首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >High-pressure phases in a shock-induced melt vein of the Tenham L6 chondrite: Constraints on shock pressure and duration
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High-pressure phases in a shock-induced melt vein of the Tenham L6 chondrite: Constraints on shock pressure and duration

机译:Tenham L6球粒陨石的冲击诱发的熔脉中的高压相:冲击压力和持续时间的约束

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The microtexture and mineralogy of a 580-mu m-wide melt vein in the Tenham L6 chondrite were investigated using field-emission scanning electron microscopy and transmission electron microscopy to better understand the shock conditions. The melt vein consists of a matrix of silicate plus metal-sulfide grains that crystallized from immiscible melts, and sub-rounded fragments of the host chondrite that have been entrained in the melt and transformed to polycrystalline high-pressure silicates. The melt-vein matrix contains two distinct textures and mineral assemblages corresponding to the vein edge and interior. The 30-mu m-wide vein edge consists of vitrified silicate perovskite + ringwoodite + akimotoite + majorite with minor metal-sulfide. The 520-mu m-wide vein interior consists of majorite + magnesiowustite with irregular metal-sulfide blebs. Although these mineral assemblages are distinctly different, the pressure stabilities of both assemblages are consistent with crystallization from similar pressure conditions: the melt-vein edge crystallized at about 2325 GPa and the vein interior crystallized at about 21-25 GPa. This relatively narrow pressure range suggests that the melt vein either crystallized at a constant equilibrium shock pressure of similar to 25 GPa or during a relatively slow pressure release. Using a finite element heat transfer program to model the thermal history of this melt vein during shock, we estimate that the time required to quench this 580-mu m-wide vein was similar to 40 ms. Because the entire vein contains high-pressure minerals that crystallized from the melt, the shock-pressure duration was at least 40 ms. Using a synthetic Hugoniot for Tenham and assuming that the sample experienced a peak-shock pressure of 25 GPa near the impact site, we estimate that the Tenham parent body experienced an impact with collision velocity similar to 2 km/s. Based on a one-dimensional planar impact model, we estimate that the projectile size was > 150 m in thickness. (c) 2005 Elsevier Inc. All rights reserved.
机译:使用场发射扫描电子显微镜和透射电子显微镜研究了Tenham L6球粒陨石中580微米宽熔体脉的微观结构和矿物学,以更好地了解冲击条件。熔体脉由硅酸盐加上从不混溶的熔体中结晶出来的金属硫化物晶粒的基质以及主体球粒陨石的亚圆形碎片(已被夹带在熔体中并转化为多晶高压硅酸盐)组成。静脉脉基质包含两种不同的纹理和矿物组合,分别对应于静脉边缘和内部。脉缘宽30微米,由玻璃化的钙钛矿型硅酸盐+菱铁矿+裸铁矿+镁铝石与少量金属硫化物组成。脉宽520微米的内部由铁质+菱镁矿和不规则的金属硫化物气泡组成。尽管这些矿物组合明显不同,但两种组合的压力稳定性与在相似压力条件下的结晶相一致:熔脉边缘在约2325 GPa处结晶,而静脉内部在约21-25 GPa处结晶。这个相对较窄的压力范围表明,熔体脉或者在类似于25 GPa的恒定平衡冲击压力下结晶,或者在相对缓慢的压力释放过程中结晶。使用有限元传热程序来模拟此融化静脉在冲击过程中的热历史,我们估计淬灭该580微米宽的静脉所需的时间类似于40毫秒。由于整个静脉都包含从熔体中结晶出来的高压矿物,因此冲击压力持续时间至少为40 ms。对Tenham使用合成的Hugoniot,并假设样品在撞击点附近经历了25 GPa的峰值冲击压力,我们估计Tenham母体遭受了撞击,撞击速度接近2 km / s。基于一维平面冲击模型,我们估计弹丸的厚度> 150 m。 (c)2005 Elsevier Inc.保留所有权利。

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