论文标题

木星中的风暴和氨的耗尽:ii。解释朱诺的观察

Storms and the Depletion of Ammonia in Jupiter: II. Explaining the Juno Observations

论文作者

Guillot, Tristan, Li, Cheng, Bolton, Scott, Brown, Shannon, Ingersoll, Andrew, Janssen, Michael, Levin, Steven, Lunine, Jonathan, Orton, Glenn, Steffes, Paul, Stevenson, David

论文摘要

朱诺航天器对木星深度大气的观察结果表明了几个令人困惑的事实:氨的浓度是可变的,降低了数十杆的压力,并且很大程度上取决于纬度。虽然大多数纬度表现出较低的丰度,但木星的赤道带的丰度很高且几乎均匀,深度均匀。同时,赤道区是因为它没有闪电而奇特的,否则这是地球上其他任何地方都普遍存在的。我们表明,一个模型占了小规模对流和源自木星深层气氛的水风暴的存在。如果在地球上观察到强烈的雷暴,我们估计形成了富含氨的冰雹(“鸡巴”)和随后的下水道会耗尽其氨的上层大气,并有效地将其运输到更深层次的水平上。在赤道区,缺乏雷暴表明,这一过程并不是发生的,这意味着小规模的对流可以维持该地区的几乎同质性。一个满足质量和能量平衡的简单模型是Juno的MWR观测值的主要特征,并成功地重现了氨的丰度与闪电率在纬度的功能之间看到的反相关性。我们预测,在氨水耗尽的区域,水也应耗尽到大深度。直到对凝结水平深得多,冷凝水才被对流充分混合在一起,这对我们对木星的深层内部和一般的巨型风格大气的理解产生了影响。

Observations of Jupiter's deep atmosphere by the Juno spacecraft have revealed several puzzling facts: The concentration of ammonia is variable down to pressures of tens of bars, and is strongly dependent on latitude. While most latitudes exhibit a low abundance, the Equatorial Zone of Jupiter has an abundance of ammonia that is high and nearly uniform with depth. In parallel, the Equatorial Zone is peculiar for its absence of lightning, which is otherwise prevalent most everywhere else on the planet. We show that a model accounting for the presence of small-scale convection and water storms originating in Jupiter's deep atmosphere accounts for the observations. Where strong thunderstorms are observed on the planet, we estimate that the formation of ammonia-rich hail ('mushballs') and subsequent downdrafts can deplete efficiency the upper atmosphere of its ammonia and transport it efficiently to the deeper levels. In the Equatorial Zone, the absence of thunderstorms shows that this process is not occurring, implying that small-scale convection can maintain a near-homogeneity of this region. A simple model satisfying mass and energy balance accounts for the main features of Juno's MWR observations and successfully reproduces the inverse correlation seen between ammonia abundance and the lightning rate as function of latitude. We predict that in regions where ammonia is depleted, water should also be depleted to great depths. The fact that condensates are not well mixed by convection until far deeper than their condensation level has consequences for our understanding of Jupiter's deep interior and of giant-planet atmospheres in general.

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