Forum for Science, Industry and Business
Sponsored by:     Siemens     3M    n-tv
Search our Site:

Topic (optional):

 

Home Reports Physics and Astronomy Content

In the planetary nursery

next article
31.01.2013

Astronomers determine the mass of the disk of gas and dust surrounding the star TW Hydrae

 


The birthplace of planets: New measurements that Thomas Henning from the Max Planck Institute for Astronomy in Heidelberg assisted in carrying out have resulted in a greater mass for the disk of gas and dust surrounding the young star TW Hydrae than previously assumed. The illustration depicts an artist’s conception of the disk. © Axel M. Quetz (MPIA)

The disk surrounding the young star TW Hydrae is regarded as a prototypical example of planetary nurseries. Due to its comparatively close proximity of 176 light-years, the object plays a key role in cosmological birth models.

Using the Herschel Space Telescope, researchers including Thomas Henning from the Max Planck Institute for Astronomy in Heidelberg have, for the first time, determined the mass of the disk very precisely. The new value is larger than previous estimates and proves that planets similar to those of our solar system can form in this system. In addition, the observations are an example of how, in the world of science, not everything can be planned for.

Where Egyptologists have their Rosetta Stone and geneticists their Drosophila fruit flies, astronomers studying planet formation have TW Hydrae: A readily accessible sample object with the potential to provide foundations for an entire area of study. TW Hydrae is a young star with about the same mass as the Sun. It is surrounded by a protoplanetary disk: a disk of dense gas and dust in which small grains of ice and dust clump to form larger objects and, eventually, into planets. This is how our Solar System came into being more than 4 billion years ago.

What is special about the TW Hydrae disk is its proximity to Earth: at a distance of 176 light-years from Earth, this disk is two-and-a-half times closer to us than the next nearest specimens, giving astronomers an unparalleled view of this highly interesting specimen – if only figuratively, because the disk is too small to show up on an image; its presence and properties can only be deduced by comparing light received from the system at different wavelengths (that is, the object's spectrum) with the prediction of models.

In consequence, TW Hydrae has one of the most frequently observed protoplanetary disks of all, and its observations are a key to testing current models of planet formation. That's why it was especially vexing that one of the fundamental parameters of the disk remained fairly uncertain: The total mass of the molecular hydrogen gas contained within the disk. This mass value is crucial in determining how many and what kinds of planets can be expected to form.

Previous mass determinations were heavily dependent on model assumptions; the results had significant error bars, spanning a mass range between 0.5 and 63 Jupiter masses. The new measurements exploit the fact that not all hydrogen molecules are created equal: Some very few of them contain a deuterium atom – where the atomic nucleus of hydrogen consists of a single proton, deuterium has an additional neutron. This slight change means that these "hydrogen deuteride" molecules consisting of one deuterium and one ordinary hydrogen atom emit significant infrared radiation related to the molecule's rotation.

The Herschel Space Telescope provides the unique combination of sensitivity at the required wavelengths and spectrum-taking ability ("spectral resolution") required for detecting the unusual molecules. The observation sets a lower limit for the disk mass at 52 Jupiter masses, with an uncertainty ten times smaller than the previous result. While TW Hydrae is estimated to be relatively old for a stellar system with disk (between 3 and 10 million years), this shows that there is still ample matter in the disk to form a planetary system larger than our own (which arose from a much lighter disk).

On this basis, additional observations, notably with the millimetre/submillimetre array ALMA in Chile, promise much more detailed future disk models for TW Hydrae – and, consequently, much more rigorous tests of theories of planet formation.

The observations also throw an interesting light on how science is done – and how it shouldn't be done. Thomas Henning explains: "This project started in casual conversation between Ted Bergin, Ewine van Dishoek and me. We realized that Herschel was our only chance to observe hydrogen deuteride in this disk – way too good an opportunity to pass up. But we also realized we would be taking a risk. At least one model predicted that we shouldn't have seen anything! Instead, the results were much better than we had dared to hope."

TW Hydrae holds a clear lesson for the committees that allocate funding for scientific projects or, in the case of astronomy, observing time on major telescopes – and which sometimes take a rather conservative stance, practically requiring the applicant to guarantee their project will work. In Henning's words: "If there's no chance your project can fail, you're probably not doing very interesting science. TW Hydrae is a good example of how a calculated scientific gamble can pay off."

Contact

Prof. Dr. Thomas Henning,
Max Planck Institute for Astronomy, Heidelberg
Phone: +49 6221 528-200
Fax: +49 6221 528-339
Email: henning@­mpia.de

Dr. Markus Pössel,
Max Planck Institute for Astronomy, Heidelberg
Phone: +49 6221 528-261
Email: poessel@­mpia.de


Background information
Whenever astronomers want to estimate the abundance of some compound, they search for characteristic light announcing the compound's presence. But this doesn't work for molecular hydrogen, as hydrogen molecules do not emit detectable radiation.


Original publication
E. A. Bergin, Th. Henning et al.
An Old Disk That Can Still Form a Planetary System
Nature, 31 January 2013

Prof. Dr. Thomas Henning | Source: Max-Planck-Institute
Further information: www.mpg.de/6887745/TW-Hydrae

next article

More articles from Physics and Astronomy:

nachricht New method proposed for detecting gravitational waves from ends of universe
17.05.2013 | University of Nevada, Reno

nachricht Scientists Shape First Global Topographic Map of Saturn’s Moon Titan
17.05.2013 | Johns Hopkins University Applied Physics Laboratory

All articles from Physics and Astronomy >>>
The most recent press releases about innovation >>>

Overview of the latest five Focus news of the innovations-report:
In the focus: GPS solution provides three-minute tsunami alerts

Researchers have shown that, by using global positioning systems (GPS) to measure ground deformation caused by a large underwater earthquake, they can provide accurate warning of the resulting tsunami in just a few minutes after the earthquake onset.

For the devastating Japan 2011 event, the team reveals that the analysis of the GPS data and issue of a detailed tsunami alert would have taken no more than three minutes. The results are published on 17 May in Natural Hazards and Earth System Sciences, an open access journal of ...

In the focus: NASA Satellite Data Helps Pinpoint Glaciers' Role in Sea Level Rise

A new study of glaciers worldwide using observations from two NASA satellites has helped resolve differences in estimates of how fast glaciers are disappearing and contributing to sea level rise.

The new research found glaciers outside of the Greenland and Antarctic ice sheets, repositories of 1 percent of all land ice, lost an average of 571 trillion pounds (259 trillion kilograms) of mass every year during the six-year study period, making the oceans rise 0.03 inches (0.7 mm) per year. ...

In the focus: Sea level: one third of its rise comes from melting mountain glaciers

About 99% of the world’s land ice is stored in the huge ice sheets of Antarctica and Greenland, while only 1% is contained in glaciers.

However, the meltwater of glaciers contributed almost as much to the rise in sea level in the period 2003 to 2009 as the two ice sheets: about one third. This is one of the results of an international study with the involvement of geographers from the University of Zurich.

How ...

In the focus: Observation of Second Sound in a Quantum Gas

Second sound is a quantum mechanical phenomenon, which has been observed only in superfluid helium.

Physicists from the University of Innsbruck, Austria, in collaboration with colleagues from the University of Trento, Italy, have now proven the propagation of such a temperature wave in a quantum gas. The scientists have published their historic findings in the journal Nature.

Below a critical temperature, certain fluids become superfluid ...

In the focus: Using clay to grow bone

Researchers use synthetic silicate to stimulate stem cells into bone cells

In new research published online May 13, 2013 in Advanced Materials, researchers from Brigham and Women's Hospital (BWH) are the first to report that synthetic silicate nanoplatelets (also known as layered clay) can induce stem cells to become bone cells without the need of additional bone-inducing factors.

Synthetic silicates are made ...

All Focus news of the innovations-report >>>

B2B Search

Product / Service
Company / Organisation

Latest News

New method proposed for detecting gravitational waves from ends of universe

17.05.2013 | Physics and Astronomy

Scientists Shape First Global Topographic Map of Saturn’s Moon Titan

17.05.2013 | Physics and Astronomy

Black Hole Powered Jets Plow Into Galaxy

17.05.2013 | Physics and Astronomy

VideoLinks
B2B-VideoLinks
More VideoLinks >>>

Event News

ITS European Congress: Traffic Warning and Information Platform

17.05.2013 | Event News

European Research Infrastructures help to solve air quality issues

15.05.2013 | Event News

The Problem of the European Unemployment

08.05.2013 | Event News