论文标题

腐烂的压缩脉冲的冲击恢复:在雨果弹性限制周围方解石(Caco $ _3 $)中的冲击效果

Shock recovery with decaying compressive pulses: Shock effects in calcite (CaCO$_3$) around the Hugoniot elastic limit

论文作者

Kurosawa, Kosuke, Ono, Haruka, Niihara, Takafumi, Sakaiya, Tatsuhiro, Kondo, Tadashi, Tomioka, Naotaka, Mikouchi, Takashi, Genda, Hidenori, Matsuzaki, Takuya, Kayama, Masahiro, Koike, Mizuho, Sano, Yuji, Murayama, Masafumi, Satake, Wataru, Matsui, Takafumi

论文摘要

陨石中矿物质的冲击变质为古代太阳系提供了见解。方解石是碳质软管中丰富的水性改变矿物质。来自小行星Ryugu和Bennu的返回样品预计将包含方解石组矿物质。尽管对硅酸盐中的休克变质性进行了充分的研究,但这种用于水性改变矿物的数据受到限制。在这里,我们使用千叶理工学院行星勘探研究中心的撞击实验调查了方解石中的减震效应。我们产生了比目标小的弹丸腐烂的压缩脉冲。金属容器促进了保留其影响前地层的样品的恢复。我们估计了具有ISALE休克物理代码的样品中的峰值压力分布。这种方法产生震动的晶粒的能力,这些晶粒从单个实验中经历了不同程度的变质,这比传统的单轴冲击恢复实验具有优势。通过偏振显微镜和X射线衍射分析研究了震惊的样品。我们发现,当峰压力超过3 GPA时,超过一半的方解石晶粒表现出波动的消光。这种冲击压力比大理石的雨果弹性极限(HEL)高一个数量级,但它接近方解石晶体的HEL,这表明不散发性的灭绝记录记录了晶体中脱位诱导的塑性变形。最后,我们提出了一种策略,以重建陨石母体中有方解石晶粒的最大深度,如果在软骨中识别出震惊的方解石晶粒和/或来自ryugu和bennu的返回样品。

Shock metamorphism of minerals in meteorites provides insights into the ancient Solar System. Calcite is an abundant aqueous alteration mineral in carbonaceous chondrites. Return samples from the asteroids Ryugu and Bennu are expected to contain calcite-group minerals. Although shock metamorphism in silicates has been well studied, such data for aqueous alteration minerals are limited. Here, we investigated the shock effects in calcite with marble using impact experiments at the Planetary Exploration Research Center of Chiba Institute of Technology. We produced decaying compressive pulses with a smaller projectile than the target. A metal container facilitates recovery of a sample that retains its pre-impact stratigraphy. We estimated the peak pressure distributions in the samples with the iSALE shock physics code. The capability of this method to produce shocked grains that have experienced different degrees of metamorphism from a single experiment is an advantage over conventional uniaxial shock recovery experiments. The shocked samples were investigated by polarizing microscopy and X-ray diffraction analysis. We found that more than half of calcite grains exhibit undulatory extinction when peak pressure exceeds 3 GPa. This shock pressure is one order of magnitude higher than the Hugoniot elastic limit (HEL) of marble, but it is close to the HEL of a calcite crystal, suggesting that the undulatory extinction records dislocation-induced plastic deformation in the crystal. Finally, we propose a strategy to re-construct the maximum depth of calcite grains in a meteorite parent body, if shocked calcite grains are identified in chondrites and/or return samples from Ryugu and Bennu.

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