JOURNAL ARTICLE

Mass transport properties of auxetic (negative Poisson's ratio) foams

Andrew AldersonJ. RasburnK. Evans

Year: 2007 Journal:   physica status solidi (b) Vol: 244 (3)Pages: 817-827   Publisher: Wiley

Abstract

Abstract An auxetic foam structure is described which has the property of widening when stretched (negative Poisson's ratio behaviour), in contrast to the situation with most materials which narrow when stretched. The fabrication of this material involves a combination of heat and compressive treatments of a conventional commercial air‐filtration foam. The resulting microstructure is examined by scanning electron microscopy (SEM). The pertinent mechanical properties are described in terms of the changes in specimen dimensions and associated strains. From these quantities, Poisson's ratios are determined for the large strain regime involved. The property of being able to open pores by stretching the material is a useful feature in various types of filtration application. In particular, where the long‐term efficiency of the process is hindered by ingress of particles into the system which block the active pore structure, the marriage of permeability and mechanical deformation via a negative Poisson's ratio offers an alternative to other methods of clearance. This notion is illustrated by the use of some very simple tests in which the foam is challenged by glass beads of uniform diameter. Simple air pressure‐drop tests are also performed on auxetic and conventional foams to demonstrate that the change in permeability due to mechanical deformation enables a means of varying the pressure‐drop acting across an auxetic foam to a far greater degree than is possible for the conventional foams. (© 2007 WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim)

Keywords:
Auxetics Materials science Composite material Microstructure Poisson's ratio Poisson distribution Drop (telecommunication) Pressure drop Deformation (meteorology) Air permeability specific surface Filtration (mathematics) Permeability (electromagnetism) Deformation mechanism Mechanics Membrane Chemistry Mathematics Mechanical engineering

Metrics

86
Cited By
5.84
FWCI (Field Weighted Citation Impact)
10
Refs
0.96
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Cellular and Composite Structures
Physical Sciences →  Engineering →  Mechanical Engineering
Pickering emulsions and particle stabilization
Physical Sciences →  Materials Science →  Materials Chemistry
Polymer composites and self-healing
Physical Sciences →  Materials Science →  Polymers and Plastics

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