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Fabricating Metamaterials Using the Fiber Drawing Method
Published on: October 18, 2012
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Metamateriales de origami tubulares multifísicamente programables: Nexo explotable de la geometría, la mecánica de
A Sharma1, S Naskar1, T Mukhopadhyay1
1School of Engineering, University of Southampton, Southampton, SO16 7QF, UK.
Advanced science (Weinheim, Baden-Wurttemberg, Germany)
|August 26, 2025
Resumen
Los metamateriales de origami tubulares ofrecen propiedades programables únicas al combinar geometría y física sensible a los estímulos. Estos materiales avanzados muestran un gran potencial para aplicaciones innovadoras en diversos campos científicos y de ingeniería.
Área de la Ciencia:
- Ciencias de los materiales
- Ingeniería mecánica
- La robótica
Sus antecedentes:
- Los metamateriales inspirados en el origami aprovechan los principios geométricos de plegado.
- Las estructuras tubulares ofrecen propiedades mecánicas y funcionales únicas.
- La física que responde a los estímulos permite el comportamiento programable.
Objetivo del estudio:
- Revisar los desarrollos en los metamateriales de origami tubulares.
- Para resaltar su modulación de propiedades mecánicas y multifísicas.
- Para analizar las aplicaciones, tendencias y desafíos.
Principales métodos:
- Revisión de la literatura existente sobre los metamateriales de origami tubulares.
- Análisis de los avances computacionales y de fabricación.
- Exploración de los mecanismos de respuesta a los estímulos (campos, temperatura, luz, etc.) En el caso de los
Principales resultados:
- Los metamateriales Origami exhiben eficiencia geométrica, capacidad de despliegue y reconfigurabilidad.
- Las propiedades programables incluyen modulación de rigidez, absorción de energía y multiestabilidad.
- Las diversas aplicaciones abarcan la robótica, la electrónica, la biomédica y la arquitectura.
Conclusiones:
- Los metamateriales de origami tubulares ofrecen atributos multifísicos y multifuncionales sin precedentes.
- Los avances en computación y fabricación permiten diseños complejos y programabilidad.
- Existe un potencial significativo para aplicaciones innovadoras en todas las escalas, con tendencias y desafíos de investigación en curso.
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