lundi 22 septembre 2014

Cassini spacecraft captures Odd Trio










NASA/ESA - Cassini International logo.

September 22, 2014

The Odd Trio

The Cassini spacecraft captures a rare family photo of three of Saturn's moons that couldn't be more different from each other! As the largest of the three, Tethys (image center) is round and has a variety of terrains across its surface. Meanwhile, Hyperion (to the upper-left of Tethys) is the "wild one" with a chaotic spin and Prometheus (lower-left) is a tiny moon that busies itself sculpting the F ring.

This view looks toward the sunlit side of the rings from about 1 degree above the ringplane. The image was taken in visible light with the Cassini spacecraft narrow-angle camera on July 14, 2014.

The view was acquired at a distance of approximately 1.2 million miles (1.9 million kilometers) from Tethys and at a Sun-Tethys-spacecraft, or phase, angle of 22 degrees. Image scale is 7 miles (11 kilometers) per pixel.

The Cassini-Huygens mission is a cooperative project of NASA, the European Space Agency and the Italian Space Agency. The Jet Propulsion Laboratory, a division of the California Institute of Technology in Pasadena, manages the mission for NASA's Science Mission Directorate, Washington, D.C. The Cassini orbiter and its two onboard cameras were designed, developed and assembled at JPL. The imaging operations center is based at the Space Science Institute in Boulder, Colo.

For more information about the Cassini-Huygens mission visit http://www.nasa.gov/cassini and http://saturn.jpl.nasa.gov and http://www.esa.int/Our_Activities/Space_Science/Cassini-Huygens. The Cassini imaging team homepage is at http://ciclops.org.

Images, Text, Credits: NASA/JPL-Caltech/Space Science Institute.

Cheers, Orbiter.ch

CME Week: The Difference Between Flares and CMEs














NASA/ESA - SOHO Mission patch / NASA - Solar Dynamics Observatory (SDO) patch.

September 22, 2014

The Difference Between CMEs and Solar Flares

Video above: How do you tell the difference between a flare and a CME in NASA images? Flares look like bright flashes of light on the sun. Coronal mass ejections look like clouds zooming out into space. Image Credit: NASA/SDO/ESA/SOHO/Nune.

There are many kinds of eruptions on the sun. Solar flares and coronal mass ejections both involve gigantic explosions of energy, but are otherwise quite different. The two phenomena do sometimes occur at the same time – indeed the strongest flares are almost always correlated with coronal mass ejections – but they emit different things, they look and travel differently, and they have different effects near planets.

Both eruptions are created when the motion of the sun’s interior contorts its own magnetic fields. Like the sudden release of a twisted rubber band, the magnetic fields explosively realign, driving vast amounts of energy into space. This phenomenon can create a sudden flash of light -- a solar flare. Flares can last minutes to hours and they contain tremendous amounts of energy. Traveling at the speed of light, it takes eight minutes for the light from a solar flare to reach Earth. Some of the energy released in the flare also accelerates very high energy particles that can reach Earth in tens of minutes.

The magnetic contortions can also create a different kind of explosion that hurls solar matter into space. These are the coronal mass ejections, also known as CMEs. One can think of the explosions using the physics of a cannon. The flare is like the muzzle flash, which can be seen anywhere in the vicinity. The CME is like the cannonball, propelled forward in a single, preferential direction, this mass ejected from the barrel only affecting a targeted area. This is the CME—an immense cloud of magnetized particles hurled into space. Traveling over a million miles per hour, the hot material called plasma takes up to three days to reach Earth. The differences between the two types of explosions can be seen through solar telescopes, with flares appearing as a bright light and CMEs appearing as enormous fans of gas swelling into space.

Flares and CMEs have different effects at Earth as well. The energy from a flare can disrupt the area of the atmosphere through which radio waves travel. This can lead to degradation and, at worst, temporary blackouts in navigation and communications signals.

On the other hand, CMEs can funnel particles into near-Earth space. A CME can jostle Earth’s magnetic fields creating currents that drive particles down toward Earth's poles. When these react with oxygen and nitrogen, they help create the aurora, also known as the Northern and Southern Lights. Additionally, the magnetic changes can affect a variety of human technologies. High frequency radio waves can be degraded: Radios transmit static, and GPS coordinates stray by a few yards. The magnetic oscillations can also create electrical currents in utility grids on Earth that can overload electrical systems when power companies are not prepared.


Image above: Solar X-ray Event : Returning region 1967, produced X4.9 Solar flare , peaking at 00:49 UTC , February 25, 2014. Image Credit: NASA/SDO.

One thing is the same about flares and CMEs: A fleet of NASA heliophysics observatories in space are always on the watch for these explosions. Much like how we forecast thunderstorms and rain showers, the U.S. National Oceanic and Atmospheric Administration’s Space Weather Prediction Center runs simulations and can make predictions about when the CME will arrive at Earth based on this and other data. They then alert appropriate groups so that power companies, airlines, and other stakeholders can take precautions in the event of a solar storm. For example, if a strong CME is on its way—utility companies can redirect power loads to protect the grids.

NASA's heliophysics spacecraft observe flares and CMEs for another reason as well. Scientists want to understand exactly what causes these powerful explosions and some day predict them even before they erupt.

For more information about Solar Dynamics Observatory (SDO), visit: http://sdo.gsfc.nasa.gov/ and http://www.nasa.gov/mission_pages/sdo/main/

For more information about ESA & NASA SOHO mission, visit: http://sohowww.nascom.nasa.gov/ and http://soho.esac.esa.int/

For more about CME Week, visit: http://www.nasa.gov/mission_pages/sunearth/news/cmeweek-2014.html

Images (mentioned), Video (mentioned), Text, Credits: NASA’s Goddard Space Flight Center/Max Gleber.

Greetings, Orbiter.ch

Death of the Hero of the Soviet Union, pilot-cosmonaut Anatoly Birch












ROSCOSMOS logo.

September 22, 2014

September 20, 2014 at 73-year died Anatoly Birch. Hero of the Soviet Union, pilot-cosmonaut, first crew of Expedition permanent orbital station "Salyut-7".

Anatoly was a representative of the legendary generation of astronauts - a man of great strength of will and courage, professional of the highest class, who did a lot for the development of national space programs and major research projects.

Cosmonaut Anatoly N. Birch

Anatoly actively engaged in social activities, special attention is paid to popularize the achievements of Russian science. Its truly heroic biography is a prime example for a new generation of Russian cosmonauts. His competence, professional and personal qualities have earned a well-deserved respect of colleagues and friends.

His memory will live forever in the hearts of those who knew and loved Anatoly Nikolayevich.

I express my sincere condolences to the families, friends and colleagues of A.N. Birch.

ON Ostapenko

Anatoly N. Birch biography:

Anatoly N. Birch born April 11, 1942 in the village of Enem Adygea Autonomous Region of Krasnodar Krai. In 1970 he was enrolled in the cosmonaut.

From 13 May to 10 December 1982 made ??a space flight as commander of the 1st of the Expedition of permanent orbital station "Salyut-7", along with flight engineer Valentin V. Lebedev.

July 30 Birch and Lebedev have implemented EVA, duration of 2 hours, 33 minutes. During exit astronauts installed the device "Source" which were worked out action with bolts and nuts in an open space. Of the airlock station were launched satellites "Iskra-2" and "Iskra-3", created by students of IIA.

During the expedition, astronauts conducted a large number of biomedical, geophysical and astrophysical, technical experiments and research. In particular, photographed and multispectral imagery of different regions of the surface of the Earth, astronomical studies using X-ray telescope RT-4M, gamma-ray telescope "Elena". With the help of the equipment "Corundum" grown crystals of semiconductors. Experiments have been conducted on the cultivation of plants.

On board the "Salyut-7" Anatoly Birch worked with the Soviet-French crew of V. Janibekov, A. Ivanchenkov and JL Chretien (France) and the crew visits consisting of: L. Popov, silver and S. Savitskaya.

AN Birch and VV Lebedev at the time was a record duration flight astronauts - 211 days.

ROSCOSMOS Press Rejease: http://www.federalspace.ru/20939/

Image, Text, Credits: Roscosmos press service / Translation: Orbiter.ch Aerospace.

R.I.P.

Orbiter.ch

NASA’s Newest Mars Mission Spacecraft Enters Orbit around Red Planet












NASA - MAVEN Mission logo.

September 22, 2014


Image above: NASA’s Mars Atmosphere and Volatile Evolution (MAVEN) spacecraft in orbit around Mars. Image Credits: NASA/GSFC.

NASA’s Mars Atmosphere and Volatile Evolution (MAVEN) spacecraft successfully entered Mars’ orbit at 10:24 p.m. EDT Sunday, Sept. 21, where it now will prepare to study the Red Planet’s upper atmosphere as never done before. MAVEN is the first spacecraft dedicated to exploring the tenuous upper atmosphere of Mars.

 MAVEN Orbiting Mars

Animation above: NASA’s Mars Atmosphere and Volatile Evolution (MAVEN) spacecraft successfully entered Mars’ orbit at 10:24 p.m. EDT Sunday, Sept. 21, where it now will prepare to study the Red Planet’s upper atmosphere as never done before. MAVEN is the first spacecraft dedicated to exploring the tenuous upper atmosphere of Mars. Animation Credit: NASA/GSFC.

“As the first orbiter dedicated to studying Mars’ upper atmosphere, MAVEN will greatly improve our understanding of the history of the Martian atmosphere, how the climate has changed over time, and how that has influenced the evolution of the surface and the potential habitability of the planet,” said NASA Administrator Charles Bolden. “It also will better inform a future mission to send humans to the Red Planet in the 2030s.”

After a 10-month journey, confirmation of successful orbit insertion was received from MAVEN data observed at the Lockheed Martin operations center in Littleton, Colorado, as well as from tracking data monitored at NASA’s Jet Propulsion Laboratory (JPL) navigation facility in Pasadena, California. The telemetry and tracking data were received by NASA’s Deep Space Network antenna station in Canberra, Australia.

Celebration: MAVEN Arrives at Mars

Image above: Members of the mission team at the Lockheed Martin Mission Support Area in Littleton, Colorado, celebrate after successfully inserting NASA's Mars Atmosphere and Volatile Evolution (MAVEN) spacecraft into orbit around Mars at 10:24 p.m. EDT Sunday, Sept. 21. Image Credit: Lockheed Martin.

“NASA has a long history of scientific discovery at Mars and the safe arrival of MAVEN opens another chapter,” said John Grunsfeld, astronaut and associate administrator of the NASA Science Mission Directorate at the agency’s Headquarters in Washington. “Maven will complement NASA’s other Martian robotic explorers—and those of our partners around the globe—to answer some fundamental questions about Mars and life beyond Earth.”

Following orbit insertion, MAVEN will begin a six-week commissioning phase that includes maneuvering into its final science orbit and testing the instruments and science-mapping commands. MAVEN then will begin its one Earth-year primary mission, taking measurements of the composition, structure and escape of gases in Mars’ upper atmosphere and its interaction with the sun and solar wind.

"It's taken 11 years from the original concept for MAVEN to now having a spacecraft in orbit at Mars,” said Bruce Jakosky, MAVEN principal investigator with the Laboratory for Atmospheric and Space Physics at the University of Colorado, Boulder (CU/LASP). “I'm delighted to be here safely and successfully, and looking forward to starting our science mission."


Image above: This artist concept depicts the process of orbital insertion of NASA’s Mars Atmosphere and Volatile Evolution (MAVEN) spacecraft. Image Credit: NASA/GSFC.

The primary mission includes five “deep-dip” campaigns, in which MAVEN’s periapsis, or lowest orbit altitude, will be lowered from 93 miles (150 kilometers) to about 77 miles (125 kilometers). These measurements will provide information down to where the upper and lower atmospheres meet, giving scientists a full profile of the upper tier.

“This was a very big day for MAVEN,” said David Mitchell, MAVEN project manager from NASA’s Goddard Space Flight Center, Greenbelt, Maryland.  “We’re very excited to join the constellation of spacecraft in orbit at Mars and on the surface of the Red Planet.  The commissioning phase will keep the operations team busy for the next six weeks, and then we’ll begin, at last, the science phase of the mission.  Congratulations to the team for a job well done today.”

MAVEN launched Nov. 18, 2013, from Cape Canaveral Air Force Station in Florida, carrying three instrument packages. The Particles and Fields Package, built by the University of California at Berkeley with support from CU/LASP and Goddard contains six instruments that will characterize the solar wind and the ionosphere of the planet. The Remote Sensing Package, built by CU/LASP, will identify characteristics present throughout the upper atmosphere and ionosphere. The Neutral Gas and Ion Mass Spectrometer, provided by Goddard, will measure the composition and isotopes of atomic particles.

Investigating the Martian Atmosphere

MAVEN's principal investigator is based at CU/LASP. The university provided two science instruments and leads science operations, as well as education and public outreach, for the mission. The University of California at Berkeley's Space Sciences Laboratory also provided four science instruments for the mission. Goddard manages the MAVEN project. Lockheed Martin built the spacecraft and is responsible for mission operations. JPL provides navigation and Deep Space Network support, as well as Electra telecommunications relay hardware and operations.

For more about the mission, refer to: http://www.nasa.gov/maven

Images (mentioned), Video, Text, Credits: NASA / Dwayne Brown / Goddard Space Flight Center / Nancy Neal-Jones / Elizabeth Zubritsky.

Greetings, Orbiter.ch

dimanche 21 septembre 2014

SpaceX Launches RapidScat Wind Watcher to Space Station










SpaceX - Falcon 9 / CRS-4 Mission patch.

September 21, 2014

A new NASA mission that will boost global monitoring of ocean winds for improved weather forecasting and climate studies is among about 5,000 pounds (2,270 kilograms) of NASA science investigations and cargo now on their way to the International Space Station aboard SpaceX's Dragon spacecraft. The cargo ship launched on the company's Falcon 9 rocket from Space Launch Complex-40 at Cape Canaveral Air Force Station in Florida at 10:52 p.m. PDT Saturday, Sept. 20 (1:52 a.m. EDT Sunday, Sept. 21).

The SpaceX mission is the company's fourth cargo delivery flight to the space station through a $1.6 billion NASA Commercial Resupply Services contract. Dragon's cargo will support experiments to be conducted by the crews of space station Expeditions 41 and 42.


Image above: Sept. 21, 2014 -- At Cape Canaveral Air Force Station's Space Launch Complex 40, the nine rocket engines roar to life on the Falcon launch vehicle. Image credit: NASA.

The International Space Station-Rapid Scatterometer, or ISS-RapidScat, mission will monitor ocean winds from the vantage point of the space station. This space-based scatterometer, developed by NASA's Jet Propulsion Laboratory, Pasadena, California, is a remote sensing instrument that uses radar pulses reflected from the ocean's surface from different angles to calculate surface wind speed and direction. This information will be useful for weather and marine forecasting and hurricane monitoring.

ISS-RapidScat's berth on the space station will put it in an orbit that is unique from any other wind measuring instrument currently in orbit. This vantage point will give scientists the first near-global direct observations of how ocean winds vary over the course of the day due to solar heating. The new mission will also provide cross-calibration of the international constellation of ocean wind satellites, extending the continuity and usefulness of the scatterometer data record.

SpaceX Dragon launches to the ISS

Approximately nine days after berthing with the station, the RapidScat instrument and its nadir adapter, which orients the instrument to point down at Earth, will be robotically installed on the External Payload Facility SDX site of the Columbus module over a three-day period by the station's robotic arm, which is controlled by ground controllers at NASA's Johnson Space Center. ISS-RapidScat is an autonomous payload, requiring no interaction from station astronauts.

Using a different end effector -- a mechanical hand -- the station's robotic arm will first extract RapidScat's nadir adapter from the trunk of the Dragon and install it on an external site on the Columbus module. The arm will then pluck the RapidScat instrument assembly from the Dragon's trunk and attach it to the nadir adapter, completing the installation. Each of the two operations will take about six hours.

Once installed, RapidScat will be activated over a period of three days. Checkout of RapidScat will be completed approximately two weeks after installation. About two weeks of preliminary calibration and validation will then follow. RapidScat will then be ready to begin its two-year science mission.


Image above: SS-RapidScat will have a close-up view of ocean winds from its perch on the International Space Station, as this 2010 astronaut photo of Hurricane Earl illustrates. Image Credit: NASA.

Dragon also will deliver the first-ever 3-D printer in space. The technology enables parts to be manufactured quickly and cheaply in space, instead of waiting for the next cargo resupply vehicle delivery. The research team also will gain valuable insight into improving 3-D printing technology on Earth by demonstrating it in microgravity.

New biomedical hardware launched aboard the spacecraft will help facilitate prolonged biological studies in microgravity. The Rodent Research Hardware and Operations Validation (Rodent Research-1) investigation provides a platform for long-duration rodent experiments in space. These investigations examine how microgravity affects animals, providing information relevant to human spaceflight, discoveries in basic biology and knowledge that may have direct impact toward human health on Earth.

The Dragon spacecraft will also transport other biological research, including a new plant study. The Biological Research in Canisters (BRIC) hardware has supported a variety of plant growth experiments aboard the space station. The BRIC-19 investigation will focus on the growth and development in microgravity of Arabidopsis thaliana seedlings, a small flowering plant related to cabbage. Because plant development on Earth is impacted by mechanical forces such as wind or a plant's own weight, researchers hope to improve understanding of how the growth responses of plants are altered by the absence of these forces when grown in microgravity.


Image above: The first in a series of NASA Earth-observing instruments to be mounted on the exterior of the International Space Station is scheduled for launch this month. ISS-RapidScat will monitor ocean winds for climate research, weather predictions and hurricane monitoring. Image Credit: NASA.

Dragon is scheduled to be grappled at 4:04 a.m. PDT (7:04 a.m. EDT) on Tuesday, Sept. 23, by Expedition 41 Flight Engineer Alexander Gerst of the European Space Agency, using the space station's robotic arm to take hold of the spacecraft. NASA's Reid Wiseman will support Gerst in a backup position. Dragon is scheduled to depart the space station in mid-October for a splashdown in the Pacific Ocean, west of Baja California, bringing from the space station almost 3,200 pounds (1,450 kilograms) of science, hardware and crew supplies.

The space station is a convergence of science, technology and human innovation that demonstrates new technologies and makes research breakthroughs not possible on Earth. NASA recently awarded contracts to SpaceX and The Boeing Company to transport U.S. crews to and from the space station with the goal of certifying those transportation systems in 2017.

ISS-RapidScat is a partnership between JPL and the International Space Station Program Office at NASA's Johnson Space Center, Houston, with support from the Earth Science Division of NASA's Science Mission Directorate, Washington. Other mission partners include the Kennedy Space Center, Florida; NASA's Marshall Space Flight Center, Huntsville, Alabama; the European Space Agency; and SpaceX.

For more information on ISS-RapidScat, visit: http://winds.jpl.nasa.gov/missions/RapidScat/ and http://www.nasa.gov/rapidscat

For more information about SpaceX's fourth cargo resupply mission to the International Space Station, visit: http://www.nasa.gov/spacex

For more information about the International Space Station, visit: http://www.nasa.gov/station

For more information on Earth science activities aboard the space station, visit: http://www.nasa.gov/issearthscience

ISS-RapidScat is the third of five NASA Earth science missions scheduled to launch into space within 12 months, the most new Earth-observing mission launches in one year in more than a decade. NASA monitors Earth's vital signs from land, air and space with a fleet of satellites and ambitious airborne and ground-based observation campaigns. NASA develops new ways to observe and study Earth's interconnected natural systems with long-term data records and computer analysis tools to better see how our planet is changing. The agency shares this unique knowledge with the global community and works with institutions in the United States and around the world that contribute to understanding and protecting our home planet.

For more information about NASA's Earth science activities in 2014, visit: http://www.nasa.gov/earthrightnow

Images (mentioned), Video (SpaceX), Text, Credits: NASA/Stephanie Schierholz/JPL/Alan Buis/Johnson Space Center.

Best regards, Orbiter.ch

vendredi 19 septembre 2014

Station Crew Keeps Eye on Science While Awaiting Launch of Crewmates












ISS - Expedition 41 Mission patch.

September 19, 2014

Expedition 41 Commander Max Suraev and Flight Engineers Reid Wiseman and Alexander Gerst focused on eye exams and scientific research aboard the International Space Station Thursday while continuing preparations for the arrival of the other half of their crew next week.

Suraev, Wiseman and Gerst, who have been aboard the station since May 28, began the day after their usual 2 a.m. EDT wakeup with an inspection of the orbiting laboratory, followed by a daily planning conference with the flight control teams around the world.


Image above: Photographed with a mounted automated camera, this is one of a number of images featuring the European Space Agency's fifth Automated Transfer Vehicle docked with the International Space Station. Image Credit: NASA.

Wiseman spent much of his morning preparing the Combustion Integrated Rack for another series of ground-commanded experiment sessions with the Flame Extinguishment Experiment-2, or FLEX-2. This experiment looks at how spherical droplets of fuels burn and extinguish in microgravity, with an eye toward the production of safer spacecraft and increased fuel efficiency for liquid-fuel engines here on Earth.  The NASA astronaut temporarily removed the Multi-user Droplet Combustion Apparatus, or MDCA, from the rack and restrained it to the Maintenance Work Area so he could replace two fuel reservoirs. Wiseman also replaced two windows inside the rack before reinstalling the MDCA.

Gerst meanwhile swapped out a recycle tank inside the Water Recovery System of the station’s regenerative Environmental Control and Life Support System. The European Space Agency astronaut later performed a manual fill of the flush water tank of the Waste and Hygiene Compartment to prevent any damage to the toilet in the station’s Tranquility node.

Wiseman then joined Gerst to assist him with more eye exams for the Ocular Health study as flight surgeons keep a close watch on any changes to the crew’s eyesight. NASA recently identified that some astronauts experience changes in their vision, which might be related to the effects of microgravity on the cardiovascular system as the body’s fluids tend to move toward the upper body and head and cause the pressure in the skull to rise. With guidance from the Ocular Health team on the ground, Wiseman used optical coherence tomography equipment to examine his German crewmate’s eyes.  Later, Wiseman collected detailed imagery of the interior of Gerst’s eyes with a fundoscope.


Image above: Flight Engineer Alexander Gerst performs an Ocular Health examination in the Destiny laboratory of the International Space Station. Image Credit: NASA.

Wiseman took a brief break from his afternoon activities to talk with NBC Nightly News about life and work aboard the station and his participation in social media.

Watch NASA astronaut Reid Wiseman's in-flight interview: https://www.youtube.com/watch?v=nuyVedH-I0o

On the Russian side of the station, Suraev installed new software on a laptop computer before moving on to replace hoses and hardware in in the Zvezda service module’s bathroom.

After a break for lunch, Suraev connected and secured cables for a TV camera and conducted a streaming video test in preparation for next week’s arrival of three additional station crew members. NASA astronaut Barry Wilmore, Soyuz Commander Alexander Samokutyaev and Flight Engineer Elena Serova will launch aboard their Soyuz TMA-14M spacecraft from the Baikonur Cosmodrome in Kazakhstan on Sept. 25 at 4:25 p.m. (Sept. 26 at 2:25 a.m., Kazakh time) to begin a six-hour, four-orbit trek to the orbiting complex. Once the Soyuz is docked to the Poisk Mini-Research Module-2 and the hatches are opened, Wilmore, Samokutyaev and Serova will begin a 5 ½-month stay aboard the station. Wilmore will become commander of Expedition 42 when Suraev, Wiseman and Gerst depart in November.


Image above: At the Integration Facility at the Baikonur Cosmodrome in Kazakhstan, the Soyuz TMA-14M spacecraft is encapsulated in the upper stage of the Soyuz booster rocket Sept. 18 that will propel it into orbit. Image Credit: NASA/Victor Zelentsov.

Meanwhile at the Cape Canaveral Air Force Station in Florida, preparations continue for the launch of the fourth SpaceX commercial resupply services mission on Saturday at 2:14 a.m. The SpaceX Dragon cargo vehicle will deliver 2.5 tons for supplies and science to the orbiting laboratory, including critical materials to support 255 science and research investigations that will occur during the Expeditions 41 and 42. NASA Television coverage of the launch begins at 1 a.m. Saturday. As of Thursday afternoon, the probability of favorable weather for Saturday’s launch has decreased to 50%. If the launch is postponed, the next launch opportunity is Sunday.

If Dragon launches Saturday, Gerst and Wiseman will use the 57-foot Canadarm2 robotic arm to capture Dragon around 7:30 a.m. Monday for its berthing to the Earth-facing port of the Harmony node. NASA TV coverage of the grapple will begin at 5:30 a.m. Coverage will resume at 9:30 a.m. for the installation of Dragon to Harmony.

Learn more about SpaceX Dragon: http://www.nasa.gov/spacex

Related links:

Flame Extinguishment Experiment-2, or FLEX-2: http://www.nasa.gov/mission_pages/station/research/experiments/480.html

Ocular Health study: http://www.nasa.gov/mission_pages/station/research/experiments/204.html

For more information about the International Space Station (ISS), visit: http://www.nasa.gov/mission_pages/station/main/index.html

Images (mentioned), Text, Credits: NASA.

Cheers, Orbiter.ch

Breezy Science, Plant Studies and More Head to Space Station on SpaceX-4










SpaceX - Dragon CRS-4 Mission patch.

September 19, 2014

Imagine a dragon flying through the heavens on mighty, outstretched wings. The majestic beast knows the currents of winds and how to harness their power as it soars above the clouds. SpaceX’s real Dragon – the company’s spacecraft that transports supplies and science to the International Space Station (ISS) – will deliver, and later return, new technology, biology and biotechnology and Earth and space science research to the orbiting outpost.

One of the new Earth science investigations heading into orbit is the ISS-Rapid Scatterometer (ISS-RapidScat). ISS-RapidScat monitors ocean winds from the vantage point of the space station. This space-based scatterometer is a remote sensing instrument that uses radar pulses reflected from the ocean’s surface at different angles to calculate surface wind speed and direction. This information will be useful for weather forecasting and hurricane monitoring.


Image above: This Artist's rendering of the ISS-RapidScat instrument (inset), will measure ocean surface wind speed and direction and help improve weather forecasts. It will be installed on the end of the station's Columbus laboratory. Image Credit: NASA/JPL-Caltech/Johnson Space Center.

“We'll be able to see how wind speed changes with the time of day," said Ernesto Rodríguez, principal investigator for ISS-RapidScat at NASA's Jet Propulsion Laboratory in Pasadena, California. "ISS-RapidScat will link together all previous and current scatterometer missions, providing us with a more complete picture of how ocean winds change. Combined with data from the European ASCAT scatterometer mission, we'll be able to observe 90 percent of Earth's surface at least once a day, and in many places, several times a day."

In addition to improving weather models, RapidScat enhances measurements from other international scatterometers by cross-checking their data. Due to its unique orbit, RapidScat will observe different parts of the planet at different times of day. This allows the instrument to track the effects of the sun on ocean winds as the day progresses. Because the instrument reuses leftover hardware originally built to test parts of the now inoperable NASA QuikScat scatterometer, this investigation demonstrates a unique way to replace an instrument aboard an aging satellite. Learn more about ISS-RapidScat in this video bellow.

NASA's RapidScat: Watching the Winds from Space

New biomedical hardware launching on SpaceX’s fourth commercial resupply mission to the space station will facilitate prolonged biological studies in microgravity. The Rodent Research Hardware and Operations Validation (Rodent Research-1) investigation provides a platform for long-duration rodent experiments in space. These experiments examine how microgravity affects animals, providing information relevant to human spaceflight, discoveries in basic biology and knowledge that may have direct impact toward human health on Earth. Rodent Research-1 tests the operational capabilities of the new hardware system, including the transporter, rodent habitat and access unit.


Image above: The Rodent Research Hardware System includes three modules: (Left) Habitat, (Center) Transporter, and (Right) Animal Access Unit. Image Credit: NASA / Dominic Hart.

Because rodents experience developmental stages and aging processes more quickly than humans, they make ideal research model organisms to infer information about disease development and progression in humans. Model organisms are non-human species with characteristics that allow them easily to be maintained, reproduced and studied in a laboratory. Learn more about rodent research in microgravity in this video.

“In the coming years, rodent studies conducted aboard the space station will gather foundational data that will help advance human space exploration and provide new opportunities to improve quality of life on Earth,” said Ruth Globus, Ph.D., Rodent Research Project scientist and researcher in the Space Biosciences Division at NASA’s Ames Research Center in Moffett Field, California.

Another biological research investigation aboard Dragon includes a new plant study. The Biological Research in Canisters (BRIC) hardware has supported a variety of plant growth experiments aboard the space station. The BRIC-19 investigation, the first to collect data for the geneLAB research platform, will focus on the growth and development of Arabidopsis thaliana seedlings in microgravity.  A. thaliana is a small flowering plant related to cabbage, and its genetic makeup is simple and well-understood by the plant biology community. This knowledge offers easy recognition of any changes that occur as a result of microgravity adaptation.

Plant development on Earth is impacted by mechanical forces such as wind or a plant’s own weight. Researchers hope to get a better understanding of how the growth responses of plants are altered by the absence of these forces when grown in microgravity.


Image above: A view of seedling growth in a petri dish during space shuttle Discovery's STS-95 mission in 1998, which used similar hardware to the upcoming Biological Research in Canisters -19 investigation aboard the International Space Station. Image Credit: NASA.

The BRIC hardware helps to maximize research and minimize space and crew time since it does not use power to operate and the canister is the size of a bread box. This study may add to the collective body of knowledge about basic plant growth phenomena and could help improve farming practices on Earth.

In addition to Earth and biological science studies, several new technology demonstrations are making their way to the space station. One of those, known as the Special Purpose Inexpensive Satellite, or SpinSat, will test how a small satellite moves and positions itself in space using new thruster technology. It will launch into orbit from the space station through the new Cyclops small satellite deployer, also known as the Space Station Integrated Kinetic Launcher for Orbital Payload Systems (SSIKLOPS). Learn more about Cyclops in this video.

SpinSat is a spherical satellite measuring 22 inches in diameter. It will test advanced thruster technology that uses a new class of non-pyrotechnic materials known as Electrically-Controlled Solid Propellants (ESP). ESPs are ignited only by electric current.

Researchers can use high-resolution atmospheric data captured by SpinSat to determine the density of the thermosphere, one of the uppermost layers of the atmosphere. With better knowledge of the thermosphere, engineers and scientists can refine satellite and telecommunications technology.

Another new technology demonstration catching a ride on the Dragon is the 3-D Printing In Zero-G Technology Demonstration (3-D Printing In Zero-G), which will be the first ever 3-D printer in space. Additive manufacturing could enable parts to be manufactured quickly and cheaply in space, instead of waiting for the next cargo resupply vehicle delivery. The research team also can gain valuable insight into improving 3-D printing technology on Earth by demonstrating it in microgravity.

With so many new investigations that directly impact human life, this Dragon’s delivery is helping the space station make discoveries off the Earth, for the Earth.

For more information about International Space Station (ISS), visit: http://www.nasa.gov/mission_pages/station/research/index.html

For more information about SpaceX’s Dragon, visit: http://www.spacex.com/dragon

Related links:

ISS-Rapid Scatterometer (ISS-RapidScat): http://www.nasa.gov/mission_pages/station/research/experiments/1067.html

European ASCAT scatterometer mission: http://www.esa.int/Our_Activities/Observing_the_Earth/The_Living_Planet_Programme/Meteorological_missions/MetOp/About_ASCAT

NASA QuikScat scatterometer: https://winds.jpl.nasa.gov/missions/quikscat/

The Rodent Research Hardware and Operations Validation (Rodent Research-1): http://www.nasa.gov/mission_pages/station/research/experiments/1132.html

Space Station Integrated Kinetic Launcher for Orbital Payload Systems (SSIKLOPS): http://www.nasa.gov/mission_pages/station/research/experiments/1191.html

3-D Printing In Zero-G Technology Demonstration (3-D Printing In Zero-G): http://www.nasa.gov/mission_pages/station/research/experiments/1115.html

Images (mentioned), Video, Text, Credits: NASA/JPL/Johnson Space Center/Laura Niles.

Greetings, Orbiter.ch