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Morfogénesis computacional de giga-voxel para el diseño estructural

Niels Aage1,2, Erik Andreassen1, Boyan S Lazarov1

  • 1Department of Mechanical Engineering, Technical University of Denmark, Nils Koppels Allé, Building 404, 2800 Kongens Lyngby, Denmark.

Nature
|October 6, 2017
PubMed
Resumen
Este resumen es generado por máquina.

Una nueva herramienta de supercomputadora permite la resolución giga-voxel para la morfogénesis computacional, optimizando la distribución de materiales en diseños complejos como alas de aviones para un ahorro significativo de peso y combustible.

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Área de la Ciencia:

  • Ingeniería computacional
  • Ciencias de los materiales
  • Biomimética

Sus antecedentes:

  • El diseño mecánico tradicional se basa en la intuición y el diseño asistido por computadora (CAD).
  • La optimización de la topología ofrece libertad de diseño, pero está limitada por la resolución de estructuras complejas.
  • La escalabilidad de los marcos de modelado y optimización existentes presenta desafíos significativos.

Objetivo del estudio:

  • Desarrollar una herramienta de morfogénesis computacional de alta resolución para la distribución de material avanzado.
  • Para superar las limitaciones de resolución de los métodos actuales de optimización de la topología.
  • Demostrar la aplicabilidad de la herramienta en el diseño de productos industriales complejos.

Principales métodos:

  • Implementación de una herramienta de morfogénesis computacional en una supercomputadora.
  • Alcanzando una resolución de giga-voxel, muy superior a los métodos anteriores.
  • Aplicación de la herramienta para diseñar la estructura interna de un ala de avión a escala real.

Principales resultados:

  • La herramienta producía diseños con detalles estructurales sin precedentes, desde metros hasta milímetros.
  • El diseño optimizado del ala del avión mostró una notable similitud con las estructuras óseas naturales.
  • Se estima una reducción de masa de las alas de los aviones del 2 al 5%, lo que conlleva un ahorro sustancial de combustible.

Conclusiones:

  • La morfogénesis computacional con resolución giga-voxel abre nuevas posibilidades para una distribución óptima del material.
  • La herramienta desarrollada tiene una amplia aplicabilidad en varios campos, incluido el diseño mecánico, los sistemas de flujo y los microsistemas.
  • Los principios de diseño biomimético se pueden lograr por computación para soluciones de ingeniería mejoradas.