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

Mechanisms of Stiffening in Polymer-Filled Honeycomb Composites

View through CrossRef
Abstract Honeycomb composites are common materials in applications where a high specific stiffness is required. Previous research has found that honeycombs with polymer infills in their cells exhibit effective stiffnesses greater than the honeycomb or polymer alone. Currently, the state of analytic models for predicting the effective properties of these honeycomb polymer composites is limited, thus further research is needed to better characterize the behavior of these materials. In this work, a nonlinear finite element analysis was employed to perform parametric studies of a filled honeycomb unit cell with isotropic wall and infill materials. A pinned rigid wall model was created as an upper bound on the deformable wall model’s performance, and an empty honeycomb model was employed to better understand the mechanisms of stiffness amplification. Mechanisms by which the stiffness amplification occurs is studied through parametric studies, and the results are compared to current analytic models. It has been observed that both the volume change within the honeycomb cell under deformation, and the mismatch in Poisson’s ratios between the honeycomb and infill influence the effective properties. Stiffness amplifications of over 4,000 have been observed, with auxetic behavior achieved by tailoring of the HPC geometry. This research provides an important step toward understanding the design space and benefits of honeycomb polymer composites, and demonstrates the possibilities for variable stiffness structures when considering smart material infill materials.
Title: Mechanisms of Stiffening in Polymer-Filled Honeycomb Composites
Description:
Abstract Honeycomb composites are common materials in applications where a high specific stiffness is required.
Previous research has found that honeycombs with polymer infills in their cells exhibit effective stiffnesses greater than the honeycomb or polymer alone.
Currently, the state of analytic models for predicting the effective properties of these honeycomb polymer composites is limited, thus further research is needed to better characterize the behavior of these materials.
In this work, a nonlinear finite element analysis was employed to perform parametric studies of a filled honeycomb unit cell with isotropic wall and infill materials.
A pinned rigid wall model was created as an upper bound on the deformable wall model’s performance, and an empty honeycomb model was employed to better understand the mechanisms of stiffness amplification.
Mechanisms by which the stiffness amplification occurs is studied through parametric studies, and the results are compared to current analytic models.
It has been observed that both the volume change within the honeycomb cell under deformation, and the mismatch in Poisson’s ratios between the honeycomb and infill influence the effective properties.
Stiffness amplifications of over 4,000 have been observed, with auxetic behavior achieved by tailoring of the HPC geometry.
This research provides an important step toward understanding the design space and benefits of honeycomb polymer composites, and demonstrates the possibilities for variable stiffness structures when considering smart material infill materials.

Related Results

Leveraging Variable Density Honeycomb Structures for Innovative Design in Mission-Critical Embedded Devices
Leveraging Variable Density Honeycomb Structures for Innovative Design in Mission-Critical Embedded Devices
The imperative for lightweighting technologies, paramount in mission-critical cyber-physical systems (CPSs) including aerospace, automotive and allied sectors, hinges upon optimizi...
Design, Manufacture, and Experimental Analysis of 3D Honeycomb Textile Composites Part I: Design and Manufacture
Design, Manufacture, and Experimental Analysis of 3D Honeycomb Textile Composites Part I: Design and Manufacture
Textile composites have the advantage of being strong and lightweight over the conventional materials, and thus have found applications in many areas, most notably for materials us...
Nanogold and nanosilver hybrid polymer materials
Nanogold and nanosilver hybrid polymer materials
<p>Significant opportunities exist in both the scientific and industrial sectors for the development of new generation hybrid materials. These multifunctional hybrid material...
Unit Cell Optimization of Polymer Filled Honeycomb Composites
Unit Cell Optimization of Polymer Filled Honeycomb Composites
Abstract Hexagonal honeycombs and their use in composite structures has become commonplace in aerospace design and other fields. Polymer-filled honeycomb structures,...
Research on Quasi Honeycomb Superlattice Pattern in Dielectric Barrier Discharge
Research on Quasi Honeycomb Superlattice Pattern in Dielectric Barrier Discharge
Patterns formed in dielectric barrier discharge is a typical nonlinear selforganization phenomenon. Research on patterns helps elucidate the formation and evolution mechanisms of s...
Comparative study of static and dynamic characteristics of non-pneumatic tires with gradient honeycomb structure
Comparative study of static and dynamic characteristics of non-pneumatic tires with gradient honeycomb structure
Abstract The static and dynamic properties of the honeycomb non-pneumatic tires (NPTs) are strongly influenced by the spoke structure. Due to the complexity of the honeycom...
Reducing honeycomb-generated turbulence with a passive grid
Reducing honeycomb-generated turbulence with a passive grid
Abstract Honeycombs are widely used to laminarize fluid streams by inhibiting the lateral components of the fluctuating velocity. However, they also produce additional turb...
The Tension-Stiffening Contribution of NSM CFRP to the Behavior of Strengthened RC Beams
The Tension-Stiffening Contribution of NSM CFRP to the Behavior of Strengthened RC Beams
Tension stiffening is a characteristic behavior of reinforced concrete (RC) beams which is directly affected by the bond-slip property of steel bar and concrete interfaces. A beam...

Back to Top