Big Bang Research-Large Hadron Collider

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There were many Scientists, Students, common people who opposed for “The Large Hadron collider (LHC)”, near Geneva, the world’s largest and highest particle accelerator, which could reveal the secrets of our universe and gives amazing insights of the big bang theory and of course expose the baffling properties of the dark matter. Robert Cousins, a UCLA professor of Physics, who has served as a leader of the Compact Moun Solenoid (CMS) experiment at The European Organization for Nuclear Research (CERN), one of the LHC’s four main experiments said that “We're going to study the Big Bang as far back as we can take it,".

"The fundamental questions," raised by Cousins,” which were asked by the ancient Greeks: Where did we come from, what are we made of? How did the universe evolve and what are the forces of the universe?” "Nature likely contains extra forces that we have not found yet," Cousins said, "Any successful attempt to unify the known forces of nature will almost certainly unify some unknown forces of nature at the same time. The job of experimental physicists is to go find those forces. I am most excited about finding new forces that shed light on unification. If you're going to paint the complete picture, you need to know what the other forces are."

"In the last few decades, an enormous amount of progress has been made in cosmology, which addresses very large questions, such as how the universe evolved from the Big Bang," Cousins said. "If you run the equations of general relativity for cosmology back to the Big Bang, you also need to know what the smallest objects in nature are and what the forces are between them in order to get close to the Big Bang.

The LHC is one of the most complex scientific instruments ever built; it contains 9,300 magnets and has a circumference of 27km (17 miles). At full power, trillions of protons race around the LHC accelerator ring 11,245 times a second, travelling at 99.99 per cent of the speed of light. It is capable of engineering 600m collisions every second. To avoid colliding with gas molecules inside the accelerator, the beams of particles travel in an ultra-high vacuum – a cavity as empty as interplanetary space. Thousands of scientists around the world will collaborate on analyzing the data over the next 15 years (the estimated lifetime of the LHC).

Financial support came from many sources, including the U.S. Department of Energy's Office of Science and the NSF. Ten thousand people from 60 countries helped design and build the collider and its experiments, including more than 1,700 scientists, engineers, technicians and students from more than 90 U.S. universities and laboratories supported by the DOE's Office of Science and the NSF. Participating U.S. universities include strong research groups from UCLA and seven other UC campuses. The LHC took 5.6 billion dollars to build and was restarted in November following extensive repairs costing 9.9 million dollars after a chain of damage occurred in the massive superconducting magnets. Since then it has been operating well, until it took a winter break for a month aimed to ready it for the collisions at record energy levels.
CMS is designed to measure the momentum, direction and energy of the particles that remain when the new particles decay.

A second experiment at CERN called ATLAS will use different techniques to answer the same key questions. CMS weighs more than 13,000 tons and contains 75 million silicon sensors. It has a detector, "a fantastic device," Cousins says, that is like a digital camera with 65 million pixels and the ability to take 40 million photographs per second. "My thesis experiment 30 years ago had seven channels to detect photons and electrons," Cousins said. "The experiment I did after my thesis had a couple hundred. But now CMS has more than 75,000. The technology is mind-boggling.”

"We're going to find out what nature has in store for us," Cousins. "We'll see and measure the particles that come out of the region where the clouds of protons collide." “It could take several days to achieve collisions because of the complexity of the task. Just lining the beams up is a challenge in itself, it’s a bit like firing needles across the Atlantic and getting them to collide half way", said Steve Myers, the director for Accelerators and Technology. By March 19th, the collider fired beans of protons in both clock wise and anti clockwise direction with an energy of 3.5 trillion (tera) electron volts, which is 3 ½ times higher than previous record set last year in order to test the control systems last year. The LHC will soon collide these proton beams against each other and will continuously run for 18-24 months with a short technical pause at the end of 2010 according to CERN operators. Then the physicists will analyze the particles produced in the collisions & CERN eventually plans to collide proton beams with an intense of 7 Tera-electron-volts in both directions and the final objective was to reach 14TeV.

After several false starts early on Tuesday, scientists just before 1pm local time brought together the two proton beams that had been running in alternate directions in the collider’s 27km(tunnel below the Swiss-French border — the coldest place in the universe at slightly above absolute zero) loop in a vacuum at minus 271°C. The resulting heat was equivalent to 100,000 times that generated by the sun. The success triggered rounds of appreciation and ovation from the scientists and journalists gathered in the circular control room, while allaying concerns that the experiment would create a black hole and destroy the universe.

Rolf Heuer, director-general of CERN, said: “It’s a great day to be a particle physicist. A lot of people have waited a long time for this moment, but their patience and dedication is starting to pay dividends.” "This is a huge step toward unraveling Genesis Chapter 1, Verse 1 — what happened in the beginning," physicist Michio Kaku told The Associated Press. "This is the Jurassic Park for particle physicists," said Phil Schewe, a spokesman for the American Institute of Physics. He called the collider a time machine. "Some of the particles they are making now or are about to make haven't been around for 14 billion years."

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Stars Death

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Many stars spend most of their old age as red giants. Their nuclei are made up of very hot and compressed helium. When the temperature in the center of these stars reaches 200 million degrees, the helium nuclei will begin to react. These new nuclear reactions bring about heavier elements of carbon, nitrogen and oxygen. The energy produced by these reactions momentarily stops the contraction in the star. The wrapping of the star is so swollen that the star begins to loose its outer layers, releasing a hydrogen gas bubble. These bubbles are known as planetary nebulas, because when seen through a small telescope, they appear in the shape of a disc, some what similar to a planet.

One of the most spectacular examples of a planetary nebula is the Ring Nebula in the constellation Lyra. The gas bubble appears as a ring because only its edges are visible. In the center of a planetary nebula there is always a blue-white star. This is the old nucleus of a very compressed and hot red giant which has become exposed after loosing its wrapping. Such stars are called white dwarfs. They are made up of ice, carbon, oxygen. They have approximately the same amount of matter as the sun, but are only as big as the Earth. They have a very high density, thousands of times that of water. The sun, and all other stars with similar masses, will end their lives as white dwarfs. They are inert stars that will not evolve further. They start to cool over a period of billions of years, until they become dark dwarfs.

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Supernovas, The Great Fire Works

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Not all stars end their lives as quietly as the white dwarfs. Massive stars, with much more matter than the sun, continue a more complex evolution and finish their existence in a far more spectacular way. The nucleus of these stars is so compressed and hot that more nuclear reactions can occur. When such a star has used up all of its hydrogen, the nucleus becomes compressed and heats up until the carbon react bringing about heavier elements. When the carbon has run out, a similar process begins. These different phases happen quickly, because the new nuclear reactions produce less energy each time. Toward the end, the star begins to acquire a structure of layers, with the nucleus being made up of iron. When it is no longer possible to obtain more energy from the iron, the stars center collapses in on itself and the whole star explodes in one great, unimaginable bang. This explosion can produce a glow of more than one hundred million suns. We call such an explosion a Supernova. Most of the stars matter disperses into space. The explosion produces a rapidly expanding nebula. The Crab nebula in the constellation Taurus is the remains of a supernova that Chinese astronomers saw in 1054.

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Giant Stars

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Stars finish their fully developed life when they have consumed all the hydrogen in their center. This happens when they have used up all their energy supply, which up to this point maintains the stars stability. The stars nucleus can no longer resist the rest of the stars weight, and begins to contract. Such compression makes the temperature of the nucleus rise and causes nuclear reactions in the layer surrounding the nucleus. The energy produced outside the center of the star makes the stars different layers dilate and cool. The star swells and then becomes reddish. This is what we call a red giant. A typical red giant is about one hundred times bigger than our sun.

When the sun becomes a red star, in about 5 billion years, it will expand out to a maximum radius of roughly 1 AU (150,000,000 km), 250 times its present size. As a giant, the Sun will lose roughly 30% of its current mass and it will grow so big that it will reach and burn up the nearest planets, mercury, Venus, and probably Earth. Many stars in the red giant stage undergo periodic changes in brightness. This is because they expand and shrink rhythmically. They are called Pulsating Variables. When the hydrogen is exhausted, the star stops being a fully developed star and becomes an old star. The core is compressed enough to start helium fusion, and the star now gradually shrinks in radius and increases its surface temperature. For larger stars, the core region transitions directly from fusing hydrogen to fusing helium.

After the star has consumed the helium at the core, fusion continues in a shell around a hot core of carbon and oxygen. The star then follows an evolutionary path that parallels the original red giant phase, but at a higher surface temperature. The life span of the stars depends on their mass, that is, on the amount of matter in the star. The greater the amount of matter from which the star formed, the more condensed and hot its nucleus is. The star is brighter and hotter; its surface is bluish. A blue star uses up its hydrogen in only some millions of years, a very short time compared to the sun. This is why we know that bright, blue stars like the Pleiades are young.

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Fully Developed Stars

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A star once it forms and begins to shine is a stable body that remains practically unchanged for many years. In the nucleus of a star, near its center, hydrogen is being converted into helium. The energy produced makes the interior of the star extraordinarily hot. This energy escapes from the surface of the star in the form of light and heat. The gas formed by the star tends to expand, and is capable of supporting the weight of the star itself, stopping its contraction. This situation lasts as long as there is enough hydrogen in the center of the star. Stars spend about 90% of their lifetime fusing hydrogen to produce helium in high-temperature and high-pressure reactions near the core. Such stars are said to be on the main sequence and are called dwarf stars, the Sun, for example, is estimated to have increased in luminosity by about 40% since it reached the main sequence 4.6 billion years ago. Every star generates a stellar wind of particles that causes a continual outflow of gas into space. For most stars, the amount of mass lost is negligible.

The Sun loses 10−14 solar masses every year, or about 0.01% of its total mass over its entire lifespan. However very massive stars can lose 10−7 to 10−5 solar masses each year, significantly affecting their evolution. Stars that begin with more than 50 solar masses can lose over half their total mass while they remain on the main sequence. The time for the main sequence depends on the amount of the fuel its having to fuse and the rate at which it fuses the fuel i.e. its initial mass and its luminosity. Large stars consume their fuel very rapidly and were short lived, but the small stars (red dwarfs) consume their mass very slowly and live for billions of years and at the final stage they become dimmer and dimmer. Since the age of the universe is 13.7 billion years, no red dwarfs have reached to that position.

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Life stages of stars

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The birth of the Stars:We know that stars must have been formed at some time in the past, but we don’t know with what exactly they were formed with. The only reasonable answer is from existing gas and dust among the stars in the galaxy. This is called interstellar matter. Under normal conditions, interstellar matter is not visible, but when illuminated by a hot, luminous star, it forms bright nebula's that have a rosy color. The force governing this whole process of formation and, in fact, the star’s subsequent life, is gravity. According to one theory, when a cloud of
A star forming cloud in Cepheus, NASA image
interstellar matter crosses a spiral arm of the galaxy, it begins to condense and the internal gravitational force increases. This makes the cloud contract more rapidly. As the matter condenses, it breaks into pieces and gets hotter. The center of any very large piece reaches temperatures over a million degrees, giving rise to a protostar. Because of this high temperature, a nuclear fusion reaction starts among the hydrogen nuclei.

The energy produced at the center of the protostar stops the contraction and a new star has been formed. The star's internal pressure prevents it from collapsing further under its own gravity. The remnants of the initial cloud form a proto planetary disc that revolves around the star. This matter can end up condensing and forming the planets that accompany the newly formed star. The period of gravitational contraction lasts for about 10–15 million years. Early stars of less than 2 solar masses are called T Tauri stars, while those with greater mass are Herbig Ae/Be stars. These newly born stars emit jets of gas along their axis of rotation, producing small patches of nebulosity known as Herbig-Haro objects.

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Mass of the stars

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Astronomers express the mass of a star in terms of the solar mass, the mass of the sun. For example, they give the mass of Alpha Centauri A as 1.08 solar masses; that of Rigel, as 3.50 solar masses. The mass of the sun is 2 Ž 1030 kilograms, which would be written out as 2 followed by 30 zeros. One of the most massive stars known is Eta Carinae, with 100–150 times as much mass as the Sun; its lifespan is very short—only several million years at most. A recent study of the Arches cluster suggests that 150 solar masses is the upper limit for stars in the current era of the universe. The reason for this limit is not precisely known, but it is partially due to the Eddington luminosity which defines the maximum amount of luminosity that can pass through the atmosphere of a star without ejecting the gases into space.

Stars that have similar masses may not be similar in size -- that is, they may have different densities. Density is the amount of mass per unit of volume. For instance, the average density of the sun is 88 pounds per cubic foot (1,400 kilograms per cubic meter), about 140 percent that of water. Sirius B has almost exactly the same mass as the sun, but it is 90,000 times as dense. As a result, its radius is only about 1/50 of a solar radius. The Hertz sprung-Russell diagram displays the main characteristics of stars. The diagram is named for astronomers Ejnar Hertz sprung of Denmark and Henry Norris Russell of the United States. Working independently of each other, the two scientists developed the diagram around 1910.

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IC1805 or Heart Nebula-Star Forming Nebula

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This is an image of the Wild Field Infrared Survey Explore (WISE), in the constellation of Cassiopeia contains a large star forming Nebula with in the Milky way Galaxy called IC 1805 or the Heart Nebula. IC 1805 is more than 6,000 light years from Earth. And we can also see 2 near by galaxies Maffei 1 & Maffei 2, which were slightly hidden by the dust of IC 1805 and were unknown until 1968 when Paolo Maffei found them using infrared observations. Both Galaxies contain billions of stars and are located some 10 million light years away. Maffei 1 is a lenticular galaxy, which has a disk like structure structure and a central bulge but no spiral structure or appreciable dust content. Maffei 2 is a spiral galaxy that also has a disk shape, but with a bar-like central bulge and two prominent dusty spiral arms.

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Age of the Stars

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The average age of the Star is in between 1billion to 10 billion years old. Some stars are even 13.7 years old, equal to the age of universe. The age of the star is derived through the process of stellar evolution. The life of a star depends only on how much mass the star has. Stars that are 10 times the mass of the Sun will last about 100 million years. Stars with about the Sun's mass last about 13 billion years, and stars about one tenth the mass of our Sun last 100 billion years or longer.
The bigger the star, the shorter it's life span. The little low mass white dwarfs live for over 1trillion years and that of super giants stay for only 10million years.

Fortunately, astronomers describe the age of stars by using telescopes and observing their spectrum, luminosity and motion through space.They use this information to get stars profiles and they conclude the stars age according to its mass. These are rough estimates, but they can be made very precise by astronomers who study the physics of how stars evolve and change with time. As for what the average life time of a star is, it turns out that the average star in our Milky Way is a bit less massive that our Sun. If we look at all the stars near the Sun, we see that most of them are so dim that we would not be able to directly see them in the rest of the Milky Way. They are far more numerous than the dazzling, bright stars we see in the sky with our naked eyes. The average star has a mass of about half that of our Sun, so that means that the average star in our galaxy will live about 50 billion years or so.

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Size of the Stars

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Due to their great distance from the Earth, all stars except the Sun appear to the human eye as shining points in the night sky that twinkle because of the effect of the Earth's atmosphere. Astronomers measure the size of stars by comparing with sun's radius. Alpha Centauri A, with a radius of 1.05 solar radii, is slightly bigger than sun. Rigel is much larger at 78 solar radii, and Antares has a huge size of 776 solar radii, and the super giants like Betelgeuse in the Orion constellation is nearly 1300 solar radii imagine it’s 1300 times bigger than the sun, however Betelgeuse has lesser density than sun.

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