Blue Abyss

Blue Abyss

Blue Abyss

Picture of the Day - October 24, 2018

Planet and it’s star viewed against the backdrop of a large nebula.

More Posts from Sharkspaceengine and Others

6 years ago
Pictures Of The Day - November 24, 2018
Pictures Of The Day - November 24, 2018
Pictures Of The Day - November 24, 2018
Pictures Of The Day - November 24, 2018

Pictures of the day - November 24, 2018

Venus-like world with two moons in orbit. I had to use the editor in Space Engine to get a true Venus-Like appearance for this world.

I am not a fan of how some of the planets appear in the game, luckily an editor is provided in order to make some of these worlds appear more realistic.

Space Engine System ID: RS 5581-42-1-2-487 2

High Resolution Pictures

Venus Analog

Two moons

Stormy planet

Closeup


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6 years ago

Hot Jupiter

Planets in our own solar system have a wide range of properties. They are distinguished by two basic properties, their size and their orbit. The size determines if the planet can have a life-sustaining atmosphere. The orbit affects the surface temperature and whether there could be liquid water on the planet’s surface.

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Hot Jupiters are a class of gas giant exoplanets that are inferred to be physically similar to Jupiter but that have very short orbital period (P<10 days). The close proximity to their stars and high surface-atmosphere temperatures resulted in the moniker “hot Jupiters”.

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Hot Jupiters are the easiest extrasolar planets to detect via the radial-velocity method, because the oscillations they induce in their parent stars’ motion are relatively large and rapid compared to those of other known types of planets.

Hot Jupiter

One of the best-known hot Jupiters is 51 Pegasi b. Discovered in 1995, it was the first extrasolar planet found orbiting a Sun-like star. 51 Pegasi b has an orbital period of about 4 days.

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There are two general schools of thought regarding the origin of hot Jupiters: formation at a distance followed by inward migration and in-situ formation at the distances at which they’re currently observed. The prevalent view is migration.

Hot Jupiter

Migration 

In the migration hypothesis, a hot Jupiter forms beyond the frost line, from rock, ice, and gases via the core accretion method of planetary formation. The planet then migrates inwards to the star where it eventually forms a stable orbit. The planet may have migrated inwar.

In situ

Instead of being gas giants that migrated inward, in an alternate hypothesis the cores of the hot Jupiters began as more common super-Earths which accreted their gas envelopes at their current locations, becoming gas giants in situ. The super-Earths providing the cores in this hypothesis could have formed either in situ or at greater distances and have undergone migration before acquiring their gas envelopes.

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source


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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

Cold Blue World

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Picture of the Day 2 - October 19, 2019

Large hazy blue world rising about an asteroid moon.


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6 years ago
Some Truly Unique Universes By Chromattix On DeviantArt! 😍
Some Truly Unique Universes By Chromattix On DeviantArt! 😍
Some Truly Unique Universes By Chromattix On DeviantArt! 😍
Some Truly Unique Universes By Chromattix On DeviantArt! 😍
Some Truly Unique Universes By Chromattix On DeviantArt! 😍
Some Truly Unique Universes By Chromattix On DeviantArt! 😍
Some Truly Unique Universes By Chromattix On DeviantArt! 😍

Some truly unique universes by Chromattix on DeviantArt! 😍


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6 years ago
Pictures Of The Day 2 - December 30, 2018
Pictures Of The Day 2 - December 30, 2018
Pictures Of The Day 2 - December 30, 2018
Pictures Of The Day 2 - December 30, 2018
Pictures Of The Day 2 - December 30, 2018

Pictures of the Day 2 - December 30, 2018

Here we come across an Earth-like world with violet hued skies. This planet supports marine life and orbits a star within a globular cluster. There are 137 star systems just within 5 light years of this planet, and the planet’s sky is lit up with their light. Most of the stars are close enough to be visible during the day. Additionally, this planet is located within a quandary star system consisting of an K type orange dwarf orbited three smaller red dwarfs in a wide complex orbit.

While Earth-Like, there are notable differences from Earth. First, the planet has almost no obliquity meaning it has no axial tilt and therefore does not experience seasons. Massive ice caps cover both poles. The planet also spins very slowly with a solar day lasting almost 3.86 Earth days. Only 4 small asteroid moons orbit the planet. Additionally, life is limited to the oceans, and the atmosphere is almost entirely made up of carbon dioxide.

Space Engine System ID: RSC 5581-4-4-2706-51 A4 to visit the system in Space Engine.

Planet Stats Below:

Radius: 5,268.61 km (0.83 x Earth) Mass: 0.59 Earth Masses Orbital Distance: 0.43 AU Length of Year: 118.88 Days Length of Solar Day: 3.86 Days Gravity: 0.86 g Average Temperature: 277 K (39° F) Atmospheric Pressure: 0.52 Atmospheres Atmospheric Composition: 92.7% Carbon Dioxide, 4.23% Nitrogen, 3.02% Oxygen, 0.05% Sulfur Dioxide.


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6 years ago

Solar System 10 Things: Looking Back at Pluto

In July 2015, we saw Pluto up close for the first time and—after three years of intense study—the surprises keep coming. “It’s clear,” says Jeffery Moore, New Horizons’ geology team lead, “Pluto is one of the most amazing and complex objects in our solar system.”

1. An Improving View

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These are combined observations of Pluto over the course of several decades. The first frame is a digital zoom-in on Pluto as it appeared upon its discovery by Clyde Tombaugh in 1930. More frames show of Pluto as seen by the Hubble Space Telescope. The final sequence zooms in to a close-up frame of Pluto taken by our New Horizons spacecraft on July 14, 2015.

2. The Heart

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Pluto’s surface sports a remarkable range of subtle colors are enhanced in this view to a rainbow of pale blues, yellows, oranges, and deep reds. Many landforms have their own distinct colors, telling a complex geological and climatological story that scientists have only just begun to decode. The image resolves details and colors on scales as small as 0.8 miles (1.3 kilometers). Zoom in on the full resolution image on a larger screen to fully appreciate the complexity of Pluto’s surface features.

3. The Smiles

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July 14, 2015: New Horizons team members Cristina Dalle Ore, Alissa Earle and Rick Binzel react to seeing the spacecraft’s last and sharpest image of Pluto before closest approach.

4. Majestic Mountains

Solar System 10 Things: Looking Back At Pluto

Just 15 minutes after its closest approach to Pluto, the New Horizons spacecraft captured this near-sunset view of the rugged, icy mountains and flat ice plains extending to Pluto’s horizon. The backlighting highlights more than a dozen layers of haze in Pluto’s tenuous atmosphere. The image was taken from a distance of 11,000 miles (18,000 kilometers) to Pluto; the scene is 780 miles (1,250 kilometers) wide.

5. Icy Dunes

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Found near the mountains that encircle Pluto’s Sputnik Planitia plain, newly discovered ridges appear to have formed out of particles of methane ice as small as grains of sand, arranged into dunes by wind from the nearby mountains.

6. Glacial Plains

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The vast nitrogen ice plains of Pluto’s Sputnik Planitia – the western half of Pluto’s “heart”—continue to give up secrets. Scientists processed images of Sputnik Planitia to bring out intricate, never-before-seen patterns in the surface textures of these glacial plains.

7. Colorful and Violent Charon

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High resolution images of Pluto’s largest moon, Charon, show a surprisingly complex and violent history. Scientists expected Charon to be a monotonous, crater-battered world; instead, they found a landscape covered with mountains, canyons, landslides, surface-color variations and more.

8. Ice Volcanoes

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One of two potential cryovolcanoes spotted on the surface of Pluto by the New Horizons spacecraft. This feature, known as Wright Mons, was informally named by the New Horizons team in honor of the Wright brothers. At about 90 miles (150 kilometers) across and 2.5 miles (4 kilometers) high, this feature is enormous. If it is in fact an ice volcano, as suspected, it would be the largest such feature discovered in the outer solar system.

9. Blue Rays

Solar System 10 Things: Looking Back At Pluto

Pluto’s receding crescent as seen by New Horizons at a distance of 120,000 miles (200,000 kilometers). Scientists believe the spectacular blue haze is a photochemical smog resulting from the action of sunlight on methane and other molecules in Pluto’s atmosphere. These hydrocarbons accumulate into small haze particles, which scatter blue sunlight—the same process that can make haze appear bluish on Earth.

10. Encore

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On Jan. 1, 2019, New Horizons will fly past a small Kuiper Belt Object named MU69 (nicknamed Ultima Thule)—a billion miles (1.5 billion kilometers) beyond Pluto and more than four billion miles (6.5 billion kilometers) from Earth. It will be the most distant encounter of an object in history—so far—and the second time New Horizons has revealed never-before-seen landscapes.

Make sure to follow us on Tumblr for your regular dose of space: http://nasa.tumblr.com.

6 years ago
Picture Of The Day - December 10, 2018

Picture of the day - December 10, 2018

The cracked surface of Insight B-VI’s fourth moon.

New pics of the Insight A system coming soon.


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6 years ago

Solar System 10 Things: Spitzer Space Telescope

Solar System 10 Things: Spitzer Space Telescope

Our Spitzer Space Telescope is celebrating 15 years since its launch on August 25, 2003. This remarkable spacecraft has made discoveries its designers never even imagined, including some of the seven Earth-size planets of TRAPPIST-1. Here are some key facts about Spitzer:

1. Spitzer is one of our Great Observatories.

Solar System 10 Things: Spitzer Space Telescope

Our Great Observatory Program aimed to explore the universe with four large space telescopes, each specialized in viewing the universe in different wavelengths of light. The other Great Observatories are our Hubble Space Telescope, Chandra X-Ray Observatory, and Compton Gamma-Ray Observatory. By combining data from different kinds of telescopes, scientists can paint a fuller picture of our universe.

2. Spitzer operates in infrared light.

Solar System 10 Things: Spitzer Space Telescope

Infrared wavelengths of light, which primarily come from heat radiation, are too long to be seen with human eyes, but are important for exploring space — especially when it comes to getting information about something extremely far away. From turbulent clouds where stars are born to small asteroids close to Earth’s orbit, a wide range of phenomena can be studied in infrared light. Objects too faint or distant for optical telescopes to detect, hidden by dense clouds of space dust, can often be seen with Spitzer. In this way, Spitzer acts as an extension of human vision to explore the universe, near and far.

What’s more, Spitzer doesn’t have to contend with Earth’s atmosphere, daily temperature variations or day-night cycles, unlike ground-based telescopes. With a mirror less than 1 meter in diameter, Spitzer in space is more sensitive than even a 10-meter-diameter telescope on Earth.

3. Spitzer was the first spacecraft to fly in an Earth-trailing orbit.

Solar System 10 Things: Spitzer Space Telescope

Rather than circling Earth, as Hubble does, Spitzer orbits the Sun on almost the same path as Earth. But Spitzer moves slower than Earth, so the spacecraft drifts farther away from our planet each year.

This “Earth-trailing orbit” has many advantages. Being farther from Earth than a satellite, it receives less heat from our planet and enjoys a naturally cooler environment. Spitzer also benefits from a wider view of the sky by orbiting the Sun. While its field of view changes throughout the year, at any given time it can see about one-third of the sky. Our Kepler space telescope, famous for finding thousands of exoplanets – planets outside our solar system – also settled in an Earth-trailing orbit six years after Spitzer.

4. Spitzer began in a “cold mission.”

Solar System 10 Things: Spitzer Space Telescope

Spitzer has far outlived its initial requirement of 2.5 years. The Spitzer team calls the first 5.5 years “the cold mission” because the spacecraft’s instruments were deliberately cooled down during that time. Liquid helium coolant kept Spitzer’s instruments just a few degrees above absolute zero (which is minus 459 degrees Fahrenheit, or minus 273 degrees Celsius) in this first part of the mission.

5. The “warm mission” was still pretty cold.

Solar System 10 Things: Spitzer Space Telescope

Spitzer entered what was called the “warm mission” when the 360 liters of liquid helium coolant that was chilling its instruments ran out in May 2009.

At the “warm” temperature of minus 405 Fahrenheit, two of Spitzer’s instruments – the Infrared Spectrograph (IRS) and Multiband Imaging Photometer (MIPS) – stopped working. But two of the four detector arrays in the Infrared Array Camera (IRAC) persisted. These “channels” of the camera have driven Spitzer’s explorations since then.

6. Spitzer wasn’t designed to study exoplanets, but made huge strides in this area.

Solar System 10 Things: Spitzer Space Telescope

Exoplanet science was in its infancy in 2003 when Spitzer launched, so the mission’s first scientists and engineers had no idea it could observe planets beyond our solar system. But the telescope’s accurate star-targeting system and the ability to control unwanted changes in temperature have made it a useful tool for studying exoplanets. During the Spitzer mission, engineers have learned how to control the spacecraft’s pointing more precisely to find and characterize exoplanets, too.

Using what’s called the “transit method,” Spitzer can stare at a star and detect periodic dips in brightness that happen when a planet crosses a star’s face. In one of its most remarkable achievements, Spitzer discovered three of the TRAPPIST-1 planets and confirmed that the system has seven Earth-sized planets orbiting an ultra-cool dwarf star. Spitzer data also helped scientists determine that all seven planets are rocky, and made these the best-understood exoplanets to date.

Spitzer can also use a technique called microlensing to find planets closer to the center of our galaxy. When a star passes in front of another star, the gravity of the first star can act as a lens, making the light from the more distant star appear brighter. Scientists are using microlensing to look for a blip in that brightening, which could mean that the foreground star has a planet orbiting it. Microlensing could not have been done early in the mission when Spitzer was closer to Earth, but now that the spacecraft is farther away, it has a better chance of measuring these events.

7. Spitzer is a window into the distant past.

Solar System 10 Things: Spitzer Space Telescope

The spacecraft has observed and helped discover some of the most distant objects in the universe, helping scientists understand where we came from. Originally, Spitzer’s camera designers had hoped the spacecraft would detect galaxies about 12 billion light-years away. In fact, Spitzer has surpassed that, and can see even farther back in time – almost to the beginning of the universe. In collaboration with Hubble, Spitzer helped characterize the galaxy GN-z11 about 13.4 billion light-years away, whose light has been traveling since 400 million years after the big bang. It is the farthest galaxy known.

8. Spitzer discovered Saturn’s largest ring.

Solar System 10 Things: Spitzer Space Telescope

Everyone knows Saturn has distinctive rings, but did you know its largest ring was only discovered in 2009, thanks to Spitzer? Because this outer ring doesn’t reflect much visible light, Earth-based telescopes would have a hard time seeing it. But Spitzer saw the infrared glow from the cool dust in the ring. It begins 3.7 million miles (6 million kilometers) from Saturn and extends about 7.4 million miles (12 million kilometers) beyond that.

9. The “Beyond Phase” pushes Spitzer to new limits.

Solar System 10 Things: Spitzer Space Telescope

In 2016, Spitzer entered its “Beyond phase,” with a name reflecting how the spacecraft operates beyond its original scope.

As Spitzer floats away from Earth, its increasing distance presents communication challenges. Engineers must point Spitzer’s antenna at higher angles toward the Sun in order to talk to our planet, which exposes the spacecraft to more heat. At the same time, the spacecraft’s solar panels receive less sunlight because they point away from the Sun, putting more stress on the battery.

The team decided to override some autonomous safety systems so Spitzer could continue to operate in this riskier mode. But so far, the Beyond phase is going smoothly.

10. Spitzer paves the way for future infrared telescopes.

Solar System 10 Things: Spitzer Space Telescope

Spitzer has identified areas of further study for our upcoming James Webb Space Telescope, planned to launch in 2021. Webb will also explore the universe in infrared light, picking up where Spitzer eventually will leave off. With its enhanced ability to probe planetary atmospheres, Webb may reveal striking new details about exoplanets that Spitzer found. Distant galaxies unveiled by Spitzer together with other telescopes will also be observed in further detail by Webb. The space telescope we are planning after that, WFIRST, will also investigate long-standing mysteries by looking at infrared light. Scientists planning studies with future infrared telescopes will naturally build upon the pioneering legacy of Spitzer.

Read the web version of this week’s “Solar System: 10 Things to Know” article HERE. 

Make sure to follow us on Tumblr for your regular dose of space: http://nasa.tumblr.com. 


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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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