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首页> 外文期刊>Meteoritics & planetary science >Petrology, mineralogy, and oxygen isotope compositions of aluminum-rich chondrules from CV3 chondrites
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Petrology, mineralogy, and oxygen isotope compositions of aluminum-rich chondrules from CV3 chondrites

机译:来自CV3球粒陨石的富铝球粒的岩石学,矿物学和氧同位素组成

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摘要

Bulk major element composition, petrography, mineralogy, and oxygen isotope compositions of twenty Al-rich chondrules (ARCs) from five CV3 chondrites (Northwest Africa [NWA] 989, NWA 2086, NWA 2140, NWA 2697, NWA 3118) and the Ningqiang carbonaceous chondrite were studied and compared with those of ferromagnesian chondrules and refractory inclusions. Most ARCs are marginally Al-richer than ferromagnesian chondrules with bulk Al2O3 of 10-15 wt%. ARCs are texturally similar to ferromagnesian chondrules, composed primarily of olivine, pyroxene, plagioclase, spinel, Al-rich glass, and metallic phases. Minerals in ARCs have intermediate compositions. Low-Ca pyroxene (Fs(0.6-8.8)Wo(0.7-9.3)) has much higher Al2O3 and TiO2 contents (up to 12.5 and 2.3 wt%, respectively) than that in ferromagnesian chondrules. High-Ca pyroxene (Fs(0.3-2.0)Wo(33-54)) contains less Al2O3 and TiO2 than that in Ca, Al-rich inclusions (CAIs). Plagioclase (An(77-99)-Ab(1-23)) is much more sodic than that in CAIs. Spinel is enriched in moderately volatile element Cr (up to 6.7 wt%) compared to that in CAIs. Al-rich enstatite coexists with anorthite and spinel in a glass-free chondrule, implying that the formation of Al-enstatite was not due to kinetic reasons but is likely due to the high Al2O3/CaO ratio (7.4) of the bulk chondrule. Three ARCs contain relict CAIs. Oxygen isotope compositions of ARCs are also intermediate between those of ferromagnesian chondrules and CAIs. They vary from -39.4& to 13.9 parts per thousand in delta O-18 and yield a best fit line (slope = 0.88) close to the carbonaceous chondrite anhydrous mineral (CCAM) line. Chondrules with 5-10 wt% bulk Al2O3 have a slightly more narrow range in delta O-18 (-32.5 to 5.9 parts per thousand) along the CCAM line. Except for the ARCs with relict phases, however, most ARCs have oxygen isotope compositions (>-20 parts per thousand in delta O-18) similar to those of typical ferromagnesian chondrules. ARCs are genetically related to both ferromagnesian chondrules and CAIs, but the relationship between ARCs and ferromagnesian chondrules is closer. Most ARCs were formed during flash heating and rapid cooling processes like normal chondrules, only from chemically evolved precursors. ARCs extremely enriched in Al and those with relict phases could have had a hybrid origin (Krot et al. 2002) which incorporated refractory inclusions as part of the precursors in addition to ferromagnesian materials. The occurrence of melilite in ARCs indicates that melilite-rich CAIs might be present in the precursor materials of ARCs. The absence of melilite in most ARCs is possibly due to high-temperature interactions between a chondrule melt and the solar nebula.
机译:来自五种CV3球粒陨石(西北非洲[NWA] 989,NWA 2086,NWA 2140,NWA 2697,NWA 3118)和宁强碳质碳酸盐岩的二十个富铝球粒(ARC)的块状主要元素组成,岩石学,矿物学和氧同位素组成研究了球粒陨石并将其与铁锰球粒和难熔夹杂物进行比较。大多数ARC的Al2O3体积百分比为10-15 wt%,比铁锰酸镁软骨稍富Al。 ARC在结构上类似于铁镁碳酸盐球囊,主要由橄榄石,辉石,斜长石,尖晶石,富铝玻璃和金属相组成。 ARC中的矿物质具有中间成分。低钙辉石(Fs(0.6-8.8)Wo(0.7-9.3))的Al2O3和TiO2含量要高得多(分别高达12.5和2.3 wt%)。高钙辉石(Fs(0.3-2.0)Wo(33-54))所含的Al2O3和TiO2含量要比钙,富铝夹杂物(CAIs)中的少。斜长石(An(77-99)-Ab(1-23))比CAI中的钠盐更为苏打。与CAI相比,尖晶石富含中等挥发性元素Cr(最高6.7 wt%)。富含铝的顽辉石与钙长石和尖晶石共存于无玻璃的球粒中,这表明形成钙铝长石的原因不是动力学原因,而是可能是由于块状球状体的高Al2O3 / CaO比(7.4)所致。三个ARC包含剩余的CAI。 ARC的氧同位素组成也介于铁磁软骨和CAI之间。在δO-18中,它们的变化范围为-39.4%至千分之13.9,并且产生的最佳拟合线(斜率= 0.88)接近碳质球粒陨石无水矿物(CCAM)线。沿着CCAM线,具有5-10 wt%的Al2O3的软骨在O-18三角洲(-32.5至5.9千分之一)中的范围略窄。但是,除了具有残基相的ARC外,大多数ARC的氧同位素组成(δO-18中的千分之二十以上)与典型的铁磁镁铝球石相似。弧在遗传上与铁磁软骨球和CAI都相关,但是弧与铁磁软骨球之间的关系更为紧密。大多数ARC是在闪蒸加热和快速冷却过程(如普通的球状晶体)中形成的,仅由化学生成的前体形成。铝中极富集的弧和具有残余相的弧可能起源于杂种起源(Krot等,2002),除了铁磁材料以外,它还结合了耐火夹杂物作为前体的一部分。弧形中的陨石的发生表明,弧形的前体材料中可能存在富含陨石的CAI。大多数ARC中不存在陨石,可能是由于软骨状熔体与太阳星云之间的高温相互作用所致。

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