O’Sirus System - Post 4 (Rings)

O’Sirus System - Post 4 (Rings)
O’Sirus System - Post 4 (Rings)
O’Sirus System - Post 4 (Rings)
O’Sirus System - Post 4 (Rings)
O’Sirus System - Post 4 (Rings)
O’Sirus System - Post 4 (Rings)

O’Sirus System - Post 4 (Rings)

Two planets in the O’Sirus System have rings, the 7th and 10th planets respectively.

The 7th planet is an ice-world with a thick icy crust floating on a sub-surface ocean. It is roughly 0.30 Earth-masses, has a radius 75% that of Earth and orbits 1.32 AU from the sun. The surface has a carbon dioxide atmosphere of approximately the same pressure as the atmosphere of Mars and surface temperatures of 133 K or -224 °F.

The 10th world is small ice giant 10.5 times more massive than Earth, has a radius 2.8 times larger than Earth and orbits at a distance of 6.02 AU. This world also has a pronounced ring system.

High Resolution Pics

Picture 1 - The 7th Planet

Picture 2 - Ring Closeup

Picture 3 - Another Closeup

Picture 4 - The 10th Planet

Picture 5 - Closeup

Picture 6- Ring Transit

More Posts from Sharkspaceengine and Others

6 years ago
Triangulum Log - Post 5 - Vista System (Planet 3)
Triangulum Log - Post 5 - Vista System (Planet 3)
Triangulum Log - Post 5 - Vista System (Planet 3)
Triangulum Log - Post 5 - Vista System (Planet 3)
Triangulum Log - Post 5 - Vista System (Planet 3)
Triangulum Log - Post 5 - Vista System (Planet 3)
Triangulum Log - Post 5 - Vista System (Planet 3)
Triangulum Log - Post 5 - Vista System (Planet 3)
Triangulum Log - Post 5 - Vista System (Planet 3)

Triangulum Log - Post 5 - Vista System (Planet 3)

Our journey of the Vista System now takes us to the third and largest planet in the system. This gas giant has 1.14 times the mass of Jupiter and a mean radius of 73,934 kilometers. It is much warmer than Jupiter at -41° F versus Jupiter’s -163° F, and as a result has extremely active weather patterns and a stormy atmosphere. Cloud decks are composed primarily of water-ice crystals.

The planet orbits 0.88 astronomical units from the sun, has an extensive ring system composed of silicate-rich materials, and a single large satellite. The planet’s satellite has a radius of 1,360.71 kilometers and a mass roughly 70% that of our moon. It has an average density of 4.82 g/cm³, indicating a large metal-rich core region.

Links to High Resolution Pics

Image 1 - A Giant and her rings.

Image 2 - Beautiful faint ring system.

Image 3 - Stormy Skies

Image 4 - Ring Shepard.

Image 5 - Andromeda Photobombs the rings. (High Exposure Shot)

Image 6 -Battered moon.

Image 7 - David and Goliath

Image 8 - High and Seek

Image 9 - Parting Ways


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6 years ago
The Core Of The Milky-way Relative To The Apparent Size Of The Moon From Earth

The Core of the Milky-way relative to the apparent size of the moon from Earth

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6 years ago
Epic Space By Tobias Roetsch.
Epic Space By Tobias Roetsch.
Epic Space By Tobias Roetsch.
Epic Space By Tobias Roetsch.
Epic Space By Tobias Roetsch.
Epic Space By Tobias Roetsch.
Epic Space By Tobias Roetsch.
Epic Space By Tobias Roetsch.
Epic Space By Tobias Roetsch.
Epic Space By Tobias Roetsch.

Epic space by Tobias Roetsch.


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6 years ago

Summary: The evolution of our universe according to the Big Bang theory

The Big Bang theory is the prevailing cosmological model for the universe from the earliest known periods through its subsequent large-scale evolution. The model describes how the universe expanded from a very high-density and high-temperature state, and offers a comprehensive explanation for a broad range of phenomena, including the abundance of light elements, the cosmic microwave background (CMB), large scale structure and Hubble’s law. If the known laws of physics are extrapolated to the highest density regime, the result is a singularity which is typically associated with the Big Bang. Physicists are undecided whether this means the universe began from a singularity, or that current knowledge is insufficient to describe the universe at that time. Detailed measurements of the expansion rate of the universe place the Big Bang at around 13.8 billion years ago, which is thus considered the age of the universe. After the initial expansion, the universe cooled sufficiently to allow the formation of subatomic particles, and later simple atoms. Giant clouds of these primordial elements later coalesced through gravity in halos of dark matter, eventually forming the stars and galaxies visible today.

1° Planck epoch <10−43 seconds

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0 seconds: Planck Epoch begins: earliest meaningful time. The Big Bang occurs in which ordinary space and time develop out of a primeval state (possibly a virtual particle or false vacuum) described by a quantum theory of gravity or “Theory of Everything”. All matter and energy of the entire visible universe is contained in an unimaginably hot, dense point (gravitational singularity), a billionth the size of a nuclear particle. This state has been described as a particle desert. Other than a few scant details, conjecture dominates discussion about the earliest moments of the universe’s history since no effective means of testing this far back in space-time is presently available. WIMPS (weakly interacting massive particles) or dark matter and dark energy may have appeared and been the catalyst for the expansion of the singularity. The infant universe cools as it begins expanding outward. It is almost completely smooth, with quantum variations beginning to cause slight variations in density.

2° Grand unification epoch 10−43 seconds

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Grand unification epoch begins: While still at an infinitesimal size, the universe cools down to 1032 kelvin. Gravity separates and begins operating on the universe—the remaining fundamental forces stabilize into the electronuclear force, also known as the Grand Unified Force or Grand Unified Theory (GUT), mediated by (the hypothetical) X and Y bosons which allow early matter at this stage to fluctuate between baryon and lepton states.

3° Electroweak epoch

10−36 seconds: Electroweak epoch begins: The Universe cools down to 1028 kelvin. As a result, the Strong Nuclear Force becomes distinct from the Electroweak Force perhaps fuelling the inflation of the universe. A wide array of exotic elementary particles result from decay of X and Y bosons which include W and Z bosons and Higgs bosons.

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10−33 seconds: Space is subjected to inflation, expanding by a factor of the order of 1026 over a time of the order of 10−33 to 10−32 seconds. The universe is supercooled from about 1027 down to 1022 kelvin.

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10−32 seconds: Cosmic inflation ends. The familiar elementary particles now form as a soup of hot ionized gas called quark-gluon plasma; hypothetical components of Cold dark matter (such as axions) would also have formed at this time.

4° Quarks epoch

10−12 seconds: Electroweak phase transition: the four fundamental interactions familiar from the modern universe now operate as distinct forces. The Weak nuclear force is now a short-range force as it separates from Electromagnetic force, so matter particles can acquire mass and interact with the Higgs Field. The temperature is still too high for quarks to coalesce into hadrons, and the quark-gluon plasma persists (Quark epoch). The universe cools to 1015 kelvin.

10−11 seconds: Baryogenesis may have taken place with matter gaining the upper hand over anti-matter as baryon to antibaryon constituencies are established.

5° Hadron epoch  10−6 seconds

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Hadron epoch begins: As the universe cools to about 1010 kelvin, a quark-hadron transition takes place in which quarks bind to form more complex particles—hadrons. This quark confinement includes the formation of protons and neutrons (nucleons), the building blocks of atomic nuclei.

6° Lepton Epoch 1 second

Lepton epoch begins: The universe cools to 109 kelvin. At this temperature, the hadrons and antihadrons annihilate each other, leaving behind leptons and antileptons – possible disappearance of antiquarks. Gravity governs the expansion of the universe: neutrinos decouple from matter creating a cosmic neutrino background.

7° Photon epoch (Matter era )

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10 seconds: Photon epoch begins: Most of the leptons and antileptons annihilate each other. As electrons and positrons annihilate, a small number of unmatched electrons are left over – disappearance of the positrons.

10 seconds: Universe dominated by photons of radiation – ordinary matter particles are coupled to light and radiation while dark matter particles start building non-linear structures as dark matter halos. Because charged electrons and protons hinder the emission of light, the universe becomes a super-hot glowing fog.

3 minutes: Primordial nucleosynthesis: nuclear fusion begins as lithium and heavy hydrogen (deuterium) and helium nuclei form from protons and neutrons.

20 minutes: Nuclear fusion ceases: normal matter consists of 75% hydrogen and 25% helium – free electrons begin scattering light.

70,000 years: Matter domination in Universe: onset of gravitational collapse as the Jeans length at which the smallest structure can form begins to fall.

8° Cosmic Dark Age 370,000 years

The “Dark Ages” is the period between decoupling, when the universe first becomes transparent, until the formation of the first stars. Recombination: 

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electrons combine with nuclei to form atoms, mostly hydrogen and helium. Distributions of hydrogen and helium at this time remains constant as the electron-baryon plasma thins. The temperature falls to 3000 kelvin.

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Ordinary matter particles decouple from radiation. The photons present at the time of decoupling are the same photons that we see in the cosmic microwave background (CMB) radiation.

10 million years: With a trace of heavy elements in the Universe, the chemistry that later sparked life begins operating.

100 million years: Gravitational collapse: ordinary matter particles fall into the structures created by dark matter. Reionization begins: smaller (stars) and larger non-linear structures (quasars) begin to take shape – their ultraviolet light ionizes remaining neutral gas.

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200–300 million years: First stars begin to shine: Because many are Population III stars (some Population II stars are accounted for at this time) they are much bigger and hotter and their life-cycle is fairly short. Unlike later generations of stars, these stars are metal free. As reionization intensifies, photons of light scatter off free protons and electrons – Universe becomes opaque again.

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600 million years: Renaissance of the Universe—end of the Dark Ages as visible light begins dominating throughout. Possible formation of the Milky Way Galaxy: although age of the Methusaleh star suggests a much older date of origin, it is highly likely that HD 140283 may have come into our galaxy via a later galaxy merger. Oldest confirmed star in Milky Way Galaxy, HE 1523-0901.

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700 million years: Galaxies form. Smaller galaxies begin merging to form larger ones. Galaxy classes may have also begun forming at this time including Blazars, Seyfert galaxies, radio galaxies, normal galaxies (elliptical, Spiral galaxies, barred spiral) and dwarf galaxies.

image

7.8 billion years: Acceleration: dark-energy dominated era begins, following the matter-dominated era in during which cosmic expansion was slowing down

Formation of the solar system

9.2 billion years: Primal supernova, possibly triggers the formation of the Solar System.

9.2318 billion years: Sun forms - Planetary nebula begins accretion of planets.

image

9.23283 billion years: Four Jovian planets (Jupiter, Saturn, Uranus, Neptune ) evolve around the sun.

9.257 billion years: Solar System of Eight planets, four terrestrial (Mercury (planet), Venus, Earth, Mars) evolve around the sun.

Source (see full list)

images: x, x, x, x, x, x, x, x, x, x, x, x, x


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6 years ago
Picture Of The Day - January 13, 2019

Picture of the Day - January 13, 2019

Aurora’s dance over the northern pole and a hazy world.


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6 years ago
Triangulum Log - Blue Veil System (Post 1) - Introduction
Triangulum Log - Blue Veil System (Post 1) - Introduction
Triangulum Log - Blue Veil System (Post 1) - Introduction
Triangulum Log - Blue Veil System (Post 1) - Introduction
Triangulum Log - Blue Veil System (Post 1) - Introduction

Triangulum Log - Blue Veil System (Post 1) - Introduction

I’ve gone deeper into the Triangulum Galaxy, traveling almost 20,000 light years around the perimeter of the galaxy and coming across this binary orange dwarf system that has 10 planets. The system is next to a blue/teal colored nebula, and lies within an outer arm of the Triangulum galaxy. You may notice there are more stars in the sky compared to the last 2 systems.

High Resolution Pics

Image 1 - Tranquility

Image 2 - Twin Suns

Image 3 - Lunar Sunrise

Image 4 - Calm Giant


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6 years ago
Rains On Different Worlds

Rains on Different Worlds


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6 years ago

New Blogs - Coming Soon

To all my followers. I am creating some new blogs to include different interests of mine besides just astronomy and space engine. The first blog will be about rabbits and sharks. I know it sounds like an odd mix, but it covers both my favorites from land and the sea and will include pics of my two buns. A few other possible blogs I might start include general interests, sci-fi stuff, and maybe just thought for the day type material.

The rabbits and sharks blog should be up and running soon.


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6 years ago
Picture Of The Day - December 30, 2018

Picture of the Day - December 30, 2018

Globular cluster. Almost 10,000 stars packed into a sphere just 100 light years across.


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sharkspaceengine - Whiteshark's Space Engine & Astronomy Blog
Whiteshark's Space Engine & Astronomy Blog

My Space Engine Adventures, also any space related topic or news. www.spaceengine.org to download space engine. The game is free by the way. Please feel free to ask me anything, provide suggestions on systems to visit or post any space related topic.Check out my other blog https://bunsandsharks.tumblr.com for rabbit and shark blog. 

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