Geometric nonlinearity in nanoscale helical coils

被引:0
作者
Zhang, GG [1 ]
机构
[1] Univ Georgia, Dept Biol & Agr Engn, Fac Engn, Nanoscale Sci & Engn Ctr,Micro Nano Bioengn Lab, Athens, GA 30602 USA
来源
NANOMODELING | 2004年 / 5509卷
关键词
nanomechanics; nanoscale helical coil; geometric nonlinearity; material nonlinearity; biological helix;
D O I
10.1117/12.561042
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The mechanical properties of nanoscale helical structures have become the subjects of great research interest lately. These helical structures include natural helices like the a-helical polypeptide and man-made helices such as nanosprings or nanocoils. Based on a common belief that a nanoscale helical structure would behave like a spring, much attention is devoted to obtaining its spring-constant, or stiffness. For nanocoils, however, whether a single stiffness value exists is questionable. Very often, a nanospring structure experiences a large deformation with respect to its dimension, and its coil radius decreases when it is in tension and increases when in compression. According to the classical equation by Ancker and Goodier, the stiffness of a coil is inversely proportional to the coil radius to the third order. Thus, a single stiffness value does not exist for nanosprings: the stiffness should increase when it is in tension and decrease when in compression. To investigate the mechanical characteristics of nanoscale helical coils undergoing large deformations, nonlinear finite element analysis (both elastic and plastic) modeling was performed. Nanocoils behave linearly with single stiffness values only when their deformation, either extension or shortening, is very small. When the deformation is large, nanocoils will exhibit stiffening behavior in tension and softening behavior in compression. The stiffening and softening behavior of the nanocoils is mainly attributed to the geometric nonlinearity, which is caused by the change in the geometric configuration of the nanocoils. Geometric nonlinearity is elastic in nature, and the deformation in the nanocoils will disappear when the applied load is removed. It differs from material nonlinearity, with which plastic permanent deformation will develop in the nanocoils.
引用
收藏
页码:115 / 122
页数:8
相关论文
共 10 条
[1]  
ANCKER GK, 1958, J APPL MECH, V25, P466
[2]  
Ancker Jr. C. J., 1958, J APPL MECH, V25, P471
[3]   Mechanics of a carbon nanocoil [J].
Chen, XQ ;
Zhang, SL ;
Dikin, DA ;
Ding, WQ ;
Ruoff, RS ;
Pan, LJ ;
Nakayama, Y .
NANO LETTERS, 2003, 3 (09) :1299-1304
[4]   Mechanical and electrical properties of carbon tubule nanocoils [J].
Hayashida, T ;
Pan, L ;
Nakayama, Y .
PHYSICA B-CONDENSED MATTER, 2002, 323 (1-4) :352-353
[5]  
Madou M., 1997, Fundamentals of Microfabrication
[6]   Mechanical response of thin films with helical microstructures [J].
Seto, MW ;
Robbie, K ;
Vick, D ;
Brett, MJ ;
Kuhn, L .
JOURNAL OF VACUUM SCIENCE & TECHNOLOGY B, 1999, 17 (05) :2172-2177
[7]   Microsprings and microcantilevers: studies of mechanical response [J].
Seto, MW ;
Dick, B ;
Brett, MJ .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2001, 11 (05) :582-588
[8]   Mechanical characteristics of nanoscale springs [J].
Zhang, GG ;
Zhao, YP .
JOURNAL OF APPLIED PHYSICS, 2004, 95 (01) :267-271
[9]   Synthesis, characterization, and manipulation of helical SiO2 nanosprings [J].
Zhang, HF ;
Wang, CM ;
Buck, EC ;
Wang, LS .
NANO LETTERS, 2003, 3 (05) :577-580
[10]  
2003, ALGOR PITTSBURGH