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Under The Crust

Three centuries ago, the English scientist Isaac Newton calculated, from his studies of planets and the force of gravity, that the average density of the Earth is twice that of surface rocks and therefore that the Earth's interior must be composed of much denser material. Our knowledge of what's inside the Earth has improved immensely since ...

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UnderTheCrust
Biology

Billions and Billions

Nobody really knows how many brain cells anybody has, but typical estimates are around 200 billion. You've heard the late Carl Sagan talk about 'billions and billions of stars' in the universe. Think ... Continue reading

BillionsBillions
Engineering

Moore's Law

Intel is the corporate giant known for manufacturing semiconductors, also called computer chips or integrated circuits (ICs), and its Pentium Processor. But Intel is also known for laying down the ... Continue reading

MooresLaw
Physics

Carbon Dating From The Skies

Determining the age of relatively recent fossils, those of plants and animals that lived tens of thousands of years ago, is not a guessing game but an exact science. By using carbon dating we can ... Continue reading

CarbonDatingFromTheSkies
Physics

Kinetic Theory of Gases

Air is a gas, and gases can be studied by considering the small scale action of individual molecules or by considering the large scale action of the gas as a whole. We can directly measure, or sense, ... Continue reading

KineticTheoryofGases

Galaxy Cluster RDCS 1252.9-2927

GalaxyClusterRDCS125292927A color composite image of the galaxy cluster RDCS 1252.9-2927 shows the X-ray (purple) light from 70-million-degree Celsius gas in the cluster, and the optical (red, yellow and green) light from the galaxies in the cluster. X-ray data from Chandra and the XMM-Newton Observatory show that this cluster was fully formed more than 8 billion years ago, and has a mass at least 200 trillion times that of the Sun. At a distance of 8.5 billion light years, it is the most massive cluster ever observed at such an early stage in the evolution of the universe. Even though the cluster is seen as it was only 5 billion years after the Big Bang, it has an abundance of elements such as silicon, sulfur, and iron similar to that of clusters observed at more recent epochs.

The cluster gas must have been enriched by heavy elements synthesized in stars and ultimately ejected from the galaxies. The relative abundances of these heavy elements are indicators of the star formation history of the galaxies. The observations of RDCS 1252.9-2927 are consistent with the theory that most of the heavy elements were produced by massive stars some 11 billion years ago. The large mass of the cluster is also significant. The currently favored theory for the formation of clusters is that they are formed from the merger of many sub-clusters in a universe dominated by cold dark matter - hypothetical subatomic particles left over from the dense early universe. Cold dark matter gets its name from the assumption that these dark matter particles were moving slowly when galaxies and galaxy clusters began to form.

Because the merging process takes time, there is a limit to how fast a cluster can grow and therefore how massive it can be at early epochs. The existence of one cluster as massive as RDCS 1252.9-2927 is consistent with the cold dark matter hypothesis, but the discovery of more such massive galaxy clusters would pose a serious challenge. A major test will come as astronomers search for evolutionary links between RDCS 1252.9-2927 and the recently discovered proto-clusters such as 4C41.17 and 3C294 that were forming 12 billion years ago.