Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Bioinspired Fiber Networks With Tunable Mechanical Properties by Additive Manufacturing

View through CrossRef
Abstract Soft bioinspired fiber networks offer great potential in biomedical engineering and material design due to their adjustable mechanical behaviors. However, existing strategies to integrate modeling and manufacturing of bioinspired networks do not consider the intrinsic microstructural disorder of biopolymer networks, which limits the ability to tune their mechanical properties. To fill in this gap, we developed a method to generate computer models of aperiodic fiber networks mimicking type I collagen ready to be submitted for additive manufacturing. The models of fiber networks were created in a scripting language wherein key geometric features like connectivity, fiber length, and fiber cross section could be easily tuned to achieve desired mechanical behavior, namely, pretension-induced shear stiffening. The stiffening was first predicted using finite element software, and then a representative network was fabricated using a commercial 3D printer based on digital light processing technology using a soft resin. The stiffening response of the fabricated network was verified experimentally on a novel test device capable of testing the shear stiffness of the specimen under varying levels of uniaxial pretension. The resulting data demonstrated clear pretension-induced stiffening in shear in the fabricated network, with uniaxial pretension of 40% resulting in a factor of 2.65 increase in the small strain shear stiffness. The strategy described in this article addresses current challenges in modeling bioinspired fiber networks and can be readily integrated with advances in fabrication technology to fabricate materials truly replicating the mechanical response of biopolymer networks.
Title: Bioinspired Fiber Networks With Tunable Mechanical Properties by Additive Manufacturing
Description:
Abstract Soft bioinspired fiber networks offer great potential in biomedical engineering and material design due to their adjustable mechanical behaviors.
However, existing strategies to integrate modeling and manufacturing of bioinspired networks do not consider the intrinsic microstructural disorder of biopolymer networks, which limits the ability to tune their mechanical properties.
To fill in this gap, we developed a method to generate computer models of aperiodic fiber networks mimicking type I collagen ready to be submitted for additive manufacturing.
The models of fiber networks were created in a scripting language wherein key geometric features like connectivity, fiber length, and fiber cross section could be easily tuned to achieve desired mechanical behavior, namely, pretension-induced shear stiffening.
The stiffening was first predicted using finite element software, and then a representative network was fabricated using a commercial 3D printer based on digital light processing technology using a soft resin.
The stiffening response of the fabricated network was verified experimentally on a novel test device capable of testing the shear stiffness of the specimen under varying levels of uniaxial pretension.
The resulting data demonstrated clear pretension-induced stiffening in shear in the fabricated network, with uniaxial pretension of 40% resulting in a factor of 2.
65 increase in the small strain shear stiffness.
The strategy described in this article addresses current challenges in modeling bioinspired fiber networks and can be readily integrated with advances in fabrication technology to fabricate materials truly replicating the mechanical response of biopolymer networks.

Related Results

Unveiling the Environmental and Economic Implications of Additive Manufacturing on Inbound Transportation
Unveiling the Environmental and Economic Implications of Additive Manufacturing on Inbound Transportation
This studyaims to investigate the impact of additive manufacturing (AM) on the sustainability of inbound transportation. By combining insights from existing litera...
Light Assisted Hybrid Direct Write Additive Manufacturing of Thermosets
Light Assisted Hybrid Direct Write Additive Manufacturing of Thermosets
Abstract In the past recent years, numerous studies have been conducted on additive manufacturing of thermosets and thermoset composites. Thermosets are an important...
A Mobile Additive Manufacturing Robot Framework for Smart Manufacturing Systems
A Mobile Additive Manufacturing Robot Framework for Smart Manufacturing Systems
Abstract Recent technological innovations in the areas of additive manufacturing and collaborative robotics have paved the way toward realizing the concept of on-dem...
Designing Lightweight 3D-Printable Bioinspired Structures for Enhanced Compression and Energy Absorption Properties
Designing Lightweight 3D-Printable Bioinspired Structures for Enhanced Compression and Energy Absorption Properties
Recent progress in additive manufacturing, also known as 3D printing, has offered several benefits, including high geometrical freedom and the ability to create bioinspired structu...
The interaction between neural populations: Additive versus diffusive coupling
The interaction between neural populations: Additive versus diffusive coupling
AbstractModels of networks of populations of neurons commonly assume that the interactions between neural populations are via additive or diffusive coupling. When using the additiv...
Study of Tensile Strength of Opuntia Ficus Indica Fiber Reinforced Epoxy Composites
Study of Tensile Strength of Opuntia Ficus Indica Fiber Reinforced Epoxy Composites
In this present study, naturally available opuntia ficus indica (cactus) fiber is used, as reinforcing material. Cactus fiber belongs to the family cactaceae, which is reported to ...
Free and forced vibration analysis of 3D printed bioinspired sandwich beam using HSDT: Numerical and experimental study
Free and forced vibration analysis of 3D printed bioinspired sandwich beam using HSDT: Numerical and experimental study
AbstractSandwich structures are used in aircraft, automobiles, and naval industries. The sandwich cores have a substantial impact on their structural behavior. The core design is a...
Measure Additive Manufacturing for Sustainable Manufacturing
Measure Additive Manufacturing for Sustainable Manufacturing
Additive manufacturing technologies are still brand new in industrial production. Although It has widely been used in prototypes development, either low or very low scale productio...

Back to Top