Showing posts with label OB association. Show all posts
Showing posts with label OB association. Show all posts

Thursday, 10 December 2015

What are OB associations and why should you care?

Over the last year I've talked a lot about different types of star cluster, but I've also mentioned another type of stellar group known as an OB association, and you may be wondering what are these OB associations? In this post I'm going to talk about OB associations, what they are, and why they're so important for understanding star clusters.

OB associations are very similar to young star clusters in that they are a group of young stars. They're not as compact as star clusters though, and the stars in them are spread out over a larger area of space than for star clusters.

OB associations were first identified just over a century ago by Arthur Eddington who noted the presence of groups of stars distributed across large areas of the sky but sharing a common motion. The actual term OB association was first penned by Victor Ambartsumian in 1947, who noted that these associations appeared to consist mostly of bright and blue stars known as O- and B-type stars. The image below shows the distribution of these stars near the Sun, showing how they appear to fall into a number of rough groups.

The distribution of nearby O-type (filled circles) and B-type
(empty circles) massive stars from Hipparcos. The boxes show the
positions of known OB associations (Credit: Preibisch & Mamajek 2008)
Ambartsumian noted that the low density of the OB associations meant that they weren't gravitationally bound (meaning that they weren't held together by their own gravity - in the same way that dense star clusters are). This means that they must be in the process of expanding and dispersing, and also implies that they must be relatively young structures if we are able to observe them before they have dispersed.

This revelation came at the same time as other scientists were beginning to understand how long stars of different types lived for. This revelation came from understanding the nuclear fusion that gives stars their energy, and then comparing the source of energy that each star has with the rate at which it is radiating that energy away. The O- and B-type stars are amongst the most luminous of all stars (as well as being the most massive), meaning that they are radiating away their energy the fastest and therefore have the shortest lives of all stars. This discovery confirmed the youthfulness of the OB associations that Ambartsumian had hypothesised.

If OB associations are not gravitationally bound then this means that they're probably in the process of expanding and dispersing into the Galactic field. And if OB associations are expanding then this means they were probably smaller and more compact in the past. This has led some astronomers to suggest that OB associations are the expanded remnants of compact star clusters that have been disrupted by some process.

The most common explanation for this disruption is that young star clusters are thought to be held together by the giant gas clouds that they formed in, and when star formation finishes this gas is blown away by powerful winds that come from massive stars. Without this gas the star cluster doesn't have enough mass to hold themselves together by gravity, and so the cluster begins to expand and disintegrate. The schematic below illustrates this sequence of events.


The sequence of events leading to the disruption of a star cluster: (1) The star is born embedded within a cloud, (2) the winds from the young stars disperse the cloud, and (3) without the gravitational potential of the cloud holding the cluster together the star cluster disperses and is briefly visible as an OB association. (Credit: Nick Wright)

There are other suggestions for how star clusters might be disrupted, such as tidal heating of the cluster, or possibly that some of the young star clusters that appear so ubiquitous may not actually be gravitationally bound in the first place and would therefore naturally expand and disperse.

This all means that OB associations are quite important objects to study, because by studying them we can effectively observe the process of star clusters being destroyed. Unfortunately they're not easy objects to study because the stars in an OB association are often spread over a large area of the sky and they can sometimes be difficult to distinguish from the older stars that make up the Milky Way Galaxy. For this reason our knowledge of OB associations, and our census of those that exist in our galaxy is rather slim.

The Scorpius Centaurus association
(Credit: Akira Fujii)
The most well studied OB associations are those nearest to us (this is often the case in astronomy). Associations such as the Scorpius-Centaurus association (see image on the left), the Perseus OB association, and the Lacerta I association were all discovered thanks to the bright and blue O- and B-type stars in them.

Other, slightly more distant OB associations include a number of slightly larger and more populous OB associations in the constellation of Cygnus (some of which I've discussed before here and here), as well as the Orion I association that surround the bright clusters in that constellation. Sometimes OB associations include a number of smaller clumps or clusters of stars within them, for example the double clusters h and chi Persei are part of the larger Perseus OB associations discovered in 1943.

There are a few OB associations that you can see without the aid of a telescope, but not many unfortunately because they are often very diffuse. The Alpha Persei cluster in the constellation Perseus is part of the larger Perseus OB association and is easy to observe. And while you may not be able to see most OB associations there are a number of young clusters you can observe that may one day become OB associations!

Sunday, 29 March 2015

The massive stars of Cygnus OB2

A couple of weeks ago I talked about an OB association known as Cygnus OB2, one of the largest groups of young stars in our galaxy, and an exciting location to study star formation on the grandest scales. This week I want to tell you about some research I recently carried out to better understand this region, research which has recently been published.

The Cygnus OB2 association, as seen though a combination of
X-ray (blue), optical (yellow) and infrared (red) light
(Credit: Chandra X-ray Observatory)
There has been a lot of work carried out recently by many other astronomers to understand some of the really massive stars in Cygnus OB2, which are all very interesting objects, many of which are unique and can tell us exciting things about how massive stars live their short and turbulent lives. Thanks to this work we're now in a position to put all this information together and use it to better understand the entire group of stars as a whole, and that's what I did!

I was able to gather information about 169 massive stars in Cygnus OB2, including some stars as massive as 100 times the mass of our Sun. For each of these stars I was able to determine their mass and age, by comparing their measured properties with the predictions from models of how massive stars evolve throughout their lives. One of the main advances in astronomy over the last few decades has been the development of models that describe not just how stars change throughout their lives, but how they appear during this time. These models, known as stellar evolution models, allow astronomers to estimate how old and how massive the stars that they see are.

The positions of massive stars (red, green and yellow dots) across the Cygnus region, shown against a black and white infrared image of the region. The white circle denotes the area covered by Cygnus OB2 and studied in my paper
(Credit: Nick Wright)

With this information we were able to determine the approximate ages of all the massive stars, allowing us to determine what's known as the star formation history of the region. The star formation history tells us when all the stars formed, and that's important to know if we want to understand how massive OB associations like this formed.

The simple view would be that all the stars formed at the same, or at least very similar, times. This is what's known as instantaneous star formation, or star-burst, because all the star formation occurs in a quick burst when the conditions in the molecular cloud become right for star formation.

The centre of the Cygnus OB2 association - or is it multiple associations?
(Credit: Nick Wright)
However that wasn't what we found. Instead we found that the ages of the stars were spread out over quite a long time period, almost 10 million years. That's a long period of time for star formation, because most astronomers think star formation occurs quickly, within only 1-2 million years or less. But here we're seeing that the star formation didn't happen all at once but was spread out, happening almost constantly for 10 million years.

What does this mean? Is the star formation that has occurred here any different from star formation taking place elsewhere? Probably not. What probably happened here is that the star formation didn't just take place over a long period of time, but probably also took place over a large area of space, almost like multiple small star formation events! These individual star formation events have since merged and combined so that we see them now as this large and homogeneous group of young stars.

It's a theory anyway. One of the great joys of science is discovering something you didn't expect to find, thinking of a new theory to describe what you saw, and then testing your theory. Science is not set in stone but is continually evolving with new theories being proposed, and existing theories being tested, and then refined or discarded. We call this the scientific method, and it underpins all of science.

You can read the full paper here if you're interested to learn more.

Tuesday, 17 February 2015

Where the wild things are: Cygnus OB2

This week I want to tell you about one of my favourite astronomical objects, and one which I have spent many years studying, the Cygnus OB2 association.

Cygnus OB2 is a loose group of young stars known as an association, a sort of less-dense version of a star cluster. As the name would suggest, the Cygnus OB2 association is the 2nd OB association catalogued in the constellation of Cygnus. This constellation lies very prominently in the plane of our galaxy where the majority of stars and nearly all young stars in our galaxy are found.

The Milky Way, showing the constellation of Cygnus and the position of the Cygnus OB2 association
(Original image credit: Axel Mellinger)

From the image above you wouldn't believe anything particularly exciting was happening in Cygnus, as the region appears mostly dark, particularly around Cygnus OB2 itself. The reason for this is that between us and Cygnus OB2 there is a vast cloud of obscuring dust that absorbs the majority of starlight emitted by the association, hiding it from us. This cloud of dust is sometimes referred to as the Cygnus Rift or the Great Rift, and can be seen extending across much of the Galactic Plane, as the above image shows.

Optical photons are readily absorbed by dust particles, but infrared photons are less susceptible to this problem and can penetrate these obscuring dust clouds. An infrared view of the Galactic Plane, such as that shown below thanks to Japan's Akari satellite, reveals the prominent sites of star-formation activity in our galaxy, radiating brightly thanks to the many young stars forming within them.

The Milky Way in infrared light, as seen by the Akari satellite, with major infrared-bright regions labelled
(Credit: ESA)

The brightest and most prominent of all these star forming regions is probably the Cygnus region, despite it being more distant than many of the other star forming regions shown on this image. This brightness is testament to the intense amount of star formation that has, and still is occurring in this region. In fact when this region was first studied at radio wavelengths the bright structure was so prominent as to be marked with an 'X', hence leading to the name of Cygnus X for the whole star forming complex.

Detailed infrared view of the Cygnus X region, with
Cygnus OB2 in the centre (Credit: NASA)
Zooming into this image we can begin to see some of the amazing structures present within the Cygnus X giant molecular cloud. Vast clouds of gas and dust can be seen collapsing to form young stars, while huge pillars are constantly being sculpted and eroded by the recently-formed stars. This is a place where star formation takes place at the extremes!

Right in the centre of the Cygnus X giant molecular cloud is the Cygnus OB2 association, a massive group of young stars, as populous as some of the most massive young star clusters in our galaxy, yet nowhere near as compact.

The diffuseness of Cygnus OB2, coupled with the obscuring dust clouds, led to it being maligned for many decades. Only in the last 15 years, thanks to the revolutions in infrared and X-ray astronomy, have researchers been able to penetrate the extinction and uncover the thousands of massive, young stars in this huge OB association, including some of the most massive and luminous stars known!

As I said at the beginning of this post, Cygnus OB2 is a region I have studied for many years, hoping to better understand its origins and its content, and therefore to appreciate its role in the continual evolution of our galaxy. Next week I hope to share some exciting news and discoveries about Cygnus OB2 that we will be publishing very soon, so stay tuned!

Sunday, 9 November 2014

Talking about star clusters in Copenhagen

The absence of posts this week was because I've been taking a break from doing research at my desk and instead I've been at a conference to discuss research with other scientists studying star clusters. The conference was "The Early Life of Stellar Clusters: Formation and Dynamics" and was held in Copenhagen, Denmark, a really beautiful city.

Copenhagen, very pretty (albeit cold)

Conferences are important in science because they allow scientists distributed all over the world to come together and discuss the current state of research with other scientists. This can be particularly important if you work in a small field (such as astrophysics) where the world's experts are spread all around the world. There can be lots of debates and arguments, discussions with collaborators, as well as opportunities to start new collaborations with people you meet.

This meeting attracted about 50 people who all study different aspects of star clusters and who have come together to discuss them. Most of the attendees have given a presentation to the group, including myself (I gave my talk on the first day and was able to relax after that). I talked about my recent work on an OB association called Cygnus OB2 (more on that in a future post) and I think it was well received.

It was a great conference and I'm very grateful to the organisers for putting it together (and for giving me the opportunity to present my work!). The meeting has given me lots of ideas for future projects, has opened the door to future collaborations, and helped develop some existing projects. I'm looking forward to the next conference already!