Investigation of the structure and hardness properties of Anodonta anatina mussel shells

K. Öksüz, H. Şereflişan
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Abstract

In this study, the shell structure of the freshwater mussel Anodonta anatina (Linnaeus, 1758) which has a widespread population in Gölbaşı Lake (Hatay) and is not economically exploited, was microscopically examined at a morphological level. It was determined that the shells of Anodonta anatina, which are not under significant fishing pressure, are mostly found discarded along the shores of the lake. This mussel species is important as a composite biological material with multifunctional roles in freshwater ecology. Considering the potential use of freshwater mussel shells as a biological material, an assessment of the shell structure, physical properties, mechanical strength, shell microstructure, and morphological characteristics of A. anatina was conducted. When cross-sections of the shell taken from the umbo, middle periostracum, and the region close to the pallial edge were examined in the dorsal-ventral direction, it was determined that the periostracum layer in the umbo region had a more prismatic and polygonal structure. The interior of the shell was found to consist of a shiny nacreous layer. In nacreous shell sections, it was observed that the nacreous layer contained more distinct layers near the pallial edge. Vickers microhardness tests were performed on individual shells, and it was found that the hardness value of the inner layer was the highest (625.5 ±172.7 HV), while the outer layer had a lower hardness value (531.5 ±110.7 HV). Based on XRF data, it was shown that the seashell powder is mainly composed of calcium oxide (98.8% wt., CaO) as a biological material.
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鸭齿蚌壳的结构与硬度研究
本研究对在Gölbaşı湖(Hatay)广泛分布且未被经济开发的淡水贻贝Anodonta anatina (Linnaeus, 1758)的壳结构进行了形态学水平的显微镜观察。据确定,没有受到重大捕捞压力的andonta anatina的壳,大部分是在湖边被丢弃的。该贻贝是一种重要的复合生物材料,在淡水生态中具有多种功能。考虑到淡水贻贝壳作为生物材料的潜在用途,对淡水贻贝壳的结构、物理性能、机械强度、微观结构和形态特征进行了评价。从背腹侧方向对脐、中骨膜和靠近苍白边缘区域的壳进行横切面检查,可以确定脐区域的骨膜层具有更多的棱柱形和多边形结构。壳的内部被发现由一层闪亮的珍珠层组成。在珍珠壳切片中,我们观察到珍珠层在苍白边缘附近有更多的明显的层。对单个壳体进行维氏显微硬度测试,发现内层硬度值最高(625.5±172.7 HV),外层硬度值较低(531.5±110.7 HV)。XRF数据表明,贝壳粉主要由氧化钙(CaO,重量为98.8%)作为生物材料组成。
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