Lin Huai-Ti, Dorfmann A Luis, Trimmer Barry A
Department of Biology, Tufts University, Medford, MA 02155, USA.
J Theor Biol. 2009 Feb 7;256(3):447-57. doi: 10.1016/j.jtbi.2008.10.018. Epub 2008 Oct 29.
The mechanical properties of soft tissues are important for the control of motion in many invertebrates. Pressurized cylindrical animals such as worms have circumferential reinforcement of the body wall; however, no experimental characterization of comparable anisotropy has been reported for climbing larvae such as caterpillars. Using uniaxial, real-time fluorescence extensometry on millimeter scale cuticle specimens we have quantified differences in the mechanical properties of cuticle to circumferentially and longitudinally applied forces. Based on these results and the composite matrix-fiber structure of cuticle, a pseudo-elastic transversely isotropic constitutive material model was constructed with circumferential reinforcement realized as a Horgan-Saccomandi strain energy function. This model was then used numerically to describe the anisotropic material properties of Manduca cuticle. The constitutive material model will be used in a detailed finite-element analysis to improve our understanding of the mechanics of caterpillar crawling.
软组织的力学特性对于许多无脊椎动物的运动控制至关重要。像蠕虫这样的加压圆柱形动物,其体壁有周向加强;然而,对于像毛虫这样的攀爬幼虫,尚未有可比各向异性的实验表征报道。通过对毫米级角质层标本进行单轴实时荧光伸长测量,我们已经量化了角质层在周向和纵向受力时力学特性的差异。基于这些结果以及角质层的复合基质 - 纤维结构,构建了一个伪弹性横向各向同性本构材料模型,其中周向加强通过霍根 - 萨孔迪应变能函数实现。然后使用该模型进行数值计算,以描述烟草天蛾角质层的各向异性材料特性。该本构材料模型将用于详细的有限元分析,以增进我们对毛虫爬行力学的理解。