Monday, May 2, 2011

14,000 Quasars Map Universe in 3-D Thanks to Sloan

A zoomed-in view of a slice of the three-dimensional map of the universe. Red areas have more gas; blue areas have less gas. The black scale bar in the bottom right measures 1 billion light-years.
CREDIT: A. Slosar and the SDSS-III collaboration 


The largest-ever three-dimensional map of the distant universe has been created using the light of the brightest objects in the cosmos.

Since this distant light took eons to reach Earth, the map is essentially a window back in time, providing an unprecedented view of what the universe looked like 11 billion years ago. [Top 10 Strangest Things in Space]
Normally, researchers make maps of the universe by looking at galaxies.


"Here, we are looking at intergalactic hydrogen gas, which blocks light," said researcher Anže Slosar, a physicist at the U.S. Department of Energy's Brookhaven National Laboratory. "It's like looking at the moon through clouds -- you can see the shapes of the clouds by the moonlight that they block."

Mapping the universe

Scientists from the Sloan Digital Sky Survey relied on the light of the brightest objects in the cosmos, quasars — brilliantly luminous beacons powered by giant black holes. As light from a quasar voyages to Earth, it illuminates clouds of intergalactic hydrogen gas that absorb light at specific wavelengths depending on the distances between each quasar and these clouds. This leads to an irregular pattern of quasar light known as the "Lyman-alpha forest."

To make a full three-dimensional map of the universe, the researchers relied on 14,000 quasars. The map reveals a time 11 billion years ago, when the first galaxies were just beginning to come together under the force of gravity to form the first large clusters.

"The most exciting thing for me personally is proving wrong everyone who was telling us that it is never going to work," Slosar told SPACE.com. The use of the Lyman-alpha forest in creating a 3-D map was unproven, "a large investment of time, 20 percent of a big international project, and it sort of had to work. But we were the first to show that it actually works. So, while we haven't yet discovered anything amazing about the universe itself using this technique, we demonstrated that it does work and that we will very likely discover new things."

These observations came from the Baryon Oscillation Spectroscopic Survey (BOSS), the largest of the four projects making up the latest phase of the Sloan Digital Sky Survey. When BOSS completes its observations of about 140,000 more quasars by 2014, astronomers can make a map 10 times larger than the one being released today.
"With that much data, we're bound to find things that we never expected," said researcher Patrick Petitjean, a quasar expert at the Institute of Astrophysics of Paris.

Uncovering the mysteries

For instance, the ultimate goal of such maps is to study how the expansion of the universe has changed during its history, which could shed light on the mysterious dark energy that seems to drive the accelerating expansion of the universe.

"Dark energy is one of the most surprising discoveries in physics in the last 20 years," Slosar noted. "Nobody has a foggiest idea of what it could be. So we study it by studying the expansion history and growth of structure in the universe. To study these we make maps of the universe at different epochs."

By the time BOSS ends, "we will be able to measure how fast the universe was expanding 11 billion years ago with an accuracy of a couple of percent," said researcher Patrick McDonald of Lawrence Berkeley and Brookhaven National Laboratories, who pioneered techniques for measuring the universe with the Lyman-alpha forest and helped design the BOSS quasar survey. "Considering that no one has ever measured the cosmic expansion rate so far back in time, that's a pretty astonishing prospect."

The scientists could, for example, "discover that dark energy actually kicked in 11 billion years ago rather than 7 billion as predicted by simplest model and that would be just mind-blowing," Slosar said. "The potential for discovering anomalies is great."

The scientists detailed their findings May 1 at a meeting of the American Physical Society in Anaheim, Calif.

FROM 
SPACE.com

SEa. Air. Land. US Navy SEALs. Congrats, Guys.


The United States Navy SEa, Air and Land (SEAL) Teams, commonly known as Navy SEALs, are the U.S. Navy's principal special operations force and is a part of the Naval Special Warfare Command (NSWC) as well as the maritime component of the United States Special Operations Command (USSOCOM).[3]
The unit's acronym ("SEAL") is derived from their capacity to operate at sea, in the air, and on land - but it is their ability to work underwater that separates SEALs from most other military units in the world. The experience gained from operating in the ocean and fresh water battle fields has shaped their identity and, as a result, they are regarded as being amongst the most highly skilled and trained amphibious units in the world[citation needed]. Navy SEALs are trained and have been deployed in a wide variety of missions, including direct action and special reconnaissance operations, unconventional warfareforeign internal defensehostage rescuecounter-terrorism, and other missions.
Without exception, all SEALs are male members of either the U.S. Navy or the Coast Guard.[4][5


The Death of Osama bin Laden

On May 1 2011, a team of 20 Navy SEALs successfully completed the operation to kill or capture Osama Bin Laden in Abbottabad, Pakistan a city about 60 miles/100 kms from Islamabad, the capital of Pakistan. President Barrack Obama later confirmed the death of Bin Laden, but did not directly mention the involvement of Navy SEALs, saying only that a "small team" of Americans undertook the operation to bring down Bin Laden. [12]


That's one. OK, Where is al-Zawahari. You know, the Al.-Q. Mastermind? The Egyptian "Doctor" who never took (apparently) the Hippocratic Oath, which includes the phrase: "Above all else, do no harm." ?

Phil Plait has an interesting blogpost and his repliers words are worthy reading as well at Phil's weblog, Bad Astronomy, here.

Sunday, May 1, 2011

Gott-Li Model

Richard Gott has suggested a method for a universe to create itself if it formed a causal loop in spacetime (see here). He suggested that a branch of the universe might circle back around and grow up to become the trunk of the main universe (see diagram below). This is a model where the universe is its own mother:

The details of this technique are explained in detail on page 37 of his paper with Li-Xin LiCan the Universe Create Itself?. Gott considers an advanced civilisation capable of creating baby universes (using the method of Farhi, Guth, and Guven which was discussed earlier):"Now suppose one of these open bubble universes simply turns out to be the original open universe where that advanced civilization made the baby universe in the first place". In that case, the universe would indeed be its own mother.


In the introduction of his paper with Li-Xin Li Can the Universe Create Itself?, Gott constrasts his theory's approach to the first cause with that of the No Boundary proposal:"Often, the beginning of the universe, as in Vilenkin's tunneling model and Hartle and Hawking's No Boundary model, is pictured as being like the South Pole of the Earth and it is usually said that asking what happened before that is like asking what is south of the South Pole. But, suppose the early universe contains a region of closed timelike curves. Then, asking what was the earliest point might be like asking what is the easternmost point on the Earth. You can keep going east around and around the Earth - there is no eastern-most point. In such a model every event in the early universe would have events that preceded it."


From http://www.ipod.org.uk/reality/reality_intelligent_universe.asp by Andrew Thomas

Saturday, April 30, 2011

War of the Octonions

Forgot the String Wars, sometimes called the Loop vs String Wars, or better known in the modern era as the Woit-Motl War? Well, fret not, it's back! At the center of the action is a piece written by John Baez and John Huerta in the current issue of Scientific American.

Of course, Peter Woit and Lubos Motl weigh in. Why not?

Peter Woit's take, and some very interesting responses by John Baez, can be found at Woit's weblog Not Even Wrong, here .

Lubos Motl's strong disagreements at his weblog The Reference Frame can be found, here.

For a brief review (or an elementary education, even) for those who don't know what an Octonion is, it's one of 4 division algebras, the first one being the ordinary elementary algebra taught in high school (REAL), the second (COMPLEX) known to Calculus students and Engineers and Scientists worldwide, the other two (Quaternions and Octonions) being a bit more involved. For comparison purposes, they take the forms:

R = a

C = a + bi

H = a + bi + cj + dk    

O = a + e1i  + e2j +e3k + e4l + e5m + e6n + e7o  , or something.

In any event, it's just notation folks, don't let it scare you.

The following probably has nothing to do with the above, but I ran into it looking for a cool picture for this post, rather than say just copying Lubos'. It's from Marni Dee Sheppeard's Arcadian Pseudofunctor: Feb. 7, 2011:


Theory Update 61

In this supercool paper, the authors define a tripled Fano plane(yes, that's right, three copies of Furey's particle zoo). It describes a set of 21=3×7 (left cyclic) modules over a noncommutative ring on eight elements. The ring is given by the upper triangular 2×2 matrices over the field with two elements. Similarly for right cyclic modules. 
The authors are familiar with the connection between octonion physics and so called stringy black holes. They find it odd that this structure is not studied in physics.

Just One Ticket Left for the 2015 Tourist Flyby of the Moon

Just One ($150 Million) Seat Remains on Space Adventures' Lunar Flyby

One of the two available tickets on Space Adventures' planned 2015 flyby of the moon has been sold, astronaut Byron Lichtenberg confirmed at an MIT conference today. If you're sitting on a small fortune and want to see the far side of the moon, act fast before the last seat on the Soyuz spacecraft is gone.



Read more: Space Adventures Lunar Flyby - The Future of Exploration MIT Conference - Popular Mechanics 




If you've got $150 million to spare and want to take a trip around the moon, don't wait for much longer—just one of the two seats that private space firm Space Adventures is selling for a proposed lunar flyby remains.

Byron Lichtenberg, a payload specialist aboard the space shuttle missions STS-9 and STS-45, noted this today at the MIT conference "Earth, Air, Ocean and Space: The Future of Exploration." The news that Space Adventures had sold one of the two nine-figure tickets came out quietly in January, when company CEO Eric Anderson mentioned it at a conference in Munich, Germany. Today, Lichtenberg, who had been in contact with the Space Adventures team, told a roomful of space pros, including astronauts Buzz Aldrin and Michael Massimino, that the sale was definite, sending a murmur of excitement through the room. Lichtenberg confirmed the statement with PM Senior Editor Joe Pappalardo, who is reporting from the conference.

Space Adventures, a Virginia-based company, has been planning a lunar flyby since 2005. It offered the two seats aboard a Russian-made Soyuz spacecraft that will fly around the moon in a mission scheduled for 2015. Anderson won't say who purchased the first $150 million ticket, but hinted that you'll know the person's name when you hear it.

What could a potential space traveler expect if they purchased the last remaining seat on Space Adventures' moon flyby? The no-frills Soyuz TMA carries one pilot and two passengers. It launches on a three-stage rocket, and will require extra propulsion for a moon flyby. After the Soyuz is launched, a second launch will send a rocket booster into low Earth orbit to rendezvous with the Soyuz and provide the addition propellant. It's the extra fuel and equipment needed to travel a quarter of a million miles—as opposed to simply journeying to the International Space Station or into orbit—that causes the insanely high price of the lunar trip.

Don't have $150 million? PM's May cover story, "The Early Adopter's Guide to Space Travel," shows you all the ways you'll be able to visit space in the not-too-distant future, including a few that will go a little easier on your wallet. And, PM predicts, even the lunar flyby will become a bit more affordable in the years to come—technological breakthroughs will bring down the trip's cost into the low millions. Just wait a few years.


Read more: Space Adventures Lunar Flyby - The Future of Exploration MIT Conference - Popular Mechanics