Mechanical characterization of active poly(vinyl alcohol)-poly(acrylic acid) gel

被引:30
作者
Marra, SP [1 ]
Ramesh, KT [1 ]
Douglas, AS [1 ]
机构
[1] Johns Hopkins Univ, Dept Mech Engn, Baltimore, MD 21218 USA
来源
MATERIALS SCIENCE & ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS | 2001年 / 14卷 / 1-2期
关键词
polymer gels; poly(vinyl alcohol)-poly(acrylic acid) (PVA-PAA); artificial muscles; finite elasticity;
D O I
10.1016/S0928-4931(01)00205-3
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Active polymer gels expand and contract in response to certain environmental stimuli, such as the application of an electric field or a change in the pH level of the surroundings. This ability to achieve large, reversible deformations with no external mechanical loading has generated much interest in the use of these gels as actuators and "artificial muscles." This work focuses on developing a means of characterizing the mechanical properties of active polymer gels and describing how these properties evolve as the gel actuates. Poly(vinyl alcohol)-poly(acrylic acid) (PVA-PAA) gel was chosen as the model material for this work because it is relatively simple and safe to bath fabricate and actuate. PVA-PAA gels are fabricated on-site using a solvent-casting technique. These gels expand when moved from acidic to basic solutions, and contract when moved from basic to acidic solutions. The mechanical properties of the gel were characterized by conducting uniaxial tests on thin PVA-PAA gel films. A testing system has been developed which can measure stress and deformations of these films in a variety of liquid environments. The experimental results on PVA-PAA gels show these materials to be relatively compliant, and slightly viscoelastic and compressible. These gels are also capable of large recoverable deformations in both acidic and basic environments. (C) 2001 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:25 / 34
页数:10
相关论文
共 31 条
[21]   Some experimental results on the dynamic performance of PAN muscles [J].
Salehpoor, K ;
Shahinpoor, M ;
Mojarrad, M .
SMART MATERIALS TECHNOLOGIES: SMART STRUCTURES AND MATERIALS 1997, 1997, 3040 :169-173
[22]   DEFORMATION OF IONIC POLYMER GEL FILMS IN ELECTRIC-FIELDS [J].
SHIGA, T ;
HIROSE, Y ;
OKADA, A ;
KURAUCHI, T .
JOURNAL OF MATERIALS SCIENCE, 1994, 29 (21) :5715-5718
[23]   DEFORMATION OF POLYELECTROLYTE GELS UNDER THE INFLUENCE OF ELECTRIC-FIELD [J].
SHIGA, T ;
KURAUCHI, T .
JOURNAL OF APPLIED POLYMER SCIENCE, 1990, 39 (11-12) :2305-2320
[24]  
TADOKORO S, 1999, P IEEE INT C ROB AUT, V3, P2177
[25]   TIME-DEPENDENT POISSON RATIO OF POLYMER GELS IN SOLVENT [J].
TAKIGAWA, T ;
URAYAMA, K ;
MASUDA, T .
POLYMER JOURNAL, 1994, 26 (02) :225-227
[26]   KINETICS OF SWELLING OF GELS [J].
TANAKA, T ;
FILLMORE, DJ .
JOURNAL OF CHEMICAL PHYSICS, 1979, 70 (03) :1214-1218
[27]  
TASAKI I, 1991, POLYMER GELS, P95
[28]  
Tatara Y., 1987, Advanced Robotics, V2, P69, DOI 10.1163/156855387X00075
[29]  
TRELOAR LRG, 1975, PHYSICS RUBBER ELAST
[30]   SWELLING MECHANISM OF POLY(VINYL ALCOHOL) POLY(ACRYLIC ACID) DENSE GELS MADE BY REPETITIVE FREEZING AND THAWING PROCESS [J].
TSUNEMOTO, N ;
SUZUKI, M .
POLYMER GELS AND NETWORKS, 1994, 2 (3-4) :247-255