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Mechanical design of the highly porous cuttlebone
by
Jia, Zian
, Li, Ling
, Deng, Zhifei
, Yang, Ting
, Chen, Hongshun
, Liu, Wenkun
, Chen, Liuni
in
Absorption
/ Animals
/ Aragonite
/ asymmetric fracture
/ Atmospheric pressure
/ bio-inspired design
/ Bioceramics
/ Biomechanical Phenomena
/ Biomimetic Materials - chemistry
/ Bone and Bones - chemistry
/ Buoyancy
/ cellular ceramics
/ Cellular structure
/ Ceramics - chemistry
/ Compression
/ Correlation analysis
/ cuttlebone
/ Damage tolerance
/ Densification
/ Digital imaging
/ Dimensional analysis
/ Energy absorption
/ Energy distribution
/ ENGINEERING
/ Equipment Design
/ Hardness
/ Image processing
/ Marine mollusks
/ Mechanical analysis
/ Mechanical properties
/ Microstructure
/ Mollusks
/ Physical Sciences
/ Porosity
/ Sepia - chemistry
/ Septum
/ Shellfish
/ Stiffness
/ Structural analysis
/ Structural damage
/ Water pressure
/ Waviness
2020
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Mechanical design of the highly porous cuttlebone
by
Jia, Zian
, Li, Ling
, Deng, Zhifei
, Yang, Ting
, Chen, Hongshun
, Liu, Wenkun
, Chen, Liuni
in
Absorption
/ Animals
/ Aragonite
/ asymmetric fracture
/ Atmospheric pressure
/ bio-inspired design
/ Bioceramics
/ Biomechanical Phenomena
/ Biomimetic Materials - chemistry
/ Bone and Bones - chemistry
/ Buoyancy
/ cellular ceramics
/ Cellular structure
/ Ceramics - chemistry
/ Compression
/ Correlation analysis
/ cuttlebone
/ Damage tolerance
/ Densification
/ Digital imaging
/ Dimensional analysis
/ Energy absorption
/ Energy distribution
/ ENGINEERING
/ Equipment Design
/ Hardness
/ Image processing
/ Marine mollusks
/ Mechanical analysis
/ Mechanical properties
/ Microstructure
/ Mollusks
/ Physical Sciences
/ Porosity
/ Sepia - chemistry
/ Septum
/ Shellfish
/ Stiffness
/ Structural analysis
/ Structural damage
/ Water pressure
/ Waviness
2020
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Mechanical design of the highly porous cuttlebone
by
Jia, Zian
, Li, Ling
, Deng, Zhifei
, Yang, Ting
, Chen, Hongshun
, Liu, Wenkun
, Chen, Liuni
in
Absorption
/ Animals
/ Aragonite
/ asymmetric fracture
/ Atmospheric pressure
/ bio-inspired design
/ Bioceramics
/ Biomechanical Phenomena
/ Biomimetic Materials - chemistry
/ Bone and Bones - chemistry
/ Buoyancy
/ cellular ceramics
/ Cellular structure
/ Ceramics - chemistry
/ Compression
/ Correlation analysis
/ cuttlebone
/ Damage tolerance
/ Densification
/ Digital imaging
/ Dimensional analysis
/ Energy absorption
/ Energy distribution
/ ENGINEERING
/ Equipment Design
/ Hardness
/ Image processing
/ Marine mollusks
/ Mechanical analysis
/ Mechanical properties
/ Microstructure
/ Mollusks
/ Physical Sciences
/ Porosity
/ Sepia - chemistry
/ Septum
/ Shellfish
/ Stiffness
/ Structural analysis
/ Structural damage
/ Water pressure
/ Waviness
2020
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Journal Article
Mechanical design of the highly porous cuttlebone
2020
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Overview
Cuttlefish, a unique group of marine mollusks, produces an internal biomineralized shell, known as cuttlebone, which is an ultra-lightweight cellular structure (porosity, ∼93 vol%) used as the animal’s hard buoyancy tank. Although cuttlebone is primarily composed of a brittle mineral, aragonite, the structure is highly damage tolerant and can withstand water pressure of about 20 atmospheres (atm) for the species Sepia officinalis. Currently, our knowledge on the structural origins for cuttlebone’s remarkable mechanical performance is limited. Combining quantitative three-dimensional (3D) structural characterization, four-dimensional (4D) mechanical analysis, digital image correlation, and parametric simulations, here we reveal that the characteristic chambered “wall–septa” microstructure of cuttlebone, drastically distinct from other natural or engineering cellular solids, allows for simultaneous high specific stiffness (8.4 MN·m/kg) and energy absorption (4.4 kJ/kg) upon loading. We demonstrate that the vertical walls in the chambered cuttlebone microstructure have evolved an optimal waviness gradient, which leads to compression-dominant deformation and asymmetric wall fracture, accomplishing both high stiffness and high energy absorption. Moreover, the distribution of walls is found to reduce stress concentrationswithin the horizontal septa, facilitating a larger chamber crushing stress and a more significant densification. The design strategies revealed here can provide important lessons for the development of low-density, stiff, and damage-tolerant cellular ceramics.
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