Showing posts with label Antennas. Show all posts
Showing posts with label Antennas. Show all posts

Monday, December 2, 2013

Engineering antennas into solar panels

Researchers at EPFL have managed to combine antennas and solar cells to work together with unprecedented efficiency in a near future. 

This is a first step towards more compact and more lightweight satellites.

The technology could also be deployed in the autonomous antenna systems used in the aftermath of natural disasters.

Traditionally, telecommunication antennas and solar cells have never really worked well together, as they have to function independently of each other in order to avoid interference.

This has an impact on the weight and size of satellites - the surface area has to be large enough for both antenna systems, which emit and receive data, and solar panels, which supply the electricity.

For his master project, Philippe Dreyer, who is part of Julien Perruisseau-Carrier Group, has been working on ways to combine solar cells and antennas.

Julien Perruisseau-Carrier
In collaboration with the Transparent Conductive Oxides group (TCOs) which is part of the Photovoltaics and Thin Film Electronics Laboratory (PV-Lab), he has developed a mixed surface that allows both the antenna and the photovoltaic cell to perform extremely efficiently.

This could substantially reduce the volume, weight and cost of satellites but not only that. Mobile and autonomous communications systems are often necessary to keep in contact with people in the wake of a natural disaster.

This new technology would make these systems lighter and therefore easier to carry around. "Our device could also support flexible implementation.

It could be folded up so that it isn't deployed until the relief area has been reached," states Julien Perruisseau-Carrier, who supervised the project.

More information: "Copper and Transparent-Conductor Reflectarray Elements on Thin-Film Solar Cell Panels." Philippe Dreyer, Monica Morales-Masis, Sylvain Nicolay, Christophe Ballif, Julien Perruisseau-Carrier. arXiv:1311.4737 [physics.optics] arxiv.org/abs/1311.4737

Monday, November 26, 2012

ALMA Antenna: Final North American Antenna Delivered


After an odyssey of design and construction stretching across more than a decade, North America has delivered the last of the 25, 12-meter-diameter dish antennas that comprise its share of antennas for the international ALMA telescope.

This is an important milestone in the construction of an observatory that astronomers are already using to open up a "final frontier" of the spectrum of invisible light to high-resolution exploration.

ALMA, the Atacama Large Millimeter/submillimeter Array, stretches across more than 75 square miles of a high-altitude desert plain in northern Chile.

The scientific communities of North America, Europe, and East Asia have banded together to build the observatory, and are sharing its $1.3 billion cost.

When completed, ALMA will have a total of 66 antennas, 25 from North America, 25 from Europe, and 16 from East Asia.


Completed Final North American ALMA Antenna.

CREDIT: General Dynamics SATCOM Technologies, Bill Johnson.

"We are delighted to deliver this final ALMA antenna from North America," said Mark McKinnon, the North American ALMA Project Director at the National Radio Astronomy Observatory (NRAO) in Charlottesville, Virginia.

"It is a real testimony to the production team that we were able to overcome many technical challenges to complete the antenna delivery."

Faint radio waves, emitted naturally by gas and dust in space, will be detected and measured by the antennas, with the measurements then processed by a supercomputer to generate images as detailed as would come from a single dish that was miles across.

These images will give astronomers insights into previously invisible or unresolved processes of planet, star, and galaxy evolution, both nearby and across cosmic time.

The technique of combining radio telescopes to form a virtual, high-resolution instrument has been in use for decades. For example, the National Science Foundation's (NSF's) recently revitalized Very Large Array (VLA) in New Mexico uses this technique to explore the Universe as seen in centimeter-wavelength light. ALMA is the first VLA-scale array to attempt this feat at millimeter and submillimeter wavelengths.

For these shorter wavelengths, an antenna dish surface must be more precise, able to maintain its parabolic curvature to within the thickness of a human hair amidst harsh conditions at the 16,500-foot high ALMA site.

Funding to build the 25, 110-ton North American antennas was provided by the NSF, in the largest single procurement in the history of the foundation's astronomy division.

Associated Universities, Inc. (AUI) managed the contract, while NRAO oversaw the integration and testing of the antennas, which were manufactured and assembled by General Dynamics SATCOM Technologies.

Each antenna's pedestal and dish structure components were shipped separately to the ALMA site, and assembled in a huge hanger building, also built by General Dynamics.

Once ALMA is completed next year, it is expected to serve as a state-of-the-art radio telescope for thirty years or more.

"This is a very exciting time in astronomy," commented Tony Beasley, NRAO Director. "With ALMA we are taking perhaps the greatest leap in observing power in the history of the science."

Ethan Schreier, president of AUI, said "ALMA is the largest, most expensive ground-based astronomy project ever attempted, and a model for international science collaborations.

The success of the partnership is manifest in the achievement of this milestone, but will be even more evident in the legacy of discovery and understanding that is going to emerge over the coming years, as tomorrow's eager astronomers get their hands on this fantastic telescope."

Saturday, January 28, 2012

Orbital Space debris update

The latest Orbital Debris Quarterly News has the good news that, barring another satellite collision or other debris-creating event, the number of catalogued debris should drop over the next two years.


The deliberate destruction of the Fengyun-1C satellite in January 2007 created 3,218 pieces of trackable debris, and only about 200 of those have re-entered the atmosphere.

As the solar activity increases leading up to solar maximum in 2013, more of that debris should be cleared out.

NB: Readers in the northern latitudes should look out for more auroras.

Speaking of space debris, an experiment from 1963 deliberately placed millions of tiny copper needles in medium Earth orbit.

Project West Ford created an artificial ionosphere to help the military, back in the days before communication satellites.

The needles were 0.7 inches long and less than half the diameter of human hair (17.8 micrometers).

These were the right size dipole antennas for the 8 GHz wavelength used in the study.

Most of them re-entered the atmosphere by 1970, but there are still some in orbit today.


Electric fields (blue) and magnetic fields (red) radiated by a dipole antenna.

A spacecraft from an earlier attempt in 1961 is also still in orbit. Protests over this experiment led to the addition of a consultation clause in the 1967 Outer Space Treaty. 

The result was, basically, all nations should sumit controversial proposals to the group before they did something that might wreck space for the rest of us.

If they had introduced more of these orbiting dipole antennas into the Earth's atmosphere, they could have wrecked global radio and microwave telescope observations.

Thursday, December 8, 2011

The birth of a Radio Telescope 30 times larger than Earth

Artist's impression of Spektr-R, the 10-meter space-borne antenna of the RadioAstron project. Credit: Lavochkin Association.

On 15 November 2011, the Effelsberg 100-meter radio telescope, together with three Russian and one Ukrainian telescope, took part in the first interferometric observations with the orbiting 10-meter antenna Spektr-R of the Russian RadioAstron project. 

The observations were made at a wavelength of 18 centimeters, targeting the distant, bright, and very compact quasar 0212+735. 

Interferometric signals have been successfully detected by the RadioAstron team between Spektr-R and the ground antennas, setting a new world record for the size of a radio interferometer and opening a new era in interferometric studies of cosmic radio emission. 

Wednesday, May 4, 2011

Intelsat Reports Antenna Reflector Deployment Delay with New Dawn

Intelsat S.A. has reported a delay in deploying the west antenna reflector on the Intelsat New Dawn satellite, launched on 22 April 2011. The satellite's solar arrays have been successfully deployed and the satellite has power and otherwise nominal performance.

Orbital Sciences Corporation ("OSC"), the satellite's manufacturer, is responsible for the orbit raising activities of Intelsat New Dawn. OSC indicated to Intelsat that it has executed the procedure to release the west antenna reflector and that telemetry confirms successful release of the reflector. However, other satellite data indicates that the west reflector is not deployed.

Intelsat and OSC are investigating this issue and assessing possible corrective actions. A satellite's antenna reflectors are an essential element of the communications payload; the west reflector controls communication in the C-band frequency.

Deployment of the east Ku-band antenna reflector has been delayed pending resolution of the current situation.

The Intelsat New Dawn satellite is owned by a joint venture between a consortium led by Convergence Partners of South Africa and Intelsat. Intelsat New Dawn is to replace Intelsat's Galaxy 11 satellite at 32.8 degrees East. Galaxy 11 has an estimated useful life through April 2015. Intelsat New Dawn is insured for its launch and in-orbit operations.

Tuesday, March 8, 2011

NASA Juno Spacecraft Currently Undergoing Environmental Testing

NASA's Juno spacecraft is currently undergoing environmental testing at Lockheed Martin's test facility near Denver, Colo.

The solar-powered Juno will orbit Jupiter's poles 33 times to find out more about the gas giant's origins, structure, atmosphere and magnetosphere. The launch window for Juno from the Cape Canaveral Air Force Station in Florida opens Aug. 5, 2011.

In its present form, the spacecraft is fully assembled and all instruments have been integrated.

In this photo taken on Jan. 26, Juno had just completed tests that simulated the acoustic and vibration environment the spacecraft will experience during launch.

The photo shows a Lockheed Martin technician inspecting the Jovian Auroral Distribution Experiment (JADE) instrument just after the test.

All three solar array wings are installed and stowed and the large high gain antenna is in place on the top of the avionics vault.

At present, Juno is sealed up in a large thermal vacuum chamber where it is being exposed to the vacuum and extreme hot and cold temperatures it will experience on its voyage to Jupiter. The two-week-long test will simulate many of the flight activities the spacecraft will execute during the mission.

Juno is scheduled to ship from Lockheed Martin's facility to Kennedy Space Center in early April where it will undergo final preparations for launch.

NASA's Jet Propulsion Laboratory, Pasadena, Calif., manages the Juno mission for the principal investigator, Scott Bolton, of Southwest Research Institute at San Antonio, Texas.

Lockheed Martin Space Systems, Denver, Colo., is building the spacecraft. The Italian Space Agency in Rome is contributing an infrared spectrometer instrument and a portion of the radio science experiment.

Tuesday, May 18, 2010

Reisman, Bowen Complete First STS-132 Spacewalk

Reisman, Bowen Complete First STS-132 Spacewalk

Astronauts Garrett Reisman and Steve Bowen completed a seven hour, 25 minute spacewalk at 3:19 p.m. EDT.

The new space-to-ground antenna they installed will increase the space station's ability to conduct two-way data, voice, and video communications.

They put into place a new tool platform for the Dextre robot, and Bowen prepared six batteries that will be installed during the second and third spacewalks by loosening the bolts that hold the batteries in place. The batteries weigh approximately 2,200 pounds.

Meanwhile, the space shuttle's robotic arm has successfully grappled the Mini Research Module-1 for relocation to the space station on flight day 5. It will provide additional storage space and a new docking port for Russian spacecraft.

This was the first of three STS-132 spacewalks, 237th conducted by U.S. astronauts, the second for Reisman and the fourth for Bowen. It was the 144th in support of International Space Station assembly and maintenance, totaling 900 hours, 58 minutes. First Spacewalk of STS-132 Complete

Mission Specialists Garrett Reisman and Stephen Bowen completed the first spacewalk of the STS-132 mission at 3:19 p.m. EDT. They installed a second station space-to-ground Ku-band antenna and a spare parts platform on Dextre, the two-armed robotic Special Purpose Dexterous Manipulator. The spacewalk lasted 7 hours, 25 minutes.

Wednesday, December 9, 2009

ESA: Galileo GPS Antennas tests under way

Antennas for the Galileo in-orbit verification engineering model satellite under test in the anechoic chamber at EADS Astrium, Portsmouth, UK.
The chamber is lined with materials that absorb the radiation emitted by the antennas, simulating space conditions. The antennas are mounted on a structure that holds them in the same positions as they will occupy when mounted on the satellite.
Credits: ESA / EADS Astrium UK