Showing posts with label cutting-edge. Show all posts
Showing posts with label cutting-edge. Show all posts

Wednesday, April 9, 2014

Cherenkov Telescope Array (CTA): CHEC a cutting-edge camera

This colourful piece of electronics is a photomultiplier module for the CHEC camera undergoing testing. 

Credit: Fabricio Sousa/SLAC

Key components for a new type of camera that will collect only the faintest, fastest flashes of light in the night sky are being assembled and tested now at SLAC.

Their eventual destination: the first Compact High-energy Camera (CHEC), which will be installed in a prototype telescope for the Cherenkov Telescope Array (CTA).

The CTA is a ground-based gamma-ray observatory currently under development by an international consortium with more than 1000 members from 27 countries.

The CTA will detect ultra-high-energy gamma rays, which are beyond even the reach of the Fermi Gamma-ray Space Telescope.

Current plans call for the observatory to comprise two separate arrays, one in the Northern Hemisphere and one in the Southern Hemisphere, totaling more than 100 telescopes of three different sizes.

The telescopes are now under development. Researchers at SLAC are testing modules of electronic components for the first CHEC camera, which will be installed on a prototype telescope later this year.

But most gamma rays from cosmic sources are blocked by the Earth's atmosphere. What will the camera be looking at?

'Seeing' Gamma Rays
Gamma rays are the most energetic form of electromagnetic radiation – energetic enough they cause showers of secondary particles when they hit the atmosphere.

The particles race toward the ground so fast they break the speed of light in our atmosphere.

This is considerably slower than the speed of light in a vacuum, but still speedy enough to cause them to emit a form of radiation called Cherenkov radiation.

All 32 of the photomultiplier modules for the CHEC camera. 

Credit: Tobias Jogler/SLAC

"It's really just light – bluish light," said Stefan Funk, an astrophysicist at the Kavli Institute for Particle Astrophysics and Cosmology (KIPAC), a joint SLAC-Stanford institute.

Its a faint blue light that flashes on and off in about five nanoseconds: "If we had nanosecond eyes, we could see it," he said.

Unfortunately we don't have nanosecond eyes, and neither do CCD cameras, which are the type of camera generally used at observatories to collect light. That's where the CHEC camera comes in.

Nanosecond Eyes
Each CHEC camera contains modules of customized electronic components, beginning with photomultipliers.

A photomultiplier can capture a single photon, or particle of light, and amplify its signal for a detector to read.

But the real heart of each module is a special integrated circuit chip called a TARGET chip, developed at the University of Hawaii in collaboration with SLAC researchers.

Each TARGET chip can read the signals from 16 individual pixels on a photomultipliers one billion times a second, fast enough to capture the flashes of Cherenkov light.

"The prototype camera we're building uses 32 modules, each with a 64-pixel photomultiplier and four TARGET chips," said KIPAC postdoctoral researcher Luigi Tibaldo.

"It will be installed on a prototype of the smallest telescope," which represents the majority of instruments needed for the arrays; the TARGET chips are also under consideration for some of the mid-sized telescopes under development.

This adds up to around 60 telescopes to equip, making cost an important factor in the design.

Luigi Tibaldo of SLAC (center) and collaborators Shigeki Hirose of the University of Nagoya (left) and Mark Bryan of the University of Amsterdam (right) in Building 84, where they're testing the photomultiplier modules for the CHEC camera. 

Credit: Fabricio Sousa/SLAC

To address this issue, the modules can easily be mass-produced, Funk said.

Their colleague Gary Varner of the University of Hawaii works with industry partners to create the TARGET chips and the photomultipliers are supplied by Hamamatsu Photonics, a Japanese firm.

Sunday, January 5, 2014

ISRO: India launches cutting-edge cryogenic rocket

India on Sunday successfully launched its first rocket using domestically produced booster technology after several previous missions had failed, taking another step forward in its ambitious space programme.

The Indian-made cryogenically-powered rocket blasted off from the southern Satish Dhawan spaceport of Sriharikota as scheduled, as Delhi tries to join an elite club of countries which have mastered the complex technology.

The 415-tonne rocket deployed a two-tonne advanced communications satellite some 17 minutes after blast-off, said Indian Space Research Organisation (ISRO) chairman Dr K. Radhakrishnan.

"I am extremely proud and happy to say that Team ISRO has done it," Radhakrishnan announced at mission control in Andhra Pradesh state, sparking a roar of applause from colleagues.

"Team ISRO and the project directors all have put their heart and soul in making this proud moment for the country," he said.

Dr K. Radhakrishnan
India has for years been trying to develop its own cryogenic rocket engines that are designed to put heavier satellites into high orbits, about 36,000 kilometres (22,000 miles) from Earth.

The powerful booster technology, using super-cooled liquid fuel, is a much needed tool to help India capture a larger share of the lucrative global market for launching commercial satellites.

But the technology has only been successfully developed by a handful of countries including the United States, Russia, France, Japan and China as well as the European Space Agency (ESA).

India's project has had to overcome a string of hurdles and mishaps, including an aborted launch in August last year several hours before lift-off after fuel was found to be leaking from one of the rocket's engines.

The first India-built rocket crashed into the Bay of Bengal just minutes after take-off in April 2010 after the cryogenic engines failed to ignite.

"If we succeed this time, India will join a select club of space-faring nations with indigenous cryogenic engine capability to launch above two-tonne class satellites," ISRO director Deviprasad Karnik told reporters before the launch.

"The twin purpose of this launch mission is to flight-test once again our own cryogenic engine and put into the geostationary orbit a heavy communication satellite," Karnik added.

Prime Minister Manmohan Singh congratulated the team on Sunday's mission, which cost 3.65 billion rupees ($58 million) -- 2.2 billion rupees for the rocket and 1.45 billion rupees for the satellite.

"It is yet another important step that the country has taken in the area of science and technology," Singh said.