Auxetic materials

被引:419
作者
Alderson, A. [1 ]
Alderson, K. L. [1 ]
机构
[1] Univ Bolton, Ctr Mat Res & Innovat, Bolton BL3 5AB, England
关键词
auxetic; negative Poisson's ratio; smart materials and systems; composites; honey-combs; foams; polymeric fibres and films;
D O I
10.1243/09544100JAERO185
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The current status of research into auxetic (negative Poissods ratio) materials is reviewed, with particular focus on those aspects of relevance to aerospace engineering. Developments in the modelling, design, manufacturing, testing, and potential applications of auxetic cellular solids, polymers, composites, and sensor/actuator devices are presented. Auxetic cellular solids in the forms of honeycombs and foams are reviewed in terms of their potential in a diverse range of applications, including as core materials in curved sandwich panel composite components, radome applications, directional pass band filters, adaptive and deployable structures, MEMS devices, filters and sieves, seat cushion material, energy absorption components, viscoelastic damping materials, and fastening devices. The review of auxetic polymers includes the fabrication and characterization of microporous polymer solid rods, fibres, and films, as well as progress towards the first synthetic molecular-level auxetic polymer. Potential auxetic polymer applications include self-locking reinforcing fibres in composites, controlled release media, and self-healing films. Auxetic composite laminates and composites containing auxetic constituents are reviewed and enhancements in fracture toughness, and static and low velocity impact performance are presented to demonstrate potential in energy absorber components. Finally, the potential of auxetics as strain amplifiers, piezoelectric devices, and structural health monitoring components is presented.
引用
收藏
页码:565 / 575
页数:11
相关论文
共 99 条
[91]   Negative Poisson's ratios in composites with star-shaped inclusions: A numerical homogenization approach [J].
Theocaris, PS ;
Stavroulakis, GE ;
Panagiotopoulos, PD .
ARCHIVE OF APPLIED MECHANICS, 1997, 67 (04) :274-286
[92]   MECHANICAL CHARACTERIZATION OF SKIN-FINITE DEFORMATIONS [J].
VERONDA, DR ;
WESTMANN, RA .
JOURNAL OF BIOMECHANICS, 1970, 3 (01) :111-&
[93]   Influence of cell size on re-entrant transformation of negative Poisson's ratio reticulated polyurethane foams [J].
Wang, YC ;
Lakes, R ;
Butenhoff, A .
CELLULAR POLYMERS, 2001, 20 (06) :373-385
[94]   Novel variations in the microstructure of the auxetic microporous ultra-high molecular weight polyethylene. Part 1: Processing and microstructure [J].
Webber, RS ;
Alderson, KL ;
Evans, KE .
POLYMER ENGINEERING AND SCIENCE, 2000, 40 (08) :1894-1905
[95]  
WILLIAMS JL, 1982, T ASME J BIOMECH ENG, V104, P5
[96]   Non-chiral, molecular model of negative Poisson ratio in two dimensions [J].
Wojciechowski, KW .
JOURNAL OF PHYSICS A-MATHEMATICAL AND GENERAL, 2003, 36 (47) :11765-11778
[97]   CONSTANT THERMODYNAMIC TENSION MONTE-CARLO STUDIES OF ELASTIC PROPERTIES OF A TWO-DIMENSIONAL SYSTEM OF HARD CYCLIC HEXAMERS [J].
WOJCIECHOWSKI, KW .
MOLECULAR PHYSICS, 1987, 61 (05) :1247-1258
[98]   ELASTICITY OF ALPHA-CRISTOBALITE - A SILICON DIOXIDE WITH A NEGATIVE POISSONS RATIO [J].
YEGANEHHAERI, A ;
WEIDNER, DJ ;
PARISE, JB .
SCIENCE, 1992, 257 (5070) :650-652
[99]  
Zhang R., 1988, J REINFORCED PLAST C, V17, P1651