00371-015-1109-8 
245 0 0 |a Adaptive voids  |h [Elektronische Daten]  |b Primal and dual adaptive cellular structures for additive manufacturing  |c [Asla MedeiroseSá, Vinícius Mello, Karina RodriguezEchavarria, Derek Covill] 
520 3 |a Additive manufacturing processes have the potential to change the way we produce everyday objects. Design for additive manufacturing focuses on dealing with the characteristics and constraints of a given additive process. These constraints include both geometric and material constraints which have a major impact on the feasibility, quality and cost of the printed object. When designing for additive manufacturing, one of the desirable objectives is to reduce the amount of material while maximising the strength of the printed part. For this, the inclusion of cellular structures in the design has been an efficient way to address these constraints while supporting other application-specific requirements. These structures, which are commonly inspired by shapes found in nature, provide high strength while maintaining a low mass. In this paper we propose the adaptive voids algorithm, an automatic approach to generate, given a volume boundary, a parameterised adaptive infill primal and/or dual cellular structure for additive manufacturing. The produced output can potentially be applied in various applications, including design and engineering, architecture, clothing and protective equipment, furniture and biomedical applications. 
540 |a Springer-Verlag Berlin Heidelberg, 2015 
690 7 |a Additive manufacturing  |2 nationallicence 
690 7 |a Cellular structures  |2 nationallicence 
690 7 |a 3D printing  |2 nationallicence 
690 7 |a Primal-dual cellular structures  |2 nationallicence 
690 7 |a Geometric modeling  |2 nationallicence 
690 7 |a Cell complexes  |2 nationallicence 
700 1 |a MedeiroseSá  |D Asla  |u Escola de Matemática Aplicada FGV/EMAp, Rio de Janeiro, Brazil  |4 aut 
700 1 |a Mello  |D Vinícius  |u Departamento de Matemática, UFBA, Salvador, Brazil  |4 aut 
700 1 |a RodriguezEchavarria  |D Karina  |u Cultural Informatics Research Group, University of Brighton, Brighton, UK  |4 aut 
700 1 |a Covill  |D Derek  |u Department of Computing, Engineering and Mathematics, University of Brighton, Brighton, UK  |4 aut 
773 0 |t The Visual Computer  |d Springer Berlin Heidelberg  |g 31/6-8(2015-06-01), 799-808  |x 0178-2789  |q 31:6-8<799  |1 2015  |2 31  |o 371 
856 4 0 |u https://doi.org/10.1007/s00371-015-1109-8  |q text/html  |z Onlinezugriff via DOI 
898 |a BK010053  |b XK010053  |c XK010000 
900 7 |a Metadata rights reserved  |b Springer special CC-BY-NC licence  |2 nationallicence 
908 |D 1  |a research-article  |2 jats 
949 |B NATIONALLICENCE  |F NATIONALLICENCE  |b NL-springer 
950 |B NATIONALLICENCE  |P 856  |E 40  |u https://doi.org/10.1007/s00371-015-1109-8  |q text/html  |z Onlinezugriff via DOI 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a MedeiroseSá  |D Asla  |u Escola de Matemática Aplicada FGV/EMAp, Rio de Janeiro, Brazil  |4 aut 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a Mello  |D Vinícius  |u Departamento de Matemática, UFBA, Salvador, Brazil  |4 aut 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a RodriguezEchavarria  |D Karina  |u Cultural Informatics Research Group, University of Brighton, Brighton, UK  |4 aut 
950 |B NATIONALLICENCE  |P 700  |E 1-  |a Covill  |D Derek  |u Department of Computing, Engineering and Mathematics, University of Brighton, Brighton, UK  |4 aut 
950 |B NATIONALLICENCE  |P 773  |E 0-  |t The Visual Computer  |d Springer Berlin Heidelberg  |g 31/6-8(2015-06-01), 799-808  |x 0178-2789  |q 31:6-8<799  |1 2015  |2 31  |o 371