论文标题

在金星中间气氛中重新访问硫磺化学系统

Revisiting the Sulfur-Water Chemical System in the Middle Atmosphere of Venus

论文作者

Shao, Wencheng D., Zhang, Xi, Bierson, Carver J., Encrenaz, Therese

论文摘要

硫化学在金星的中间气氛中起着重要作用。基于地面的观察结果发现,在〜64 km处同时观察到的SO2和H2O随时间变化,并且在时间上是抗相关的。为了了解这些观察结果,我们使用一维化学扩散模型探索硫 - 水化学系统。我们发现,云上方上方的SO2和H2O混合比高度依赖于中间云顶部的两个物种的混合比(58 km)。硫 - 水化学系统的行为可以分为三个制度,但这些政权之间没有突然的过渡。特别是,没有以前声称的分叉行为。我们还发现,SO2自屏蔽效应会导致云上方的H2O以非单调的方式对中间云上衣做出反应。通过与观测值进行比较,我们发现中间云顶部的混合比变化可以解释SO2和H2O的观察到的变异性。中间大气中的硫 - 水化学负责64 km的H2O-SO2抗相关性。仅涡流变化无法解释这两种物种的变化。这些结果表明,中间大气中物种丰度的变化受到较低大气过程​​的显着影响。对云上方的SO2和H2O共同进化的持续基于地面的测量以及新的航天器任务对于揭示较低大气,云层,云层和金星中间大气之间相互作用的复杂过程至关重要。

Sulfur-water chemistry plays an important role in the middle atmosphere of Venus. Ground based observations have found that simultaneously observed SO2 and H2O at ~64 km vary with time and are temporally anti-correlated. To understand these observations, we explore the sulfur-water chemical system using a one-dimensional chemistry-diffusion model. We find that SO2 and H2O mixing ratios above the clouds are highly dependent on mixing ratios of the two species at the middle cloud top (58 km). The behavior of sulfur-water chemical system can be classified into three regimes but there is no abrupt transition among these regimes. In particular, there is no bifurcation behavior as previously claimed. We also find that the SO2 self-shielding effect causes H2O above the clouds to respond to the middle cloud top in a non-monotonic fashion. Through comparison with observations, we find that mixing ratio variations at the middle cloud top can explain the observed variability of SO2 and H2O. The sulfur-water chemistry in the middle atmosphere is responsible for the H2O-SO2 anti-correlation at 64 km. Eddy transport change alone cannot explain the variations of both species. These results imply that variations of species abundance in the middle atmosphere are significantly influenced by the lower atmospheric processes. Continued ground-based measurements of the co-evolution of SO2 and H2O above the clouds and new spacecraft missions will be crucial for uncover the complicated processes underlying the interaction among the lower atmosphere, the clouds and the middle atmosphere of Venus.

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