Cosmicinsightz - Within The Cosmos

cosmicinsightz - within the cosmos

More Posts from Cosmicinsightz and Others

6 years ago
The Red Spider Planetary Nebula : Oh What A Tangled Web A Planetary Nebula Can Weave. The Red Spider

The Red Spider Planetary Nebula : Oh what a tangled web a planetary nebula can weave. The Red Spider Planetary Nebula shows the complex structure that can result when a normal star ejects its outer gases and becomes a white dwarf star. Officially tagged NGC 6537, this two-lobed symmetric planetary nebula houses one of the hottest white dwarfs ever observed, probably as part of a binary star system. Internal winds emanating from the central stars, visible in the center, have been measured in excess of 1000 kilometers per second. These winds expand the nebula, flow along the nebulas walls, and cause waves of hot gas and dust to collide. Atoms caught in these colliding shocks radiate light shown in the above representative-color picture by the Hubble Space Telescope. The Red Spider Nebula lies toward the constellation of the Archer . Its distance is not well known but has been estimated by some to be about 4,000 light-years. via NASA

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6 years ago

Flight Across The Universe 

6 years ago
Planetary Nebula M2-9 // Butterfly Nebula

Planetary Nebula M2-9 // Butterfly Nebula

6 years ago
NGC 6334, Cat’s Paw

NGC 6334, Cat’s Paw

6 years ago
I Couldn’t Help Myself On Such A Clear Night. I Revisited The Lagoon Nebula, Trifid Nebula, And M22
I Couldn’t Help Myself On Such A Clear Night. I Revisited The Lagoon Nebula, Trifid Nebula, And M22
I Couldn’t Help Myself On Such A Clear Night. I Revisited The Lagoon Nebula, Trifid Nebula, And M22
I Couldn’t Help Myself On Such A Clear Night. I Revisited The Lagoon Nebula, Trifid Nebula, And M22

I couldn’t help myself on such a clear night. I revisited the Lagoon Nebula, Trifid Nebula, and M22 cluster, but I checked out the Saturn Nebula, which is smaller than I expected.

6 years ago
Milky Way - Spiral Galaxy

Milky Way - Spiral Galaxy

6 years ago
Orionids Meteors Over Wulan Hada Volcano

Orionids Meteors Over Wulan Hada Volcano

6 years ago
CHANDRA REVEALS THE ELEMENTARY NATURE OF CASSIOPEIA A
CHANDRA REVEALS THE ELEMENTARY NATURE OF CASSIOPEIA A
CHANDRA REVEALS THE ELEMENTARY NATURE OF CASSIOPEIA A
CHANDRA REVEALS THE ELEMENTARY NATURE OF CASSIOPEIA A

CHANDRA REVEALS THE ELEMENTARY NATURE OF CASSIOPEIA A

Where do most of the elements essential for life on Earth come from? The answer: inside the furnaces of stars and the explosions that mark the end of some stars’ lives.

Astronomers have long studied exploded stars and their remains – known as “supernova remnants” – to better understand exactly how stars produce and then disseminate many of the elements observed on Earth, and in the cosmos at large.

Due to its unique evolutionary status, Cassiopeia A (Cas A) is one of the most intensely studied of these supernova remnants. A new image from NASA’s Chandra X-ray Observatory shows the location of different elements in the remains of the explosion: silicon (red), sulfur (yellow), calcium (green) and iron (purple). Each of these elements produces X-rays within narrow energy ranges, allowing maps of their location to be created. The blast wave from the explosion is seen as the blue outer ring.

X-ray telescopes such as Chandra are important to study supernova remnants and the elements they produce because these events generate extremely high temperatures – millions of degrees – even thousands of years after the explosion. This means that many supernova remnants, including Cas A, glow most strongly at X-ray wavelengths that are undetectable with other types of telescopes.

Chandra’s sharp X-ray vision allows astronomers to gather detailed information about the elements that objects like Cas A produce. For example, they are not only able to identify many of the elements that are present, but how much of each are being expelled into interstellar space.

The Chandra data indicate that the supernova that produced Cas A has churned out prodigious amounts of key cosmic ingredients. Cas A has dispersed about 10,000 Earth masses worth of sulfur alone, and about 20,000 Earth masses of silicon. The iron in Cas A has the mass of about 70,000 times that of the Earth, and astronomers detect a whopping one million Earth masses worth of oxygen being ejected into space from Cas A, equivalent to about three times the mass of the Sun. (Even though oxygen is the most abundant element in Cas A, its X-ray emission is spread across a wide range of energies and cannot be isolated in this image, unlike with the other elements that are shown.)

Astronomers have found other elements in Cas A in addition to the ones shown in this new Chandra image. Carbon, nitrogen, phosphorus and hydrogen have also been detected using various telescopes that observe different parts of the electromagnetic spectrum. Combined with the detection of oxygen, this means all of the elements needed to make DNA, the molecule that carries genetic information, are found in Cas A.

Oxygen is the most abundant element in the human body (about 65% by mass), calcium helps form and maintain healthy bones and teeth, and iron is a vital part of red blood cells that carry oxygen through the body. All of the oxygen in the solar system comes from exploding massive stars. About half of the calcium and about 40% of the iron also come from these explosions, with the balance of these elements being supplied by explosions of smaller mass, white dwarf stars.

While the exact date is not confirmed, many experts think that the stellar explosion that created Cas A occurred around the year 1680 in Earth’s timeframe. Astronomers estimate that the doomed star was about five times the mass of the Sun just before it exploded. The star is estimated to have started its life with a mass about 16 times that of the Sun, and lost roughly two-thirds of this mass in a vigorous wind blowing off the star several hundred thousand years before the explosion.

Earlier in its lifetime, the star began fusing hydrogen and helium in its core into heavier elements through the process known as “nucleosynthesis.” The energy made by the fusion of heavier and heavier elements balanced the star against the force of gravity. These reactions continued until they formed iron in the core of the star. At this point, further nucleosynthesis would consume rather than produce energy, so gravity then caused the star to implode and form a dense stellar core known as a neutron star.

The exact means by which a massive explosion is produced after the implosion is complicated, and a subject of intense study, but eventually the infalling material outside the neutron star was transformed by further nuclear reactions as it was expelled outward by the supernova explosion.

Chandra has repeatedly observed Cas A since the telescope was launched into space in 1999. The different datasets have revealed new information about the neutron star in Cas A, the details of the explosion, and specifics of how the debris is ejected into space.

TOP IMAGE….Chandra Reveals the Elementary Nature of Cassiopeia A CENTRE IMAGE….Location of elements in Cassiopeia A. Credit: NASA/CXC/SAO LOWER IMAGE….Periodic Table of Elements. Credit: NASA/CXC/K. Divona BOTTOM IMAGE….Pre-Supernova Star: As it nears the end of its evolution, heavy elements produced by nuclear fusion inside the star are

6 years ago
Arp 240, Galaxy Bridge 

Arp 240, Galaxy Bridge 

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cosmicinsightz - within the cosmos
within the cosmos

a collection of all cosmic ephemeralities and phenomenons. a blog dedicated to exploring the vastness of the universe

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