Astronaut Tim Peake invites students to apply for space class of 2013

European Space Agency (ESA) astronaut of British nationality Tim Peake is encouraging school children to get fit and stay active at the Farnborough International Airshow this week. Budding young astronauts aged 8 to 13 from across the UK are invited to take part in the international challenge Mission X: Train Like an Astronaut – a programme to encourage school students to focus more on fitness and nutrition.

Tim Peake.

The programme developed by the partners of the International Space Station (ISS) uses astronaut training to teach how good diet and exercise play an important role in human performance in space and on the Earth. The programme is free and the activities can be used by individuals, schools or community groups. The international challenge will start in January 2013.

Mission X logoTim Peake is taking a short break from his own astronaut training to attend the Airshow and invite schools to participate in the Mission X: Train Like an Astronaut 2013 challenge. At Farnborough Airshow Tim spoke to teachers, students and families about his own astronaut training and challenged them to take part in the astronaut fitness programmes available as part of Mission X.

Tim as well as being a test pilot and ESA astronaut is also a keen runner, skier and scuba diver.
4000 UK students from over 44 British schools have already taken part in the Mission X challenges in 2011 and 2012. Students had the opportunity to take part in live link-ups with the International Space Station and find out about life in space. As well as Tim Peake, Mission X UK has been supported by ESA astronauts Andr Kuipers and Paolo Nespoli, NASA astronaut Piers Sellers and private astronaut Richard Garriott.
Jeremy Curtis, Head of Education at the UK Space Agency noted:

The UK Space Agency is enabling children to access astronaut training and nutrition regimes and learn about the science behind them

“This is a unique opportunity to find out first hand about astronaut training and to find out how you can get involved in Mission X – Train Like An Astronaut. The UK Space Agency is enabling children to access astronaut training and nutrition regimes and learn about the science behind them. The children taking part will also learn about space and could be the space explorers of the future.”

Tim Peake commented:
Spaceflight can be physically demanding and part of my job is to train hard so that I‘m always ready to go into space

“Being fit and healthy is a key requirement for future astronauts. Spaceflight can be physically demanding and part of my job is to train hard so that I‘m always ready to go into space. It’s much easier to exercise on earth than in microgravity! The real mission is to encourage kids today to exercise and eat a healthy diet, and astronaut training exercises are an exciting, fun way to do it.”

People have been flocking from around the world to visit the UK Space Agency in the Space Zone at Farnborough. The latest industry developments and cutting edge technology are on display to demonstrate the work being done to layout the future direction for space. Space is a growing industry with a bright future. One of the ways the Agency nourishes and supports it is by inspiring the next generation of space scientists, engineers and enthusiasts.

The next Mission X challenge will be launching in January 2013 – with the expectation of doubling the intake from 4000 to 8000 students across the UK. To find out more about how your children or school can be involved, register your interest.

CubeSat Launch Success

The HTV-3 cargo vessel carrying five CubeSats blasted off on an H-IIB rocket from the Tanegashima Space Center on Saturday, July 21 at 02:06 UT on its way to the International Space Station (ISS).

On July 27 it is scheduled to arrive at the ISS  where it will be grappled by the Expedition 32 crew using the station’s Canadarm2 robotic arm and attached to the forward end of the Harmony module to begin a stay of just under a month.

Onboard are four amateur radio CubeSats, F-1, We-Wish, FitSat-1 and TechEdSat along with a scientific CubeSat Raiko.

The CubeSats will remain on the ISS until the first week in September when they will be deployed by Japanese astronaut and radio amateur Akihiko Hoshide KE5DNI using the ISS Kibo robot arm.

The F-1 CubeSat carries a pair of Yaesu VX-3R handheld transceivers to provide communications on 145.980 MHz and 437.485 MHz FM using AX.25 packet radio data.

FITSAT-1 will carry an Optical Communications experiment that aims to write Morse Code across the night sky, although only when in range of Japan. It will also transmit CW on 437.250 MHz, FM AX.25 data on 437.445 MHz and high speed data on 5840.00 MHz.

We-Wish will transmit  on 437.505 MHz FM AX.25 data.
TechEdSat will transmit on 437.465 MHz and will also communicate via the Iridium and Orbcomm satellite phone networks, a first for a CubeSat.

Watch the launch of the HTV-3

Video of planned deployment of F-1 CubeSat XV1VN from the ISS http://www.uk.amsat.org/8446

F-1 CubeSat on TV http://www.uk.amsat.org/8861

KJ6TVO “Pursuing My Childhood Dream”

Radio amateur Ali Guarneros Luna KJ6TVO features in an SJSU Today article.

She is part of an SJSU student team that worked on the cube satellite TechEdSat, one of five CubeSats being transported to the International Space Station.

Ali was born in Mexico City and now lives in San Jose, California. She received her BS in Aerospace Engineering at San Jose State University in 2010 and completes her MS in Aerospace Engineering from San Jose State University in 2012.

She currently works with the Edison Program, Small Spacecraft Payload and Technologies (SSPT) and SPHERES National Lab at NASA Ames Research Center. Under the Edison Program, Ali works on development of CubeSat projects, including TechEdSat, as the System Engineering, Mission And Ground Operations, and Launch Vehicle Service expert.

Read the full SJSU article at
http://blogs.sjsu.edu/today/2012/spartans-at-work-at-nasa-ames-im-pursuing-my-childhood-dream/

Watch Spartans at Work: Building Satellites at NASA

Radio Amateur Encourages Engineering as a Career http://www.uk.amsat.org/5621

Live TV broadcast for launch of HTV-3 CubeSats http://www.uk.amsat.org/9006

KJ6TVO “Pursuing My Childhood Dream”

Ali Guarneros Luna KJ6TVO - Image credit NASA Ames

Ali Guarneros Luna KJ6TVO – Image credit NASA Ames

Radio amateur Ali Guarneros Luna KJ6TVO features in an SJSU Today article.

Ali Guarneros Luna KJ6TVOShe is part of an SJSU student team that worked on the cube satellite TechEdSat, one of five CubeSats being transported to the International Space Station.

Ali was born in Mexico City and now lives in San Jose, California. She received her BS in Aerospace Engineering at San Jose State University in 2010 and completes her MS in Aerospace Engineering from San Jose State University in 2012.

She currently works with the Edison Program, Small Spacecraft Payload and Technologies (SSPT) and SPHERES National Lab at NASA Ames Research Center. Under the Edison Program, Ali works on development of CubeSat projects, including TechEdSat, as the System Engineering, Mission And Ground Operations, and Launch Vehicle Service expert.

Read the full SJSU article at
http://blogs.sjsu.edu/today/2012/spartans-at-work-at-nasa-ames-im-pursuing-my-childhood-dream/

Watch Spartans at Work: Building Satellites at NASA

Radio Amateur Encourages Engineering as a Career http://www.uk.amsat.org/5621

Live TV broadcast for launch of HTV-3 CubeSats http://www.uk.amsat.org/9006

Introduction to satellite tracking and listening

Orbitron Screenshot

This video covers the basics of satellite tracking using the free Orbitron software.

Watch Introduction to satellite tracking and listening part 1 of 2

Watch Introduction to satellite tracking and listening part 2 of 2

Watch Satellite tracking example using HO-68 and Orbitron

Orbitron satellite tracking software http://www.stoff.pl/

Tiny ‘Firefly’ Satellite Set To Flash Straight Into Lightning and Thunderstorms

Illustration showing Firefly, a mark-carton-sized satellite, gathering data on a gamma-ray burst.

Firefly, a milk-carton-sized satellite, will study gamma-ray bursts that accompany lightning.
Credit: Zina Deretsky, National Science Foundation

‘CubeSat’ will help solve mysteries of terrestrial gamma ray flashes, 1,000 times more powerful than ‘northern lights’

NSF’s Therese Moretto Jorgensen explains what CubeSats tell us about the atmosphere.
Credit: National Science Foundation

imagine a fully-instrumented satellite the size of a half-gallon milk carton.

Then imagine that milk carton whirling in space, catching never-before-seen glimpses of processes thought to be linked to lightning.

The little satellite that could is a CubeSat called Firefly, and it’s on a countdown to launch next year.
CubeSats, named for the roughly four-inch-cubed dimensions of their basic building elements, are stacked with modern, smartphone-like electronics and tiny scientific instruments.
Built mainly by students and hitching rides into orbit on NASA and U.S. Department of Defense launch vehicles, the small, low-cost satellites recently have been making history. Many herald their successes as a space revolution.
Several CubeSat projects funded by the National Science Foundation (NSF) are currently in orbit, making first-of-their-kind experiments in space and providing new measurements that help researchers understand Earth’s upper atmosphere.
Atmospheric scientist Allan Weatherwax of Siena College offers a glimpse inside a CubeSat.
Credit: National Science Foundation

Firefly is designed to help solve the mystery of a phenomenon that’s linked with lightning: terrestrial gamma rays, or TGFs.
Bursts of gamma rays usually occur far out in space, near black holes and other high-energy cosmic phenomena.  Scientists were surprised when, in the mid-1990s, they found powerful gamma-ray flashes happening in the skies over Earth.

Powerful natural particle accelerators in the atmosphere are behind the processes that create lightning. TGFs result from this particle acceleration.
Individual particles in a TGF contain a huge amount of energy, sometimes more than 20 mega-electron volts. The aurora borealis, for example, is powered by particles with less than one-thousandth as much energy as a TGF.

But what causes a TGF’s high-energy flashes? Does it trigger lightning–or does lightning trigger it? Could it be responsible for some of the high-energy particles in the Van Allen radiation belts, which can damage satellites?
Firefly soon will be on the job, finding out.

Illustration of Firefly orbiting high in the atmosphere above Earth.

Firefly, as it will look once launched high into the atmosphere above Earth.
Credit: NASA

The CubeSat will look specifically for gamma-ray flashes coming from the atmosphere, not space, conducting the first focused study of TGF activity.

The Firefly team is made up of scientists and students at Siena College in Loudonville, N.Y.; NASA Goddard Space Flight Center in Greenbelt, Md.; the Universities Space Research Association in Columbia, Md.; the Hawk Institute for Space Science, Pocomoke City, Md.; and the University of Maryland Eastern Shore, Princess Anne, Md.

Students are involved in all aspects of the mission, from design and development, through fabrication and testing, to operations and data analysis.

Illustration of Firefly gathering data on a terrestrial gamma ray originating from lightning.

Firefly ‘catching’ a terrestrial gamma ray, or TGF, in action.
Credit: NASA

Firefly will carry a gamma-ray detector along with a suite of instruments to detect lightning, says Therese Moretto Jorgensen, program director in NSF’s Division of Atmospheric and Geospace Sciences, which funds Firefly and its CubeSat companions in space.

The CubeSat will return the first simultaneous measurements of TGFs and lightning.
When thunderstorms happen, powerful electric fields stretch upward for miles, into the upper atmosphere. These electric fields accelerate free electrons, whirling them to speeds that are close to the speed of light.

When these ultra-high-speed electrons collide with molecules in the air, they release high-energy gamma rays as well as more electrons, starting a cascade of electrons and TGFs.”Gamma rays are thought to be emitted by electrons traveling at or near the speed of light when they’re slowed down by interactions with atoms in the upper atmosphere,” says Moretto Jorgensen. “TGFs are among our atmosphere’s most interesting phenomena.”

Atmospheric scientists think TGFs occur more often than anyone realized and are linked with the 60 lightning flashes per second that happen worldwide, says scientist Allan Weatherwax of Siena College, a lead scientist, along with Doug Rowland of NASA’s Goddard Space Flight Center, on the Firefly project.

Build-up of electric charges at the tops of thunderclouds from lightning discharges can create a large electric field between clouds and the ionosphere, the outer layer of Earth’s atmosphere. But how this might lead to TGFs is unknown.

“Firefly will provide the first direct evidence for a relationship between lightning and TGFs,” says Weatherwax. “Identifying the source of terrestrial gamma-ray flashes will be a huge step toward understanding the physics of lightning and its effect on Earth’s atmosphere.”
Unlike lightning, a TGF’s energy is released as invisible gamma rays, not visible light. TGFs therefore don’t produce colorful bursts of light like many lightning-related phenomena. But these unseen eruptions could help explain why brilliant lightning strikes happen.
Following Firefly is FireStation, a set of miniaturized detectors for optical, radio and other lightning measurements.FireStation will fly a bit higher than Firefly.
Its orbit is on the International Space Station.

Cheryl Dybas, NSF (703) 292-7734 cdybas@nsf.gov