Investigation of microstructure and dissimilar materials connection patterns of mantis shrimp saddle
Autor: | Luquan Ren, Zhaohua Lin, Zhiwu Han, Yanjiao Chang, Qian Zhao, Zhihui Zhang |
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Rok vydání: | 2021 |
Předmět: |
Histology
Materials science Elastic energy 030206 dentistry 02 engineering and technology 021001 nanoscience & nanotechnology Microstructure Composite Resins 03 medical and health sciences Medical Laboratory Technology 0302 clinical medicine Deflection (engineering) Tensile Strength Materials Testing Ultimate tensile strength Fracture (geology) Coupling (piping) Anatomy Composite material 0210 nano-technology Instrumentation Damage tolerance Saddle Mechanical Phenomena |
Zdroj: | Microscopy Research and Technique. 84:2075-2081 |
ISSN: | 1097-0029 1059-910X |
DOI: | 10.1002/jemt.23763 |
Popis: | The microstructure and dissimilar materials connection patterns of mantis shrimp saddle were investigated. The outer layer with layered helical structure and inner layer with slablike laminae structure constructed the microstructure characteristics of saddle. The merus and membrane were characterized by layered structure. The lamina of saddle connected the corresponding lamina in merus and membrane, building the continuous and smooth coupling connection patterns. The entitative "hard-hard" and "hard-soft" transitions of dissimilar materials at micro level enhanced the steady transmit of driven force. The saddle exhibited high mechanical strength. With the increase of in-situ tensile displacement, the number of fractured fragments on saddle outer layer surface increased, which subjected to tensile load and defused the damage in the form of mineralized surface fragmentation. In the inner part of saddle, the fracture of mineralized laminae and crack deflection mechanisms bore the tensile load influence. The combination of microstructure with high mechanical strength and continues micro lamina connection endowed the concise dissimilar materials connection and efficient elastic energy storage property of saddle, which can be treated as the bionic models for design and preparation of fiber reinforced resin composite, hyperelastic material and so on. |
Databáze: | OpenAIRE |
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