Showing posts with label Galaxy. Show all posts
Showing posts with label Galaxy. Show all posts

January 10, 2011

A Supermassive Black Hole in a Dwarf Galaxy

A supermassive black hole exists in the center of our galaxy, with an incredible mass on the order of 4 million times that of the Sun. Our galaxy is not alone; most large galaxies also possess very large black holes as well. This leads to some interesting questions in galaxy formation and development: Which comes first, the black hole or the galaxy? Does a galaxy develop first, and then later, a massive black hole forms? Or does a black hole appear first, around which a galaxy much later forms? The discovery of a supermassive black hole could help answer that question.

A composite (X-ray, optical, and radio) image of the Henize 2-10 dwarf galaxy.
Image: X-Ray (NASA/CXC/Virginia/A. Reines et al);
Radio (NRAO/AUI/NSF); Optical (NASA/STScl)

Amy Reines, a graduate student, and her colleagues at the University of Virginia initially wanted to study the rapid star formation in the Henize 2-10 galaxy. The dwarf galaxy possesses many starburst regions and interesting newly formed super star clusters, where star formation has recently taken place. However, while looking back at the data, Reines and the researchers realized that there were signs of a black hole in the center of the galaxy. Radio radiation was originating at the spot, suggesting the presence of jets of radiation resulting from matter falling into the black hole. Further data from the Chandra X-ray Space Telescope revealed a high amount of X-ray radiation in the region, more evidence for the existence of a black hole.

Looking at black holes in the center of other galaxies has shown that there is a correlation with the mass of the central bulge in the galaxy and the mass of the black hole in the galaxy center. This has led some to speculate that a bulge in the galaxy was necessary for a black hole to form. The discovery of a black hole, with a mass about 2 million times that of the Sun, in Henize 2-10 challenges that notion. Henize 2-10 lacks a bulge, and being a dwarf galaxy, it has a low mass, only 10% of the Milky Way’s mass. It also has an irregular shape, with a rapid rate of star formation. These characteristics suggest that Henize 2-10 could be an early phase in the evolution of a galaxy and the answer to the above questions could be that black holes develop before galaxies form. With that though, we still have to keep in mind that the black hole in Henize 2-10 might be an outlier. Until we find more examples, the questions are still open.

November 26, 2010

An Intriguing Planet From Outside the Galaxy

An artist's impression of HIP 13044 and the planet HIP 13044 b.
Image: ESO/L. Calçada

Recently, exoplanets1 have been discovered at an extremely rapid pace. In just about two decades, astronomers have found and confirmed over 500 planets, with many more waiting to be confirmed. Despite the large number, we're still finding a great amount of new things to be excited about in many of these discoveries.

The telescope used to make the discovery.
Image: ESO/H. H. Heyer
A newly announced exoplanet can claim to be the first one discovered to have originated outside our galaxy. Discovered by the Max Planck Institute in Germany using a 2.2m telescope at the European Southern Observatory in Chile, the planet, HIP 13044 b, orbits around a star, HIP 13044, that is located in the Helmi stream about 2,000 light years from the Sun. This particular group of stars originated from a small satellite galaxy of the Milky Way. The galaxy was later absorbed by the Milky Way about six to nine billion years ago, and gravitational tidal forces subsequently tore it apart and stretched it into a stream of stars. Both the star and planet orbiting around it were likely swept along for the ride.

This particular planet was discovered by the “wobble” method, just as many other exoplanets have been discovered in the past. The host star is studied for a long period of time, and a wobble, found for this star by a doppler shift, indicates a planet gravitationally tugging back on the star as it orbits around. The wobble in this particular case suggests a giant massive planet (similar to Jupiter) orbiting very closely to the star. This is very surprising, since the host star has also already passed through its red giant phase. When a Sun-like star enters the red giant phase, it grows extremely large, increasing its radius by ten to even hundreds of times larger that its original radius. Our Sun is expected to have a radius extending beyond the Earth's orbit when it becomes a red giant in around five billion years. However HIP 13044 b lies very close to its star, inside the area that was likely taken up by the star's red giant size before. This is likely due to the planet migrating inwards from a larger original orbit after the star shrunk, which is very intriguing. Later, the host star is expected to become an asymptotic giant branch2 star, and the discoverers of the planet believe it will be devoured by the star at that time.

Furthermore, this exoplanet's host star is very metal-poor, meaning that it does not have many elements heavier than helium. Other exoplanets discovered so far, on the other hand, have had host stars that are at least as metallic as the Sun. HIP 13044, like the other stars in the Helmi stream, has metal content of about 1% of that of the Sun, in a mass that is about equal to the Sun's. This is just simply not a curiosity, but a potential reconsideration of how planets are formed. In the widely accepted core-accretion planet formation model, the matter around a star gradually coalesces to form planets. However, this model requires heavier elements to begin the process of planet formation, by forming the rocky core first. Without a rocky core, a gas giant, like this particular exoplanet, could not be formed since there is not enough mass to retain the gas. There is an alternative model for the formation of giant planets, called the disk instability , where a giant disk of gas around a star breaks off into planet-sized self-gravitating pieces. These pieces eventually each result in a giant planet. The model may be relevant in this case and this exoplanet discovery may provide substantial evidence for the disk instability model, or perhaps may lead to another future model.

HIP 13044 b's discovery continues to show that although exoplanet discoveries may no longer by novel in and of themselves, they still bring forth fresh considerations and interesting ideas.

Footnotes:

1: Short for extrasolar planets, which are planets located outside our solar system.
2: In order to explain the asymptotic giant branch, I should explain the Hertzsprung-Russell (H-R) diagram first. The H-R diagram is essentially a scatter graph of stars plotted by their temperatures and luminosities (some use other related classifications like absolute magnitude, spectral types, etc.). Most stars in the H-R diagram lie on an area that looks like a curved line called the main sequence. There are also some branches that come out of the main sequence. The asymptotic giant branch is one of these branches, and consists of low to intermediate mass stars (about 0.6 to 10 times the mass of the Sun) in the late part of their stellar evolution.

October 31, 2009

Majestic Panorama of the Milky Way Galaxy



Physicist Axel Mellinger, a professor at Central Michigan University, has created a giant, high resolution, panorama of the Milky Way galaxy. It's resolution clearly shows stars that are up to a 1000 times fainter than the limit of the human eye, and also reveals galaxies, star clusters, and nebulae.

April 4, 2009

Galaxy Triplet Arp 274

To celebrate the 100 Hours of Astronomy, the people working on the Hubble Space Telescope decided to let the public decide of what the telescope will take a picture. This vote, called Hubble's Next Discovery - You Decide, closed on March 1, and consisted of six interesting objects, details about which are not completely understood. I personally voted for the winner, Arp 274, since it seemed to be a pair of interacting galaxies. However, these galaxies have now revealed a surprise.

Arp 274 was previously thought to be a set of interacting galaxies, galaxies that are "colliding" and gravitationally affecting one another. The ground-based image (left) of the same area of the sky certainly makes it seem that way. But, the new image by the Hubble, with far more detail, reveals that the three galaxies may just be galaxies located near each other, but not interacting together. The largest galaxy in the center, a barred spiral galaxy, appears to be extending an arm into the other spiral galaxy, on the right. Distortion of the shapes of the galaxies by gravity would indicate interaction, but this is simply not exhibited by these galaxies. Additionally, there is a third galaxy in the area, a small compact galaxy. All three contain bright blue areas, where star formation takes place.

You can get this image at the news release, or download a wallpaper for your computer at HubbleSite.

Update: Here is a video detailing the process used to generate this image.



Images: NASA, Palomar Observatory

Astronomy and Space celebrates International Year of Astronomy 2009.

November 3, 2008

A "perfect ten" for the Hubble Space Telescope

Arp 147
Image: NASA

A few weeks after the Hubble Space Telescope went into sleep mode, due to an electrical malfunction, it came back with a marvelous photo of two adjacent galaxies, resembling a number "10". The image came just a few days after the telescope resumed scientific observations, and the camera has been proven to show that it has been working exactly like it was before the telescope entered sleep mode.


The pair of galaxies featured, Arp 147, have many interesting features. The galaxy on the right is blue, indicating an area of intense star formation. The shape and the position of the two galaxies is due to the galaxy currently on the left passing through the one on the right, creating a ripple effect starting from the point of impact. The outer material moving in due to the increased gravitational pull of the two galaxies collided with the this ripple traveling outwards. The shock and dense gas created with this collision resulted in the increased amount of star production.


The galaxy on the left passed through this collision nearly unscathed, with the exception being the ring of starlight surrounding it. The bright red object in the bottom left corner of the image is thought to be the nucleus of the galaxy that was hit.


Besides the interesting subject of the image, the Hubble has recently been suffering numerous problems. The last servicing mission for the famous telescope was originally scheduled for February. It has now been delayed to May, since a spare part for fixing this current problem will not be ready for February.


P.S.
50th post for Astronomy and Space!