Javascript must be enabled to continue!
Jovian Planets
View through CrossRef
The four giant planets in the outer solar system, Jupiter, Saturn, Uranus, and Neptune, are a distinct group by themselves. The essential astronomical and atmospheric aspects of these planets are summarized in table 5.1. The significance of this group in the chemistry of the solar system is briefly pointed out in chapter 4. These planets are composed primarily of the lightest elements, hydrogen and helium, which were captured from the solar nebula during formation. The planets have rocky cores made of heavier elements. In the case of Jupiter and Saturn the mass of the gas greatly exceeds that of the core, whereas for Uranus and Neptune the masses of gas and core are comparable. Due to the enormous gravity of the giant planets, little mass has escaped from their atmospheres. Hence, the bulk composition of these planets provides a good measure of the initial composition of the solar nebula from which they were derived. Of all planetary bodies in the solar system, the constituents of giant planets are the closest to the cosmic abundances of the elements. The chemistry of the atmospheres of the giant planets is interesting for the following reasons:… 1. chemistry in a dominantly reducing atmosphere 2. interplay between photochemistry and equilibrium chemistry 3. ion chemistry in polar auroral regions 4. heterogeneous chemistry of aerosols 5. chemistry of meteoritic debris 6. lack of a planetary "surface"… We briefly comment on these reasons in this section. Each topic will receive a more detailed treatment in later sections. First of all, the atmospheres of the Jovian planets are more than 90% hydrogen and helium. Since helium is inert, the atmospheric chemistry is dominated by hydrogen. Therefore, we would expect the most stable compounds of carbon, oxygen, nitrogen, and phosphorus to be CH4, H2O, NHa, and PHs. This is in fact confirmed by the available observed composition of the bulk atmospheres of these planets. However, in the upper atmospheres of these planets, the composition is controlled by photochemistry.
Title: Jovian Planets
Description:
The four giant planets in the outer solar system, Jupiter, Saturn, Uranus, and Neptune, are a distinct group by themselves.
The essential astronomical and atmospheric aspects of these planets are summarized in table 5.
1.
The significance of this group in the chemistry of the solar system is briefly pointed out in chapter 4.
These planets are composed primarily of the lightest elements, hydrogen and helium, which were captured from the solar nebula during formation.
The planets have rocky cores made of heavier elements.
In the case of Jupiter and Saturn the mass of the gas greatly exceeds that of the core, whereas for Uranus and Neptune the masses of gas and core are comparable.
Due to the enormous gravity of the giant planets, little mass has escaped from their atmospheres.
Hence, the bulk composition of these planets provides a good measure of the initial composition of the solar nebula from which they were derived.
Of all planetary bodies in the solar system, the constituents of giant planets are the closest to the cosmic abundances of the elements.
The chemistry of the atmospheres of the giant planets is interesting for the following reasons:… 1.
chemistry in a dominantly reducing atmosphere 2.
interplay between photochemistry and equilibrium chemistry 3.
ion chemistry in polar auroral regions 4.
heterogeneous chemistry of aerosols 5.
chemistry of meteoritic debris 6.
lack of a planetary "surface"… We briefly comment on these reasons in this section.
Each topic will receive a more detailed treatment in later sections.
First of all, the atmospheres of the Jovian planets are more than 90% hydrogen and helium.
Since helium is inert, the atmospheric chemistry is dominated by hydrogen.
Therefore, we would expect the most stable compounds of carbon, oxygen, nitrogen, and phosphorus to be CH4, H2O, NHa, and PHs.
This is in fact confirmed by the available observed composition of the bulk atmospheres of these planets.
However, in the upper atmospheres of these planets, the composition is controlled by photochemistry.
Related Results
Interior dynamics of small-core and coreless exoplanets
Interior dynamics of small-core and coreless exoplanets
Since the first exoplanet detection in 1992, the study of exoplanets has received considerable attention. It is becoming apparent that the diversity of the general exoplanet popula...
The Jovian Narrative
The Jovian Narrative
Abstract
The Jovian Narrative is by far the longest of the three parts of the Julian Romance. It offers an exclusively Christian perspective on the reign of Jovian. ...
Dynamics of giant planets in protoplanetary discs
Dynamics of giant planets in protoplanetary discs
New instruments such as the ALMA interferometer and SPHERE on VLT allowed to obtain a large number of high-resolution images of protoplanetary discs. In these images, substructures...
The Particle Environment Package (PEP) for the JUICE mission: Ready to go!
The Particle Environment Package (PEP) for the JUICE mission: Ready to go!
<p><strong>1. PEP objectives</strong></p>
<p>The PEP suite explores the particle populations in the Jovian sys...
Multi-fluid hydrodynamical simulations of circumbinary planet formation via pebble accretion
Multi-fluid hydrodynamical simulations of circumbinary planet formation via pebble accretion
Context. Since the detection of the first known transiting circumbinary planet (CBP), Kepler-16b,by the Kepler mission, a total pf 14 CBPs have been detected, raising questions abo...
Potential long-term habitable conditions on planets with primordial H-He atmospheres.
Potential long-term habitable conditions on planets with primordial H-He atmospheres.
<p><strong>Introduction:</strong> Planets that retain a primordial, H-He dominated atmosphere can have hydrogen act as a greenhouse gas: t...
Primordial Planets with an Admixture of Dark Matter Particles and Baryonic Matter
Primordial Planets with an Admixture of Dark Matter Particles and Baryonic Matter
It has been suggested that primordial planets could have formed in the early Universe and the missing baryons in the Universe could be explained by primordial free-floating planets...
Particle Environment Package (PEP) for the Juice Mission: Current Status
Particle Environment Package (PEP) for the Juice Mission: Current Status
The Particle Environment Package (PEP) onboard ESA’s Jupiter Icy Moons Explorer (JUICE) provides particle measurements to address three overarching science questions:How does Jupit...

