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首页> 外文期刊>Palaeontology >CRYSTALLOGRAPHIC ORIENTATIONS OF STRUCTURAL ELEMENTS IN SKELETONS OF SYRINGOPORICAE (TABULATE CORALS, CARBONIFEROUS): IMPLICATIONS FOR BIOMINERALIZATION PROCESSES IN PALAEOZOIC CORALS
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CRYSTALLOGRAPHIC ORIENTATIONS OF STRUCTURAL ELEMENTS IN SKELETONS OF SYRINGOPORICAE (TABULATE CORALS, CARBONIFEROUS): IMPLICATIONS FOR BIOMINERALIZATION PROCESSES IN PALAEOZOIC CORALS

机译:螺旋藻(管形珊瑚,石炭纪)骨骼中的结构元素的晶体学方向:对古生代珊瑚生物矿化过程的影响

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摘要

The crystallographic orientation of structural elements in skeletons of representatives of Carboniferous Syringoporicae (Auloporida) has been analysed by scanning electron microscopy (SEM), petrographic microscopy and electron backscatter diffraction (EBSD) on specimens from the Iberian Peninsula. The skeletons of the tabulate corals of the Syringoporicae consist of biogenic calcite crystals, and their microstructure is composed of lamellae, fibres and granules, or of a combination of these. Independent of the microstructure, the c-axis is oriented towards the lumen, quasi-perpendicular to the growth direction of the skeleton (perpendicular to the morphological axis lamellae, parallel to fibres). Most phaceloid taxa have a turbostratic distribution, as a biogenic response to prevent the cleavage of crystals. Cerioid and some phaceloid corals, whose microstructure is conditioned by wall elements, do not exhibit turbostratic distribution. Wall elements are determined by the biology of each taxon. Holacanth septal spines are composed of fibres arranged in a cone-shape structure, sometimes clamped to the external part of the corallite and show a complex crystallography. Monacanth septal spines are spindle shaped and composed of bundles of fibres. Tabulae are composed of lamellae. Their development and crystallographic orientation depends on the position of the epithelium in each case. Shared walls are formed by a combination of the walls of two independent corallites with a median lamina, composed of granules; these have a crystallographic orientation between that of the two corallites. The growth of the microstructure is derived by a coordinated stepping mode of growth, similar to other groups of organisms such as molluscs and scleractinians. The nucleation and formation of packages of co-oriented microcrystals suggest a growth mode similar to mineral bridges with a competitive growth mode between each crystal. The growth pattern of corallites suggests that the growth direction is divided into two main components: a horizontal growth direction towards the lumen and a vertical direction towards the top.
机译:通过扫描电子显微镜(SEM),岩相显微镜和电子背散射衍射(EBSD),对伊比利亚半岛的标本分析了石炭纪丁香科(Auloporida)代表骨骼中结构元素的晶体学取向。紫丁香科表珊瑚的骨骼由生物方解石晶体组成,其微结构由薄片,纤维和颗粒或它们的组合组成。独立于微观结构,c轴朝向内腔,垂直于骨骼的生长方向(垂直于形态轴薄片,平行于纤维)。多数类触角类群具有涡轮层分布,作为防止结晶分裂的生物响应。蜡质和一些类珊瑚的微结构受壁元素的制约,没有表现出涡轮层状分布。墙壁元素由每个分类单元的生物学决定。 Holacanth的中隔刺由呈圆锥形结构排列的纤维组成,有时夹在珊瑚岩的外部,并显示出复杂的晶体学。 Monacanth的中隔棘为纺锤形,由纤维束组成。烟叶由薄片组成。在每种情况下,它们的发展和晶体学取向取决于上皮的位置。共享的壁是由两个独立的珊瑚岩的壁与中层(由颗粒组成)的壁组合而成。这些在两个珊瑚岩之间具有晶体学取向。微观结构的生长是通过协调的逐步生长模式得出的,类似于软体动物和巩膜菌等其他生物体。共取向微晶包装的成核和形成表明一种类似于矿物桥的生长方式,每个晶体之间具有竞争性的生长方式。珊瑚岩的生长模式表明生长方向分为两个主要部分:朝向内腔的水平生长方向和朝向顶部的垂直方向。

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