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@starsaremymuse
The Leonid Meteor Shower '(Tonight)' - November 16th, 1996.
"On November 16th, 1996, thousands of icy rocks would hurl toward Earth in a fascinating display called the Leonid meteor shower. There was little danger - few of them would reach the ground. Meteor showers result from debris left by passing comets. The Leonids in particular are small pieces of Comet Tempel-Tuttle. In the above series of time-lapse, 1-minute exposures, a 1995 Leonid is seen to leave a train of hot air that glowed persistently for several minutes."
The Fornax Cluster of Galaxies
Credits: Marco Lorenzi
JWST and the M1
JWST has taken a look at M1, for those of you from the UK, not the motorway from London up to (mostly) Edinburgh, but Messier 1 more popularly known as The Crab Nebula.
Also known as SN 1054, after the data the supernova was first witnessed, the aftermath wasn't found until 1731, and independently found by Charles Messier who gave it the M1 designation. It wasn't until the 1920's that a supernova was suspected and tied back to the 1054 observations.
Hubble also took this spectacular image (left) which puts the JWST image (right) into context of the new detail it is bringing.
Viewing it in compound between Hubble and the Chandra X ray observatory, you get a clearer sense of the object now at the centre.
At the centre is now a pulsar, and it's high energy emissions create x-rays as it hits all the material now scattered around it.
Italy at night from the International Space Station
Earth’s Lights
Chandra X-ray Image of NGC 1385
NGC 602
In the Small Magellanic Cloud, a dwarf galaxy around 200,000 light years away from us, a nebula has given birth to a cluster of large blue stars. The stars are around 5 million years old, and are so energetic, they have carved out the shape in the gas and dust, a shock wave from the radiation of the stars.
In the background are galaxies, 100+ million light years away.
source : https://apod.nasa.gov/apod/astropix.html
NGC 3199 lies about 12,000 light-years away, a glowing cosmic cloud in the nautical southern constellation of Carina. The nebula is about 75 light-years across in this narrowband, false-color view.
Image Credit: Mike Selby and Roberto Colombari
Hubble’s Neptune Anniversary Pictures by NASA Goddard Photo and Video
New Science from our Mission to Touch the Sun
In August 2018, our Parker Solar Probe mission launched to space, soon becoming the closest-ever spacecraft from the Sun. Now, scientists have announced their first discoveries from this exploration of our star!
The Sun may look calm to us here on Earth, but it’s an active star, unleashing powerful bursts of light, deluges of particles moving near the speed of light and billion-ton clouds of magnetized material. All of this activity can affect our technology here on Earth and in space.
Parker Solar Probe’s main science goals are to understand the physics that drive this activity — and its up-close look has given us a brand-new perspective. Here are a few highlights from what we’ve learned so far.
1. Surprising events in the solar wind
The Sun releases a continual outflow of magnetized material called the solar wind, which shapes space weather near Earth. Observed near Earth, the solar wind is a relatively uniform flow of plasma, with occasional turbulent tumbles. Closer to the solar wind’s source, Parker Solar Probe saw a much different picture: a complicated, active system.
One type of event in particular drew the eye of the science teams: flips in the direction of the magnetic field, which flows out from the Sun, embedded in the solar wind. These reversals — dubbed “switchbacks” — last anywhere from a few seconds to several minutes as they flow over Parker Solar Probe. During a switchback, the magnetic field whips back on itself until it is pointed almost directly back at the Sun.
The exact source of the switchbacks isn’t yet understood, but Parker Solar Probe’s measurements have allowed scientists to narrow down the possibilities — and observations from the mission’s 21 remaining solar flybys should help scientists better understand these events.
2. Seeing tiny particle events
The Sun can accelerate tiny electrons and ions into storms of energetic particles that rocket through the solar system at nearly the speed of light. These particles carry a lot of energy, so they can damage spacecraft electronics and even endanger astronauts, especially those in deep space, outside the protection of Earth’s magnetic field — and the short warning time for such particles makes them difficult to avoid.
Energetic particles from the Sun impact a detector on ESA & NASA’s SOHO satellite.
Parker Solar Probe’s energetic particle instruments have measured several never-before-seen events so small that all trace of them is lost before they reach Earth. These instruments have also measured a rare type of particle burst with a particularly high number of heavier elements — suggesting that both types of events may be more common than scientists previously thought.
3. Rotation of the solar wind
Near Earth, we see the solar wind flowing almost straight out from the Sun in all directions. But the Sun rotates as it releases the solar wind, and before it breaks free, the wind spins along in sync with the Sun’s surface. For the first time, Parker was able to observe the solar wind while it was still rotating – starting more than 20 million miles from the Sun.
The strength of the circulation was stronger than many scientists had predicted, but it also transitioned more quickly than predicted to an outward flow, which helps mask the effects of that fast rotation from the vantage point where we usually see them from, near Earth, about 93 million miles away. Understanding this transition point in the solar wind is key to helping us understand how the Sun sheds energy, with implications for the lifecycles of stars and the formation of protoplanetary disks.
4. Hints of a dust-free zone
Parker also saw the first direct evidence of dust starting to thin out near the Sun – an effect that has been theorized for nearly a century, but has been impossible to measure until now. Space is awash in dust, the cosmic crumbs of collisions that formed planets, asteroids, comets and other celestial bodies billions of years ago. Scientists have long suspected that, close to the Sun, this dust would be heated to high temperatures by powerful sunlight, turning it into a gas and creating a dust-free region around the Sun.
For the first time, Parker’s imagers saw the cosmic dust begin to thin out a little over 7 million miles from the Sun. This decrease in dust continues steadily to the current limits of Parker Solar Probe’s instruments, measurements at a little over 4 million miles from the Sun. At that rate of thinning, scientists expect to see a truly dust-free zone starting a little more than 2-3 million miles from the Sun — meaning the spacecraft could observe the dust-free zone as early as 2020, when its sixth flyby of the Sun will carry it closer to our star than ever before.
These are just a few of Parker Solar Probe’s first discoveries, and there’s plenty more science to come throughout the mission! For the latest on our Sun, follow @NASASun on Twitter and NASA Sun Science on Facebook.
TODAY IN HISTORY: Blurry but beautiful images of Earth, captured from the orbiting Gemini 7 space capsule on December 8, 1965.
It sure has been an adventure this year picking up a new hobby. Thanks for all the support everyone!
via reddit
Starburst Galaxy M94 from Hubble via NASA https://ift.tt/2r1lDrk
A close relationship
Some galaxies are closer friends than others.
While many live their own separate, solitary lives, others stray a little too close to a near neighbour and take their relationship to the next level.
The galaxy in this Picture of the Week, named NGC 6286, has done just that!
Together with NGC 6285, the duo is named Arp 293 and they are interacting, their mutual gravitational attraction pulling wisps of gas and streams of dust from them, distorting their shapes, and gently smudging and blurring their appearances on the sky — to Earth-based observers, at least.
The NASA/ESA Hubble Space Telescope has viewed a number of interacting pairs.
These can have distinctive, beautiful, and downright odd shapes, ranging from sheet music to a spaceship entering a sci-fi-esque wormhole, a bouquet of celestial blooms, and a penguin fiercely guarding its precious egg.
Arp 293 is located in the constellation of Draco (The Dragon), and lies over 250 million light-years from Earth.
ESA/Hubble & NASA, K. Larson et al.; CC BY 4.0