Tuesday, April 8, 2008

2,500 Researchers, 1 Large Hadron Collider, 1 New Snapshot Of The Universe

Deep in the bowels of the earth --100 metres below ground in Geneva, Switzerland -- lies a supermachine of 27 km circumference called the Large Hadron Collider (LHC) that has been built to unlock the mysteries of the universe.

Claude Leroy, a Université de Montréal physics professor, was among the 2,500 scientists from 37 countries recruited to help design, test and build the ATLAS detector at the supermachine that will provide a new perspective into what occurred at the time of the Big Bang and immediately after. Designed for CERN, the European Organization for Nuclear Research, the ATLAS detector, the largest among the four detectors operating at the supermachine in question, is 46 metres in length, 25 metres in height and 7000 tonnes in weight -- or the size of three football fields.

Prof. Leroy was responsible for the radiation and irradiation studies conducted to ensure the ATLAS detector will run smoothly. His investigations also led to the creation of MPX, a small device attached throughout the supermachine and ATLAS that uses pixel silicon detectors to perform real-time measurements of the spectral characteristics and composition of radiation inside and around the ATLAS detector. The small devices essentially capture images of what's inside the detector and its environment, such neutrons and photons, a world-first.

He also participated in physics studies that targeted the production of heavy leptons, excited leptons, quarks and supersymmetry, in particular the study of neutralinos as dark matter candidates. Prof. Leroy's experiments were critical in ensuring the viability of the ATLAS detector at the core of the supermachine, which is the world's biggest particles physics detector. Indeed, before the LHC can be started up, some 38,000 tons of equipment of the supermachine must be cooled down to minus 456 degrees Fahrenheit for the magnets to operate in a superconducting state. This will be achieved by using liquid helium for magnet. Parts of the ATLAS calorimeters use liquid argon cooled at minus 312 degrees Fahrenheit. "The radiation field produced by the operation of the machine and ATLAS is stronger than a nuclear reactor, so it is vital that its design master all aspects of physics," said Prof. Leroy.

Supermachine's Big Bang

The LHC will recreate conditions akin to the Big Bang -- which many scientists believe gave birth to the universe -- by colliding two beams of particles at close to the speed of light. Since it is estimated that only 4 percent of the universe has been charted, the supermachine will help answer the following questions in physics when it is turned on in summer 2008:

  1. What is the unknown 96 percent of the universe made of?
  2. Why do particles have mass?
  3. Why does nature prefer matter over antimatter?
  4. What lies beyond Earth's dimension?

http://www.sciencedaily.com/releases/2008/03/080331122534.htm

Large Hadron Collider world’s largest particle accelerator

It must be unequivocally stated at the outset that the chances of the danger described below actually happening is extremely remote. Having said that, however, it is a fact that two people in the US are pursuing a lawsuit in a federal court in Hawaii to stop scientists from turning on the world’s largest particle accelerator later this year. The men believe that the Large Hadron Collider, as it’s called, which is capable of recreating conditions that existed a trillionth of a second after the Big Bang could also create a small black hole capable of swallowing up the Earth and, in time, parts of the universe too — if not the whole of it.

The scientists involved with the construction and deployment of the $8 billion project that has the potential to revolutionise physics and our understanding of the universe, don’t deny that black holes might, in fact, be created when the machine’s cranked up. But they say these will be microscopic in size and will decay and evaporate in next to no time before any serious swallowing can begin.

However, a spokesperson of the Collider group also said: “Assuming our wildest fantasies, how much matter can one of these black holes consume in a second, in a year or even in several billion years? A black hole we make would only consume a tiny fraction of a gram of matter from Earth. There’s no possibility of causing any damage to the Earth.”

The scientists are almost certainly right — especially since they speak after having addressed such concerns by initiating two safety studies earlier and a third anonymous one last year. Nevertheless, where the well-being of the Earth is concerned (actually its very existence in this case) along with all life on it, no amount of safeguards is too much. One has only to see the havoc of global warming caused by burning fossil fuels indiscriminately to realise that unchecked by-products can have a runaway cascading effect. In this case it won’t even be like a factory that can’t dispose of its by-product. Instead, the by-product will dispose of the factory — and everything else.

It is, of course, a grand tribute to human intelligence that scientific endeavour can unlock the ultimate mysteries of the universe and, in doing so, relate itself to the rest of existence. But it would be far more than merely ironic to find that in trying to discover our beginnings we deliver our ends.

http://economictimes.indiatimes.com/News/News_By_Industry/Where_one_cant_be_too_careful/articleshow/2933635.cms

Large Hadron Collider (LHC)

Back in the old days before terrorists and tsunamis, it was always the labcoat-wearing mad scientists who were going to destroy the Earth in one of their crazy experiments. In the movies, scientists were always the ideal scapegoats - bald apart from two tufts of hair, certifiably mad, and without a friend in the world. Well, scientists are back in the firing line again. As the Large Hadron Collider (LHC) in Europe gets closer to completion, there is a paranoid groundswell telling the world that this science experiment will unleash uncontrollable forces, wreck the planet and kill us all.

The LHC has actually been designed to answer some of the big questions in physics, such as, what is mass. There are so many questions. For example, think about some of the sub-atomic particles, such as electrons and quarks. They are just points - they have no size. And in between them, there is a vacuum. So these sub-atomic particles are mathematical figments floating in nothing. Even worse, these mathematical figments have weird properties like charge, and mass. The LHC, when it switches on in late 2008, will help solve some of these crazy mysteries. To do this, it will recreate some of the titanic energies found immediately after the Big Bang.

The Large in LHC is not an exaggeration - it's enormous. It's an underground tunnel, shaped like a ring, that straddles the borders of Switzerland and France. Over 2500 scientists from 37 countries are labouring to build just one of its four detectors - which by itself, has more iron than the Eiffel Tower. The LHC will generate so much raw data that if it were stored on CDs, the stack would grow at 1.6 kilometres per month. The project will employ about half of all the particle physicists in the world.

Its name tells you what it does. 'Hadrons' are microscopic particles (such as the protons or neutrons in the core of an atom) that in turn, are made of even smaller sub-atomic particles. The LHC will collide beams of protons together. And hopefully the products of the collision will include the long sought after Higgs Particle, which is thought to endow everything in the universe with the strange property we call 'mass'.

The protons will travel at 99.99991% of the speed of light through pipes 27 kilometres in circumference, buried 50-100 metres underground. At that speed, the protons will have the energy of an express train. They will be kept travelling in a curved path by the largest array of superconducting magnets ever built, cooled by 130 tonnes of liquid helium. The liquid helium will be colder than the temperature of deep space.

You've probably heard that mass and energy can be turned into each other. In a nuclear weapon, a small amount of mass is turned into a huge amount of energy. In the LHC, the opposite happens - energy is turned into mass. In a bizarre example of how mass and energy can be interchanged, two small fast-moving protons will collide to make much-heavier slower particles - as though two nippy Cessna planes collided to make a lumbering bus. The energy in the 'speed' of the protons will hopefully be converted to the mass of the Higgs Particle.

Over the last decade, uninformed scare-mongers have spread disaster scenarios, with the LHC destroying the Earth, and even the universe. They say (quite correctly) that it's theoretically possible for the LHC to create mini-black holes. They then conveniently ignore the rest of the same theory that points out that the black holes would evaporate almost immediately. Instead, they wrongly claim that the mini-black holes would rapidly eat the Earth.

The scare-mongers also claim that the colliding protons in the LHC have enormous energies, and so something totally unforeseen in our current theories might happen. Well, cosmic rays with energies many tens of millions of times greater than the speeding protons in the LHC have been smashing into all the planets and moons in our solar system for billions of years - and we're all still here. So let's give it a whirl, and see what we find.

http://www.abc.net.au/science/articles/2008/04/08/2211092.htm?site=science/greatmomentsinscience&topic=latest

Sharp LC42XL2E 42" Full HD Slimline LCD TV

PRODUCT FEATURES:

42 inch Aquos Full High Definition LCD TV with built-in digital tuner (DVB-T) and dynamic contrast ratio of 10000:1

100Hz Double frame drive. Slim frame and super thin design

De-Juddering picture enhancement technology, 4ms response time and 3x HDMI outputs

10bit Signal processing for smoother color gradients

Highlights of the Sharp 42" Full HD Slimline LCD TV

  • 42 inch Aquos Full High Definition LCD TV with built-in digital tuner (DVB-T) and dynamic contrast ratio of 10000:1
  • 100Hz Double frame drive. Slim frame and super thin design
  • De-Juddering picture enhancement technology, 4ms response time and 3x HDMI outputs
  • 10bit Signal processing for smoother color gradients

Specifications

Freeview Built In
Yes
HDMI Inputs
3

Aerial

Type
None

Audio System

Features
Auto volume adjustment
Output Power / Total
30 Watt
Sound Effects (JA)
SRS TruSurround XT
Sound Output Mode
Stereo
Speakers Included
2 speakers
Surround Mode
Built-in

Battery

Type
None

Digital Storage Media

Type
None

Dimensions & Weight

Comments (JA)
Without stand
Depth
9.6 cm
Height
64.6 cm
Width
100 cm

DVD

Type
None

Header

Manufacturer
Sharp
Model
42XL2E
Product Line
Sharp LC

Power Device

Form Factor
Internal
Frequency Required
50 Hz
Nominal Voltage
AC 230V
Power Consumption Operational
242 Watt
Power Consumption Stand by / Sleep
0.5 Watt
Type
Power supply

Radio System

Type
None

Remote Control

Technology
Infrared
Type
Remote control

Remote Control (2nd)

Type
None

Stands & Mounts

Stand Design
Tabletop
Stand Included
Built-in

Television

Backlight Life
60,000 hour(s)
Brightness
450 cd/m2
Comb Filter
3D-Y/C digital
Diagonal Size
42 in
Diagonal Size (cm)
107 cm
Digital Television Certification
HD ready 1080p
Display Format
1080p (FullHD)
Features
On-screen menu
TruD technology
HD Ready
Yes
Image Aspect Ratio
16:9
Image Contrast Ratio
2000:1
PC Interface
VGA (HD-15)
Pixel Response Time
4 ms
Progressive Scan
Progressive scanning (line doubling)
Resolution
1920 x 1080
Series
Aquos
Technology
TFT active matrix
Type
LCD TV
Video Interface
Component
Composite
HDMI
S-Video
SCART
Viewing Angle
176 degrees
Viewing Angle (Vertical)
176 degrees
Widescreen
Widescreen

TV Tuner

Analogue TV Tuner
PAL
SECAM
Digital TV Service
FREEVIEW
Digital TV Tuner
DVB-T
Stereo Reception System
A2
NICAM
Teletext
Yes
Tuners Configuration
1x analogue
1x digital
TV Tuner Presence
Built-in

http://www.dabs.com/productview.aspx?quicklinx=4QLP

LC42XL2E 42 inch 100Hz HD Ready 1080P Slimline LCD TV

42 inch Aquos HD Ready 1080P LCD TV with built-in digital tuner (DVB-T) and dynamic contrast ratio of 10000:1. 100Hz Double frame drive. Slim frame and super thin design. De-Juddering picture enhancement technology, 4ms response time and 3x HDMI outputs. 10bit Signal processing for smoother colour gradients. 24Hz Compatible.



Specification

Screen size (inches): 42

HD technology: HD Ready 1080P

IDTV Freeview DVB tuner: Yes

Wall mountable: Yes

Teletext built in: Yes

Aspect ratio: 16:9

Screen resolution (pixels): 1920 x 1080

Response time (ms): 4

Brightness (cd/m2): 450

Contrast ratio: 2000:1


http://www.sharp.co.uk/invt/lc42xl2e