期刊文献+

Characterization of cuttlebone for a biomimetic design of cellular structures 被引量:5

Characterization of cuttlebone for a biomimetic design of cellular structures
在线阅读 下载PDF
导出
摘要 Cuttlebone is a natural material possessing the multifunctional properties of high porosity, high flexural stiffness and compressive strength, making it a fine example of design optimization of cellular structures created by nature. Examination of cuttlebone using scanning electron micros- copy (SEM) reveals an approximately periodic microstruc- ture, appropriate for computational characterization using direct homogenization techniques. In this paper, volume fractions and stiffness tensors were determined based on two different unit cell models that were extracted from two different cuttlefish samples. These characterized results were then used as the target values in an inverse homogenization procedure aiming to re-generate microstructures with the same properties as cuttlebone. Unit cells with similar topologies to the original cuttlebone unit cells were achieved, attaining the same volume fraction (i.e. bulk density) and the same (or very close) stiffness tensor. In addition, a range of alternate unit cell topologies were achieved also attaining the target properties, revealing the non-unique nature of this inverse homogenization problem. Cuttlebone is a natural material possessing the multifunctional properties of high porosity, high flexural stiffness and compressive strength, making it a fine example of design optimization of cellular structures created by nature. Examination of cuttlebone using scanning electron micros- copy (SEM) reveals an approximately periodic microstruc- ture, appropriate for computational characterization using direct homogenization techniques. In this paper, volume fractions and stiffness tensors were determined based on two different unit cell models that were extracted from two different cuttlefish samples. These characterized results were then used as the target values in an inverse homogenization procedure aiming to re-generate microstructures with the same properties as cuttlebone. Unit cells with similar topologies to the original cuttlebone unit cells were achieved, attaining the same volume fraction (i.e. bulk density) and the same (or very close) stiffness tensor. In addition, a range of alternate unit cell topologies were achieved also attaining the target properties, revealing the non-unique nature of this inverse homogenization problem.
出处 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2010年第1期27-35,共9页 力学学报(英文版)
基金 supported by Australian Research Council Discovery Project grant
关键词 Inverse homogenization - Cuttlebone microstructure Topology optimization Scanning electronic microscopy (SEM) Inverse homogenization - Cuttlebone microstructure Topology optimization Scanning electronic microscopy (SEM)
  • 相关文献

参考文献29

  • 1Sherrard, K.M.: Cuttlebone morphology limits habitat depth in eleven species of Sepia (Cephalopoda: Sepiidae). Biol. Bull. 198, 404-414 (2000).
  • 2Birchall, J.D., Thomas, N.L.: On the architecture and function of cuttlefish bone. J. Mater. Sci. 18, 2081-2086 (1983).
  • 3Re, R, Narciso, L.: Growth and cuttlebone microstructure of juvenile cuttlefish, sepia-officinalis, under controlled conditions. J. Exp. Mar. Biol. Ecol. 177, 73-78 (1994).
  • 4Gower, D., Vincent, J.F.V.: The mechanical design of the cuttlebone and its bathymetric implications. Biomimetics 4, 37-57 (1996).
  • 5Culverwell, E., Wimbush, S.C., Hall, S.R.: Biotemplated synthesis of an ordered macroporous superconductor with high critical current density using a cuttlebone template. Chem. Commun. 9, 1055- 1057 (2008).
  • 6Rocha, J.H.G. et al.: Hydrothermal growth of hydroxyapatite scaffolds from aragonitic cuttlefish bones. J. Biomed. Mater. Res. A 77, 160-168 (2006).
  • 7Kannan, S. et al.: Fluorine-substituted hydroxyapatite scaffolds hydrothermally grown from aragonitic cuttlefish bones. Acta Biomater. 3, 243-249 (2007).
  • 8Rocha, J.H.G. et al.: Scaffolds for bone restoration from cuttlefish. Bone 37, 850-857 (2005).
  • 9Rocha, J.H.G. et al.: Hydroxyapatite scaffolds hydrothermally grown from aragonitic cuttlefish bones. J. Mater. Chem. 15, 5007- 5011 (2005).
  • 10Hutmacher, D.W., Sittinger, M., Risbud, M.V.: Scaffold-based tissue engineering: rationale for computer-aided design and solid freeform fabrication systems. Trends Biotechnol. 22, 354-362 (2004).

同被引文献17

引证文献5

二级引证文献7

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部