首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Structure and mechanical properties of Saxidomus purpuratus biological shells.
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Structure and mechanical properties of Saxidomus purpuratus biological shells.

机译:虎耳草生物壳的结构和力学性能。

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The strength and fracture behavior of Saxidomus purpuratus shells were investigated and correlated with the structure. The shells show a crossed lamellar structure in the inner and middle layers and a fibrous/blocky and porous structure composed of nanoscaled particulates (~100 nm diameter) in the outer layer. It was found that the flexure strength and fracture mode are a function of lamellar organization and orientation. The crossed lamellar structure of this shell is composed of domains of parallel lamellae with approximate thickness of 200-600 nm. These domains have approximate lateral dimensions of 10-70 mum with a minimum of two orientations of lamellae in the inner and middle layers. Neighboring domains are oriented at specific angles and thus the structure forms a crossed lamellar pattern. The microhardness across the thickness was lower in the outer layer because of the porosity and the absence of lamellae. The tensile (from flexure tests) and compressive strengths were analyzed by means of Weibull statistics. The mean tensile (flexure) strength at probability of 50%, 80-105 MPa, is on the same order as the compressive strength (~50-150 MPa) and the Weibull moduli vary from 3.0 to 7.6. These values are significantly lower than abalone nacre, in spite of having the same aragonite structure. The lower strength can be attributed to a smaller fraction of the organic interlayer. The fracture path in the specimens is dominated by the orientation of the domains and proceeds preferentially along lamella boundaries. It also correlates with the color changes in the cross section of the shell. The cracks tend to undergo a considerable change in orientation when the color changes abruptly. The distributions of strengths, cracking paths, and fracture surfaces indicate that the mechanical properties of the shell are anisotropic with a hierarchical nature.
机译:研究了虎耳草贝壳的强度和断裂行为,并将其与结构相关联。壳在内层和中层显示出交叉的层状结构,在外层显示出由纳米级颗粒(直径约100 nm)组成的纤维/块状和多孔结构。发现弯曲强度和断裂模式是层状组织和取向的函数。该壳的交叉层状结构由厚度约200-600 nm的平行层状晶畴组成。这些区域的横向尺寸约为10-70微米,在内层和中间层中至少有两个薄片方向。相邻区域以特定角度定向,因此结构形成交叉的层状图案。由于多孔性和不存在薄片,在外层中整个厚度的显微硬度较低。拉伸(来自挠曲测试)和抗压强度通过威布尔统计分析。平均拉伸(挠曲)强度的概率为50%,即80-105 MPa,与抗压强度(〜50-150 MPa)处于同一数量级,魏布尔模量在3.0到7.6之间变化。尽管具有相同的文石结构,但这些值明显低于鲍鱼珍珠质。较低的强度可以归因于有机中间层的较小部分。样品中的断裂路径主要由畴的方向决定,并且优先沿着薄片边界行进。它还与外壳横截面的颜色变化相关。当颜色突然改变时,裂纹趋于发生明显的取向变化。强度,开裂路径和断裂表面的分布表明,壳的机械性能是各向异性的,具有层级性质。

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