Thursday, August 10, 2017

"Starburst" Galaxy IC 10 | NASA Chandra


Aug. 10, 2017: In 1887, American astronomer Lewis Swift discovered a glowing cloud, or nebula, that turned out to be a small galaxy about 2.2 billion light years from Earth. Today, it is known as the “starburst” galaxy IC 10, referring to the intense star formation activity occurring there.

More than a hundred years after Swift’s discovery, astronomers are studying IC 10 with the most powerful telescopes of the 21st century. New observations with NASA’s Chandra X-ray Observatory reveal many pairs of stars that may one day become sources of perhaps the most exciting cosmic phenomenon observed in recent years: gravitational waves.

By analyzing Chandra observations of IC 10 spanning a decade, astronomers found over a dozen black holes and neutron stars feeding off gas from young, massive stellar companions. Such double star systems are known as “X-ray binaries” because they emit large amounts of X-ray light. As a massive star orbits around its compact companion, either a black hole or neutron star, material can be pulled away from the giant star to form a disk of material around the compact object. Frictional forces heat the infalling material to millions of degrees, producing a bright X-ray source.

When the massive companion star runs out fuel, it will undergo a catastrophic collapse that will produce a supernova explosion, and leave behind a black hole or neutron star. The end result is two compact objects: either a pair of black holes, a pair of neutron stars, or a black hole and neutron star. If the separation between the compact objects becomes small enough as time passes, they will produce gravitational waves. Over time, the size of their orbit will shrink until they merge. LIGO has found three examples of black hole pairs merging in this way in the past two years.

Starburst galaxies like IC 10 are excellent places to search for X-ray binaries because they are churning out stars rapidly. Many of these newly born stars will be pairs of young and massive stars. The most massive of the pair will evolve more quickly and leave behind a black hole or a neutron star partnered with the remaining massive star. If the separation of the stars is small enough, an X-ray binary system will be produced.

This new composite image of IC 10 combines X-ray data from Chandra (blue) with an optical image (red, green, blue) taken by amateur astronomer Bill Snyder from the Heavens Mirror Observatory in Sierra Nevada, California. The X-ray sources detected by Chandra appear as a darker blue than the stars detected in optical light.

The young stars in IC 10 appear to be just the right age to give a maximum amount of interaction between the massive stars and their compact companions, producing the most X-ray sources. If the systems were younger, then the massive stars would not have had time to go supernova and produce a neutron star or black hole, or the orbit of the massive star and the compact object would not have had time to shrink enough for mass transfer to begin. If the star system were much older, then both compact objects would probably have already formed. In this case transfer of matter between the compact objects is unlikely, preventing the formation of an X-ray emitting disk.

Chandra detected 110 X-ray sources in IC 10. Of these, over forty are also seen in optical light and 16 of these contain “blue supergiants”, which are the type of young, massive, hot stars described earlier. Most of the other sources are X-ray binaries containing less massive stars. Several of the objects show strong variability in their X-ray output, indicative of violent interactions between the compact stars and their companions.

A pair of papers describing these results were published in the February 10th, 2017 issue of The Astrophysical Journal. The papers are available online here:
https://arxiv.org/abs/1611.08611
https://arxiv.org/abs/1701.03803

The authors of the study are Silas Laycock from the UMass Lowell’s Center for Space Science and Technology (UML); Rigel Capallo, a graduate student at UML; Dimitris Christodoulou from UML; Benjamin Williams from the University of Washington in Seattle; Breanna Binder from the California State Polytechnic University in Pomona; and, Andrea Prestwich from the Harvard-Smithsonian Center for Astrophysics in Cambridge, Mass.

NASA's Marshall Space Flight Center in Huntsville, Alabama, manages the Chandra program for NASA's Science Mission Directorate in Washington. The Smithsonian Astrophysical Observatory in Cambridge, Massachusetts, controls Chandra's science and flight operations.

Credit: X-ray: NASA/CXC/UMass Lowell/S. Laycock et al.; Optical: Bill Snyder 

Release Date: August 10, 2017
#NASA #Astronomy #Science #Space #Galaxy #IC10 #Starburst #Cassiopeia #Cosmos #Universe #Gravitational #Waves #Chandra #Xray #Observatory #MSFC #Marshall #STEM #Education

Tuesday, August 08, 2017

Saturday, August 05, 2017

Jupiter Storm of the High North | NASA Juno Mission


Aug. 3, 2017: A dynamic storm at the southern edge of Jupiter’s northern polar region dominates this Jovian cloudscape, courtesy of NASA’s Juno spacecraft.

This storm is a long-lived anticyclonic oval named North North Temperate Little Red Spot 1 (NN-LRS-1); it has been tracked at least since 1993, and may be older still. An anticyclone is a weather phenomenon where winds around the storm flow in the direction opposite to that of the flow around a region of low pressure. It is the third largest anticyclonic oval on the planet, typically around 3,700 miles (6,000 kilometers) long. The color varies between red and off-white (as it is now), but this JunoCam image shows that it still has a pale reddish core within the radius of maximum wind speeds.

Citizen scientists Gerald Eichstädt and Seán Doran processed this image using data from the JunoCam imager. The image has been rotated so that the top of the image is actually the equatorial regions while the bottom of the image is of the northern polar regions of the planet.

The image was taken on July 10, 2017 at 6:42 p.m. PDT (9:42 p.m. EDT), as the Juno spacecraft performed its seventh close flyby of Jupiter. At the time the image was taken, the spacecraft was about 7,111 miles (11,444 kilometers) from the tops of the clouds of the planet at a latitude of 44.5 degrees.

JPL manages the Juno mission for the principal investigator, Scott Bolton, of Southwest Research Institute in San Antonio. The Juno mission is part of the New Frontiers Program managed by NASA's Marshall Space Flight Center in Huntsville, Alabama, for the Science Mission Directorate. Lockheed Martin Space Systems, Denver, built the spacecraft. JPL is a division of Caltech in Pasadena.

More information about Juno is online at http://www.nasa.gov/juno and http://missionjuno.swri.edu.

JunoCam's raw images are available for the public to peruse and process into image products at: www.missionjuno.swri.edu/junocam

Credit: NASA/JPL-Caltech/SwRI/MSSS/Gerald Eichstädt/Seán Doran
Release Date: August 3, 2017


#NASA #Astronomy #Space #Science #Jupiter #Planet #Atmosphere #LittleRedSpot #LRS #NNLRS1 #Juno #Spacecraft #SwRI #JPL #Pasadena #California #UnitedStates #STEM #Education #CitizenScience

NASA's Solar Dynamics Observatory Watches a Sunspot


Closeup of sunspot showing coils arcing over active region 

Aug. 4, 2017: On July 5, 2017, NASA’s Solar Dynamics Observatory watched an active region—an area of intense and complex magnetic fields—rotate into view on the Sun. The satellite continued to track the region as it grew and eventually rotated across the Sun and out of view on July 17.

With their complex magnetic fields, sunspots are often the source of interesting solar activity. During its 13-day trip across the face of the Sun, the active region—dubbed AR12665—put on a show for NASA’s Sun-watching satellites, producing several solar flares, a coronal mass ejection and a solar energetic particle event. Watch the video below to learn how NASA’s satellites tracked the sunspot over the course of these two weeks.

This image shows a blended view of the sunspot in visible and extreme ultraviolet light, revealing bright coils arcing over the active region—particles spiraling along magnetic field lines.

Credit: NASA’s Goddard Space Flight Center/SDO
Image Date: July 5, 2017
Release Date: August 4, 2017


#NASA #Astronomy #Science #Space #SpaceWeather #Sun #Solar #Sunspot #ActiveRegion #AR12665 #Plasma #MagneticField #Astrophysics #Spacecraft #SDO #Goddard #GSFC #Greenbelt #Maryland #UnitedStates #STEM #Education

Thursday, August 03, 2017

Super Typhoon Noru | International Space Station

Image: Super typhoon photographed from low Earth orbit with Soyuz spacecraft in left of frame | Aug. 2, 2017: NASA astronaut Randy Bresnik photographed Super Typhoon Noru in the Northwestern Pacific Ocean on August 1, 2017, as the International Space Station passed overhead. He shared images of the massive storm on social media, writing, "Super Typhoon #Noru, amazing the size of this weather phenomenon, you can almost sense its power from 250 miles above."

As of 11 a.m. EDT on August 1, the storm was centered near 24.7 degrees north latitude and 137.0 degrees east longitude, with maximum sustained winds near 90 knots. By August 2 at 5 a.m. EDT, the maximum sustained winds were near 100 knots. NASA satellites are keeping track of the typhoon as it continues its slow trek through the Pacific toward southwestern Japan.

Credit: NASA
Release Date: August 2, 2017


#NASA #ISS #Earth #Science #Weather #Typhoon #SuperTyphoon #Storm #PacificOcean #Japan #日本 #Soyuz #SoyuzMS05 #Astronaut #RandyBresnik #Russia #Россия #Human #Spaceflight #Expedition52 #UnitedStates #JSC #STEM #Education

Wednesday, August 02, 2017

Cutting-edge Adaptive Optics Facility Sees First Light | ESO

Image: The planetary nebula IC 4406 seen with MUSE and the AOF
Spectacular improvement in the sharpness of MUSE images
August 2, 2017: The Unit Telescope 4 (Yepun) of ESO’s Very Large Telescope (VLT) has now been transformed into a fully adaptive telescope. After more than a decade of planning, construction and testing, the new Adaptive Optics Facility (AOF) has seen first light with the instrument MUSE, capturing amazingly sharp views of planetary nebulae and galaxies. The coupling of the AOF and MUSE forms one of the most advanced and powerful technological systems ever built for ground-based astronomy.

The Adaptive Optics Facility (AOF) is a long-term project on ESO’s Very Large Telescope (VLT) to provide an adaptive optics system for the instruments on Unit Telescope 4 (UT4), the first of which is MUSE (the Multi Unit Spectroscopic Explorer) [1]. Adaptive optics works to compensate for the blurring effect of the Earth’s atmosphere, enabling MUSE to obtain much sharper images and resulting in twice the contrast previously achievable. MUSE can now study even fainter objects in the Universe.

“Now, even when the weather conditions are not perfect, astronomers can still get superb image quality thanks to the AOF,” explains Harald Kuntschner, AOF Project Scientist at ESO.

Following a battery of tests on the new system, the team of astronomers and engineers were rewarded with a series of spectacular images. Astronomers were able to observe the planetary nebulae IC 4406, located in the constellation Lupus (The Wolf), and NGC 6369, located in the constellation Ophiuchus (The Serpent Bearer). The MUSE observations using the AOF showed dramatic improvements in the sharpness of the images, revealing never before seen shell structures in IC 4406 [2].

The AOF, which made these observations possible, is composed of many parts working together. They include the Four Laser Guide Star Facility (4LGSF) and the very thin deformable secondary mirror of UT4 [3] [4]. The 4LGSF shines four 22-watt laser beams into the sky to make sodium atoms in the upper atmosphere glow, producing spots of light on the sky that mimic stars. Sensors in the adaptive optics module GALACSI (Ground Atmospheric Layer Adaptive Corrector for Spectroscopic Imaging) use these artificial guide stars to determine the atmospheric conditions.

One thousand times per second, the AOF system calculates the correction that must be applied to change the shape of the telescope’s deformable secondary mirror to compensate for atmospheric disturbances. In particular, GALACSI corrects for the turbulence in the layer of atmosphere up to one kilometer above the telescope. Depending on the conditions, atmospheric turbulence can vary with altitude, but studies have shown that the majority of atmospheric disturbance occurs in this “ground layer” of the atmosphere.

“The AOF system is essentially equivalent to raising the VLT about 900 meters higher in the air, above the most turbulent layer of atmosphere,” explains Robin Arsenault, AOF Project Manager. “In the past, if we wanted sharper images, we would have had to find a better site or use a space telescope—but now with the AOF, we can create much better conditions right where we are, for a fraction of the cost!”

The corrections applied by the AOF rapidly and continuously improve the image quality by concentrating the light to form sharper images, allowing MUSE to resolve finer details and detect fainter stars than previously possible. GALACSI currently provides a correction over a wide field of view, but this is only the first step in bringing adaptive optics to MUSE. A second mode of GALACSI is in preparation and is expected to see first light early 2018. This narrow-field mode will correct for turbulence at any altitude, allowing observations of smaller fields of view to be made with even higher resolution.

“Sixteen years ago, when we proposed building the revolutionary MUSE instrument, our vision was to couple it with another very advanced system, the AOF,” says Roland Bacon, project lead for MUSE. “The discovery potential of MUSE, already large, is now enhanced still further. Our dream is becoming true.”

One of the main science goals of the system is to observe faint objects in the distant Universe with the best possible image quality, which will require exposures of many hours. Joël Vernet, ESO MUSE and GALACSI Project Scientist, comments: “In particular, we are interested in observing the smallest, faintest galaxies at the largest distances. These are galaxies in the making—still in their infancy—and are key to understanding how galaxies form.”

Furthermore, MUSE is not the only instrument that will benefit from the AOF. In the near future, another adaptive optics system called GRAAL will come online with the existing infrared instrument HAWK-I, sharpening its view of the Universe. That will be followed later by the powerful new instrument ERIS.

“ESO is driving the development of these adaptive optics systems, and the AOF is also a pathfinder for ESO’s Extremely Large Telescope,” adds Arsenault. “Working on the AOF has equipped us—scientists, engineers and industry alike—with invaluable experience and expertise that we will now use to overcome the challenges of building the ELT.”

Notes
[1] MUSE is an integral-field spectrograph, a powerful instrument that produces a 3D data set of a target object, where each pixel of the image corresponds to a spectrum of the light from the object. This essentially means that the instrument creates thousands of images of the object at the same time, each at a different wavelength of light, capturing a wealth of information.

[2] IC 4406 has previously been observed with the VLT (eso9827a).

[3] At just over one meter in diameter, this is the largest adaptive optics mirror ever produced and demanded cutting-edge technology. It was mounted on UT4 in 2016 (ann16078) to replace the telescope’s original conventional secondary mirror.

[4] Other tools to optimize the operation of the AOF have been developed and are now operational. These include an extension of the Astronomical Site Monitor software that monitors the atmosphere to determine the altitude at which the turbulence is occurring, and the Laser Traffic Control System (LTCS) that prevents other telescopes looking into the laser beams or at the artificial stars themselves and potentially affecting their observations.

Credit: European Southern Observatory (ESO)
Release Date: August 2, 2017


#ESO #Astronomy #Science #Space #Cosmos #Universe #Stars #Nebulae #IC4406 #VLT #Telescope #AdaptiveOptics #AOF #MUSE #Chile #Atacama
#SouthAmerica #Europe #STEM #Education

Tuesday, August 01, 2017

Lingering Sea Ice on Hudson Bay | NASA Aqua Satellite


Roughly 20,000 years ago, during the peak of the last Ice Age, the area that is now Hudson Bay sat beneath a layer of ice thousands of feet thick. As the climate warmed, the Laurentide Ice Sheet thinned and glacial lakes in Canada’s interior merged with the Arctic Ocean to form the large inland bay. It is now a haven for polar bears, whales, orcas, walruses, seals, and other wildlife.
Shallow and surrounded by land, Hudson Bay freezes over completely in the winter but thaws for periods in the summer. Usually all of the sea ice is gone by August, and the bay begins to freeze over in October or November. In between, as the sea ice is breaking up, winds and currents cause flotillas of pack ice to cluster in certain parts of the bay.

That is what was happening on June 29, 2017, when the Moderate Resolution Imaging Spectroradiometer (MODIS) on NASA’s Aqua satellite acquired this image. (It is a mosaic, composed from multiple satellite passes over the region.) Note how much of the sea ice is drifting along the western coastline.

One of the most noticeable features in the image is the Belcher Islands, a curved set of islands in the southeastern part of the bay that is rich with hunting and fishing grounds for the Inuit communities who live on them. We can also see the D-shaped Akimiski Island, which is to the south in James Bay. The island has no permanent human residents, but it is the site of a sanctuary for hundreds of thousands of migratory birds each year.

The rhythms of sea ice play a central role in the lives of the animals of Hudson Bay, particularly polar bears. When the bay is topped with ice, polar bears head out to hunt for seals and other prey. When the ice melts in the summer, the bears swim to shore, where they fast until sea ice returns.

University of Alberta scientist Andrew Derocher is part of a group that monitors Hudson Bay polar bear populations with information gleaned from tagged bears and GPS satellites. Via email, he offered an update on sea ice conditions and polar bear populations in late June, around the time that this image was acquired.

“The sea ice melt was well advanced by June 29, but polar bears were still hunting along the remanent ice lingering along the western part of the bay. Bears farther south and in James Bay were already moving to land,” he said. “The break-up this spring was a bit unusual, and the bears in western Hudson Bay responded by remaining offshore longer than normal. We typically expect the bears to come ashore about three weeks after the Bay reaches 50 percent ice cover, but the bears we were tracking found patches of ice that worked for them.”

Ice conditions are closely watched by researchers who study polar bears. Most experts think that the retreat in Arctic sea ice cover in recent decades puts these bear populations at risk. While populations have been stable in the northern part of the Hudson Bay, bears in the western part have seen populations decline by 30 percent over the past decade. “Sea ice loss is simply habitat loss for polar bears,” said Derocher. “Once the ice-free period is too long, then an area can no longer support a viable population of polar bears.”

Image Credit: NASA image by Norman Kuring, NASA’s Ocean Color web.
Story Credit: Adam Voiland
Instrument(s): Aqua - MODIS
Image Date: June 29, 2017
Release Date: July 28, 2017

#Earth #Science #Space #Satellite #HudsonBay #JamesBay #Canada #Ice #Belcher #Islands #Akimiski #Aqua #MODIS #GSFC #Goddard #UnitedStates #STEM #Education

Monday, July 31, 2017

Sunrise Through the Solar Arrays | International Space Station


The International Space Station orbits toward the sun to experience one of the 16 sunrises the crew has every day. | July 31, 2017: On July 26, 2017, a member of the Expedition 52 crew aboard the International Space Station took this photograph of one of the 16 sunrises they experience every day, as the orbiting laboratory travels around Earth. One of the solar panels that provides power to the station is seen in the upper left.

The station's solar arrays produce more power than it needs at one time for station systems and experiments. When the station is in sunlight, about 60 percent of the electricity that the solar arrays generate is used to charge the station's batteries. The batteries power the station when it is not in the Sun.

Credit: NASA

Release Date: July 31, 2017

#NASA #ISS #Earth #Science #Sunrise #MondayMotivation #Solar#SolarPanels #SolarArrays #Renewable #Energy #EarthObservation#Astronauts #Cosmonauts #Human #Spaceflight #Expedition52#UnitedStates #JSC #STEM #Education

Spot the cluster | European Southern Observatory


This image from the Wide-Field Imager on the MPG/ESO 2.2-meter telescope shows the starry skies around a galaxy cluster named PLCKESZ G286.6-31.3. The cluster itself is difficult to spot initially, but shows up as a subtle clustering of yellowish galaxies near the centre of the frame.

PLCKESZ G286.6-31.3 houses up to 1000 galaxies, in addition to large quantities of hot gas and dark matter. As such, the cluster has a total mass of 530 trillion (530 000 000 000 000) times the mass of the Sun.

When viewed from Earth, PLCKESZ G286.6-31.3 is seen through the outer fringes of the Large Magellanic Cloud (LMC)—one of the Milky Way’s satellite galaxies. The LMC hosts over 700 star clusters, in addition to hundreds of thousands of giant and supergiant stars. The majority of the cosmic objects captured in this image are stars and star clusters located inside the LMC.

The MPG/ESO 2.2-meter telescope has been in operation at ESO’s La Silla Observatory since 1984. The telescope has been utilized for a variety of cutting-edge scientific studies, including ground-breaking research into gamma-ray bursts, the most powerful explosions in the Universe. The 67-million-pixel Wide Field Imager (WFI)—mounted on the telescope’s Cassegrain focus—has been obtaining detailed views of faint, distant objects since 1999.

The data to create this image was selected from the ESO archive as part of the Hidden Treasures competition.

Credit: European Southern Observatory (ESO)
Acknowledgements: Flickr user hdahle70
Release Date: July 31, 2017


#ESO #Astronomy #Science #Space #Galaxy #PLCKESZG2866313 #Magellanic #Cloud #LMC #Star #Clusters #Mensa #Cosmos #Universe #LaSilla #Observatory #Chile #Atacama #SouthAmerica #Europe #STEM #Education

The Hockey Stick Galaxy | Hubble



The star of this Hubble Picture of the Week is a galaxy known as NGC 4656, located in the constellation of Canes Venatici (The Hunting Dogs). However, it also has a somewhat more interesting and intriguing name: the Hockey Stick Galaxy! The reason for this is a little unclear from this partial view, which shows the bright central region, but the galaxy is actually shaped like an elongated, warped stick, stretching out through space until it curls around at one end to form a striking imitation of a celestial hockey stick.

This unusual shape is thought to be due to an interaction between NGC 4656 and a couple of near neighbors, NGC 4631 (otherwise known as The Whale Galaxy) and NGC 4627 (a small elliptical). Galactic interactions can completely reshape a celestial object, shifting and warping its constituent gas, stars, and dust into bizarre and beautiful configurations. The NASA/ESA Hubble Space Telescope has spied a large number of interacting galaxies over the years, from the cosmic rose of Arp 273 to the egg-penguin duo of Arp 142 and the pinwheel swirls of Arp 240. More Hubble images of interacting galaxies can be seen here.

Credit: ESA/Hubble & NASA
Release Date: July 31, 2017


#NASA #Hubble #Astronomy #Science #Space #Galaxy #HockeyStick #NGC4656 #CanesVenatici #Cosmos #Universe #Telescope #ESA #GSFC #Goddard #STScI #STEM #Education

Thursday, July 27, 2017

Jupiter's Great Red Spot in True Color | NASA Juno Mission


July 27, 2017: This image of Jupiter’s iconic Great Red Spot was created by citizen scientist Björn Jónsson using data from the JunoCam imager on NASA’s Juno spacecraft.

This true-color image offers a natural color rendition of what the Great Red Spot and surrounding areas would look like to human eyes from Juno’s position. The tumultuous atmospheric zones in and around the Great Red Spot are clearly visible.

The image was taken on July 10, 2017 at 07:10 p.m. PDT (10:10 p.m. EDT), as the Juno spacecraft performed its seventh close flyby of Jupiter. At the time the image was taken, the spacecraft was about 8,648 miles (13,917 kilometers) from the tops of the clouds of the planet at a latitude of -32.6 degrees.

JunoCam's raw images are available for the public to peruse and process into image products at: www.missionjuno.swri.edu/junocam

Credit: NASA/JPL-Caltech/SwRI/MSSS/Björn Jónsson
Release Date: July 27, 2017


#NASA #Astronomy #Space #Science #Jupiter #Planet #Atmosphere #GreatRedSpot #GRS #Juno #Spacecraft #SwRI #JPL #Pasadena #California #UnitedStates #STEM #Education #CitizenScience

The Orion Nebula Cluster | European Southern Observatory


July 27, 2017: Using new observations from ESO’s VLT Survey Telescope, astronomers have discovered three different populations of young stars within the Orion Nebula Cluster. This unexpected discovery adds very valuable new insights for the understanding of how such clusters form. It suggests that star formation might proceed in bursts, where each burst occurs on a much faster time-scale than previously thought.

OmegaCAM—the wide-field optical camera on ESO’s VLT Survey Telescope (VST)—has captured the spectacular Orion Nebula and its associated cluster of young stars in great detail, producing a beautiful new image. This object is one of the closest stellar nurseries for both low and high-mass stars, at a distance of about 1350 light-years [1].

But this is more than just a pretty picture. A team led by ESO astronomer Giacomo Beccari has used these data of unparallelled quality to precisely measure the brightness and colors of all the stars in the Orion Nebula Cluster. These measurements allowed the astronomers to determine the mass and ages of the stars. To their surprise, the data revealed three different sequences of potentially different ages.

“Looking at the data for the first time was one of those ‘Wow!’ moments that happen only once or twice in an astronomer's lifetime,” says Beccari, lead ­author of the paper presenting the results. “The incredible quality of the OmegaCAM images revealed without any doubt that we were seeing three distinct populations of stars in the central parts of Orion.”

Monika Petr-Gotzens, co-author and also based at ESO Garching, continues, “This is an important result. What we are witnessing is that the stars of a cluster at the beginning of their lives didn’t form altogether simultaneously. This may mean that our understanding of how stars form in clusters needs to be modified.”

The astronomers looked carefully at the possibility that instead of indicating different ages, the different brightnesses and colours of some of the stars were due to hidden companion stars, which would make the stars appear brighter and redder than they really were. But this idea would imply quite unusual properties of the pairs, which have never before been observed. Other measurements of the stars, such as their rotation speeds and spectra, also indicated that they must have different ages [2].

“Although we cannot yet formally disprove the possibility that these stars are binaries, it seems much more natural to accept that what we see are three generations of stars that formed in succession, within less than three million years,” concludes Beccari.

The new results strongly suggest that star formation in the Orion Nebula Cluster is proceeding in bursts, and more quickly than had been previously thought.

Notes
[1] The Orion Nebula has been studied by many of ESO’s telescopes, including images in visible light from the MPG/ESO 2.2-meter telescope (eso1103) and infrared images from VISTA (eso1701) and the HAWK-I instrument on the Very Large Telescope (eso1625).

[2] The group also found that each of the three different generations rotate at different speeds — the youngest stars rotate the fastest, and the oldest stars rotate the slowest. In this scenario, the stars would have formed in quick succession, within a time frame of three million years.

Research paper
https://www.eso.org/public/archives/releases/sciencepapers/eso1723/eso1723a.pdf

Credit: ESO/G. Beccari
Release Date: July 27, 2017

#ESO #Astronomy #Science #Space #Nebula #Orion #Star #Cluster #Cosmos #Universe #Telescope #VLT #OmegaCAM #STEM #Education

Galactic David and Goliath | Hubble


July 27, 2017: The gravitational dance between two galaxies in our local neighborhood has led to intriguing visual features in both as witnessed in this new NASA/ESA Hubble Space Telescope image. The tiny NGC 1510 and its colossal neighbor NGC 1512 are at the beginning of a lengthy merger, a crucial process in galaxy evolution. Despite its diminutive size, NGC 1510 has had a significant effect on NGC 1512’s structure and amount of star formation.

Galaxies come in a range of shapes and sizes, and astronomers use this fact to classify them based on their appearance. NGC 1512, the large galaxy to the left in this image, is classified as a barred spiral, named after the bar composed of stars, gas and dust slicing through its centre. The tiny NGC 1510 to the right, on the other hand, is a dwarf galaxy. Despite their very different sizes, each galaxy affects the other through gravity, causing slow changes in their appearances.

The bar in NGC 1512 acts as a cosmic funnel, channelling the raw materials required for star formation from the outer ring into the heart of the galaxy. This pipeline of gas and dust in NGC 1512 fuels intense star birth in the bright, blue, shimmering inner disc known as a circumnuclear starburst ring, which spans 2400 light-years.

Both the bar and the starburst ring are thought to be at least in part the result of the cosmic scuffle between the two galaxies—a merger that has been going on for 400 million years.

NGC 1512, which has been observed by Hubble in the past, is also home to a second, more serene, star-forming region in its outer ring. This ring is dotted with dozens of HII regions, where large swathes of hydrogen gas are subject to intense radiation from nearby, newly formed stars. This radiation causes the gas to glow and creates the bright knots of light seen throughout the ring.

Remarkably, NGC 1512 extends even further than we can see in this image—beyond the outer ring—displaying malformed, tendril-like spiral arms enveloping NGC 1510. These huge arms are thought to be warped by strong gravitational interactions with NGC 1510 and the accretion of material from it. But these interactions are not just affecting NGC 1512; they have also taken their toll on the smaller of the pair.

The constant tidal tugging from its neighbor has swirled up the gas and dust in NGC 1510 and kick-started star formation that is even more intense than in NGC 1512. This causes the galaxy to glow with the blue hue that is indicative of hot new stars.

NGC 1510 is not the only galaxy to have experienced the massive gravitational tidal forces of NGC 1512. Observations made in 2015 showed that the outer regions of the spiral arms of NGC 1512 were indeed once part of a separate, older galaxy. This galaxy was ripped apart and absorbed by NGC 1512, just as it is doing now to NGC 1510.

Together, the pair demonstrate how interactions between galaxies, even if they are of very different sizes, can have a significant influence on their structures, changing the dynamics of their constituent gas and dust and even triggering starbursts. Such interactions between galaxies, and galaxy mergers in particular, play a key role in galactic evolution.

Credit: NASA, ESA
Release Date: July 27, 2017


#NASA #Hubble #Astronomy #Science #Space #Galaxy #NGC1510 #NGC1512 #Galaxies #Cosmos #Universe #Telescope #ESA #STScI #Goddard #GSFC #STEM #Education

Wednesday, July 26, 2017

Expedition 52 Soyuz Rocket Rollout | NASA


Image: Soyuz spacecraft at launchpad
July 26, 2017: The Soyuz MS-05 spacecraft is seen as it is raised into a vertical position on the launch pad at the Baikonur Cosmodrome, Kazakhstan, Wednesday, July 26, 2017. Expedition 52 flight engineer Sergei Ryazanskiy of Roscosmos, flight engineer Randy Bresnik of NASA, and flight engineer Paolo Nespoli of ESA (European Space Agency), are scheduled to launch to the International Space Station aboard the Soyuz spacecraft from the Baikonur Cosmodrome on Friday, July 28, at 11:41 a.m. EDT (9:41 p.m. Baikonur time).

Credit: NASA/Joel Kowsky
Release Date: July 26, 2017


#NASA #ISS #Earth #Science #Soyuz #Rocket #SoyuzMS05 #Spacecraft #Cosmonaut #Commander #SergeyRyazanskiy #Astronaut #Astronauts #PaoloNespoli #RandyBresnik #ASI #ESA #Europe #Russia #Россия #Baikonur #Cosmodrome #Kazakhstan #Human #Spaceflight #Expedition52 #UnitedStates #JSC #STEM #Education