A fundamental question for the atmospheric evolution of Venus is how much water-related material escapes from Venus to space. In this study, we calculate the nonthermal escape of H+ and O+ ions through the Venusian magnetotail and its dependence on the solar cycle. We separate 8 years of data obtained from the ion mass analyzer on Venus Express into solar minimum and maximum. The average escape of H+ decreased from 7.6.10(24) (solar minimum) to 2.1.10(24) s(-1) (solar maximum), while a smaller decrease was found for O+: 2.9.10(24) to 2.0.10(24) s(-1). As a result, the H+/O+ flux ratio decreases from 2.6 to 1.1. This implies that the escape of hydrogen and oxygen could have been below the stoichiometric ratio of water for Venus in its early ...
We study the solar wind induced oxygen ion escape from Venus' upper atmosphere and the Venus Expres...
The purpose of this dissertation is to expand our understanding of oxygen ion escape to space from V...
The similarities and differences of the escape mechanisms for H+ and D+ from Venus, H+ and D+ from M...
A fundamental question for the atmospheric evolution of Venus is how much water-related material esc...
International audienceA fundamental question for the atmospheric evolution of Venus is how much wate...
Venus, unlike Earth, is an extremely dry planet although both began with similar masses, distances f...
International audienceThe present atmosphere of Venus contains almost no water, but recent measureme...
The present atmosphere of Venus contains almost no water, but recent measurements indicate that in i...
As an Earth-like planet Venus probably had a primordial dipole field for several million years after...
Atmospheric escape from the upper atmosphere of Venus is mainly influenced by the loss of hydrogen a...
The present‐day Venusian atmosphere is dry, yet, in its earlier history a significant amount of wate...
International audienceWe investigate dependences of O+ escape rates from Venus both on the solar win...
Ionization of thermal and non-thermal oxygen atoms above the plasmapause on Venus supplies an escape...
International audienceA time dependent model of hydrogen hydrodynamic escape powered by solar EUV fl...
AbstractVenus is gradually losing some of its atmosphere in the form of ions through its induced mag...
We study the solar wind induced oxygen ion escape from Venus' upper atmosphere and the Venus Expres...
The purpose of this dissertation is to expand our understanding of oxygen ion escape to space from V...
The similarities and differences of the escape mechanisms for H+ and D+ from Venus, H+ and D+ from M...
A fundamental question for the atmospheric evolution of Venus is how much water-related material esc...
International audienceA fundamental question for the atmospheric evolution of Venus is how much wate...
Venus, unlike Earth, is an extremely dry planet although both began with similar masses, distances f...
International audienceThe present atmosphere of Venus contains almost no water, but recent measureme...
The present atmosphere of Venus contains almost no water, but recent measurements indicate that in i...
As an Earth-like planet Venus probably had a primordial dipole field for several million years after...
Atmospheric escape from the upper atmosphere of Venus is mainly influenced by the loss of hydrogen a...
The present‐day Venusian atmosphere is dry, yet, in its earlier history a significant amount of wate...
International audienceWe investigate dependences of O+ escape rates from Venus both on the solar win...
Ionization of thermal and non-thermal oxygen atoms above the plasmapause on Venus supplies an escape...
International audienceA time dependent model of hydrogen hydrodynamic escape powered by solar EUV fl...
AbstractVenus is gradually losing some of its atmosphere in the form of ions through its induced mag...
We study the solar wind induced oxygen ion escape from Venus' upper atmosphere and the Venus Expres...
The purpose of this dissertation is to expand our understanding of oxygen ion escape to space from V...
The similarities and differences of the escape mechanisms for H+ and D+ from Venus, H+ and D+ from M...