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A Recharge Oscillator Model for Interannual Variability in Venus' Clouds

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arxiv 2010.16122 v1 pith:Q6GHW5NK submitted 2020-10-30 astro-ph.EP physics.ao-ph

classification astro-ph.EPphysics.ao-ph
keywords convectivevariabilityabundancecloudsmodelstrengthwatercloud-base
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Sulfur dioxide is a radiatively and chemically important trace gas in the atmosphere of Venus and its abundance at the cloud-tops has been observed to vary on interannual to decadal timescales. This variability is thought to come from changes in the strength of convection which transports sulfur dioxide to the cloud-tops, {although} the dynamics behind such convective variability are unknown. Here we propose a new conceptual model for convective variability that links the radiative effects of water abundance at the cloud-base to convective strength within the clouds, which in turn affects water transport within the cloud. The model consists of two coupled equations which are identified as a recharge-discharge oscillator. The solutions of the coupled equations are finite amplitude sustained oscillations in convective strength and cloud-base water abundance on 3-9 year timescales. The characteristic oscillation timescale is given by the geometric mean of the radiative cooling time and the eddy mixing time near the base of the convective clouds.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Venus Cloud Research: Progress and Perspectives

    astro-ph.EP 2025-06 conditional novelty 1.0 of 10

    A synthesis of Venus cloud observations and models concluding that cloud-chemistry coupling is the key to understanding the Venusian atmosphere and that new in-situ missions are required.

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