Solar Nebula’s Lifetime: Swirling Gas Disk disappeared within solar system’s first 4million years

Depiction of the solar nebula dispersal in action about 3 million years after the solar system formed. Credit: NASA/JHUAPL

Depiction of the solar nebula dispersal in action about 3 million years after the solar system formed. Credit: NASA/JHUAPL

About 4.6 billion years ago, an enormous cloud of H gas and dust collapsed under its own weight, eventually flattening into a disk called the solar nebula. Most of this interstellar material contracted at the disk’s center to form the sun, and part of the solar nebula’s remaining gas and dust condensed to form the planets and the rest of our solar system. Now scientists from MIT and their colleagues have estimated the lifetime of the solar nebula – a key stage during which much of the solar system evolution took shape. This new estimate suggests that the gas giants Jupiter and Saturn must have formed within the first 4 million years of the solar system’s formation...

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What drives Universe’s Expansion?

Andromeda Galaxy (stock image). Credit: © passmil198216 / Fotolia

Andromeda Galaxy (stock image). Credit: © passmil198216 / Fotolia

Quest to settle riddle over Einstein’s theory may soon be over. Tests using advanced technology could resolve a longstanding puzzle over what is driving the accelerated expansion of the Universe. Researchers have long sought to determine how the Universe’s accelerated expansion is being driven. Calculations in a new study could help to explain whether dark energy- as required by Einstein’s theory of general relativity – or a revised theory of gravity are responsible.

Einstein’s theory, which describes gravity as distortions of space and time, included a Cosmological Constant...

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Ancient Signals from the Early Universe

A still image from a computer simulation of an oscillon, a strong localized fluctuation of the inflaton field of the early universe. According to the calculations of Prof. Stefan Antusch and his team, oscillons produced a characteristic peak in the otherwise broad spectrum of gravitational waves. Credit: University of Basel, Department of Physics

A still image from a computer simulation of an oscillon, a strong localized fluctuation of the inflaton field of the early universe. According to the calculations of Prof. Stefan Antusch and his team, oscillons produced a characteristic peak in the otherwise broad spectrum of gravitational waves. Credit: University of Basel, Department of Physics

For the 1st time, theoretical physicists from the University of Basel have calculated the signal of specific gravitational wave sources that emerged fractions of a second after the Big Bang. The source of the signal is a long-lost cosmological phenomenon called “oscillon...

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Matters of the heart: Researchers create 3D Beating Heart

1.3-D tissue imaged using 3-D fluorescent imaging, where many cells laid down sequentially to make attached layers of alternating cell types like membranes in the human body. Credit: York University 2. York U chemistry Professor Muhammad Yousaf looks at the 3D heart tissue cells beating together as one

1.3-D tissue imaged using 3-D fluorescent imaging, where many cells laid down sequentially to make attached layers of alternating cell types like membranes in the human body.
Credit: York University
2. York U chemistry Professor Muhammad Yousaf looks at the 3D heart tissue cells beating together as one

Matters of the heart can be complicated, but York University scientists have found a way to create 3D heart tissue that beats in synchronized harmony, like a heart in love, that will l

ead to better understanding of cardiac health and improved treatments. York U chemistry Professor Muhammad Yousaf and his team of grad students have devised a way to stick 3 different types of cardiac cells together, like Velcro, to make heart tissue that beats as one.

Until now, most 2D and 3D in vitro tissue d...

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