DocumentCode :
2436837
Title :
The microstructure and nanomechanical properties of chlamys farreri shell
Author :
Zhang, Jibo ; Tong, Jin ; Li, Caihua ; Ma, Yunhai ; Li, Yaqin
Author_Institution :
Key Lab. of Bionic Eng., Jilin Univ., Changchun, China
fYear :
2011
fDate :
24-26 June 2011
Firstpage :
8683
Lastpage :
8686
Abstract :
The microstructure of chlamys farreri shell was observed by SEM, the results showed that the chlamys farreri shell is a kind of biological ceramic composite, which is composed of calcite, aragonite and collagen. The calcite layer has irregular laminated structure, and the aragonite layer has regular laminated structure which are composed of staight aragonite strips. The chlamys farreri shell was researched by nanoindentation test, it was shown that both hardness and elastic modulus of aragonite layer are larger than those of calcite layer. It was illustrated that the carrying capacity of aragonite layer is higher than that of calcite layer under same conditions. According to the further observation of nanoindentation apperance of chlamys faerreri shell, the crack propagation modes of two materials are different when they are loaded by external force. The crack shape of calcite is irregular, and the cracks extend along with direction of crystal boundaries, and the capacities of anti-failure and deformation are poor; but the crack of aragonite layer is relative straight, and the amount is less, so the capacities of anti-failure and deformation is preferable. The aragonite layer has excellent mechanical properties.
Keywords :
bioceramics; biomechanics; calcium compounds; cracks; crystal microstructure; deformation; elastic moduli; hardness; laminates; molecular biophysics; nanoindentation; proteins; scanning electron microscopy; CaCO3; SEM; antifailure; aragonite; biological ceramic composite; calcite; chlamys farreri shell; collagen; crack propagation modes; crystal boundary; deformation; elastic modulus; hardness; irregular laminated structure; microstructure; nanoindentation; nanomechanical properties; Ceramics; Crystals; Elasticity; Microstructure; Nanobioscience; ceramic composite; chlamys farerri shell; microstructure; nanomechanical properties;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Remote Sensing, Environment and Transportation Engineering (RSETE), 2011 International Conference on
Conference_Location :
Nanjing
Print_ISBN :
978-1-4244-9172-8
Type :
conf
DOI :
10.1109/RSETE.2011.5964200
Filename :
5964200
Link To Document :
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