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Ultrafast growth of wadsleyite in shock-produced melts and its implications for early solar system impact processes

机译:激石熔体中硅钙石的超快速生长及其对早期太阳系撞击过程的影响

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摘要

We observed micrometer-sized grains of wadsleyite, a high-pressure phase of (Mg,Fe)2SiO4, in the recovery products of a shock experiment. We infer these grains crystallized from shock-generated melt over a time interval of <1 μs, the maximum time over which our experiment reached and sustained pressure sufficient to stabilize this phase. This rapid crystal growth rate (≈1 m/s) suggests that, contrary to the conclusions of previous studies of the occurrence of high-pressure phases in shock-melt veins in strongly shocked meteorites, the growth of high-pressure phases from the melt during shock events is not diffusion-controlled. Another process, such as microturbulent transport, must be active in the crystal growth process. This result implies that the times necessary to crystallize the high-pressure phases in shocked meteorites may correspond to shock pressure durations achieved on impacts between objects 1–5 m in diameter and not, as previously inferred, ≈1–5 km in diameter. These results may also provide another pathway for syntheses, via shock recovery, of some high-value, high-pressure phases.
机译:在冲击实验的回收产物中,我们观察到了微米级尺寸的辉石(高压相为(Mg,Fe)2SiO4)。我们推断这些晶粒是在小于1μs的时间间隔内从冲击产生的熔体中结晶出来的,该时间间隔是我们实验达到的最大时间并维持足以稳定该相的压力。这种快速的晶体生长速率(≈1m / s)表明,与先前关于强冲击陨石在冲击熔体脉中出现高压相的研究结论相反,高压相从熔体中的生长在冲击事件中,不受扩散控制。在晶体生长过程中必须激活另一种过程,例如微湍流传输。该结果表明,使撞击的陨石中的高压相结晶所需的时间可能对应于在直径1–5 m的物体之间的撞击所达到的撞击压力持续时间,而不是如先前所推断的,≈1–5 km。这些结果也可能为某些高价值,高压相的冲击恢复提供另一种合成途径。

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