Mostrando entradas con la etiqueta NEXT. Mostrar todas las entradas
Mostrando entradas con la etiqueta NEXT. Mostrar todas las entradas

viernes, 15 de julio de 2016

NASA's Next Mars Rover Progresses Toward 2020 Launch


Get to know our next Mars rover!
Mission experts are showing you around the test-ready Mars Yard and the Mars 2020 rover drilling test

After an extensive review process and passing a major development milestone, NASA is ready to proceed with final design and construction of its next Mars rover, currently targeted to launch in summer of 2020 and arrive on the Red Planet in February 2021.



The Mars 2020 rover will investigate a region of Mars where the ancient environment may have been favorable for microbial life, probing the Martian rocks for evidence of past life. Throughout its investigation, it will collect samples of soil and rock, and cache them on the surface for potential return to Earth by a future mission.

"The Mars 2020 rover is the first step in a potential multi-mission campaign to return carefully selected and sealed samples of Martian rocks and soil to Earth," said Geoffrey Yoder, acting associate administrator of NASA's Science Mission Directorate in Washington. "This mission marks a significant milestone in NASA's Journey to Mars -- to determine whether life has ever existed on Mars, and to advance our goal of sending humans to the Red Planet."

To reduce risk and provide cost savings, the 2020 rover will look much like its six-wheeled, one-ton predecessor, Curiosity, but with an array of new science instruments and enhancements to explore Mars as never before. For example, the rover will conduct the first investigation into the usability and availability of Martian resources, including oxygen, in preparation for human missions.

Mars 2020 will carry an entirely new subsystem to collect and prepare Martian rocks and soil samples that includes a coring drill on its arm and a rack of sample tubes. About 30 of these sample tubes will be deposited at select locations for return on a potential future sample-retrieval mission. In laboratories on Earth, specimens from Mars could be analyzed for evidence of past life on Mars and possible health hazards for future human missions.


MARS 2020'S MOXIE LABORATORY AND PRINCIPAL INVESTIGATOR


The MOXIE investigation on NASA's Mars 2020 rover will extract oxygen from the Martian atmosphere. In this image, MOXIE Principal Investigator Michael Hecht, of the Massachusetts Institute of Technology, Cambridge, is in the MOXIE laboratory at NASA's Jet Propulsion Laboratory, Pasadena, California.

Two science instruments mounted on the rover's robotic arm will be used to search for signs of past life and determine where to collect samples by analyzing the chemical, mineral, physical and organic characteristics of Martian rocks. On the rover's mast, two science instruments will provide high-resolution imaging and three types of spectroscopy for characterizing rocks and soil from a distance, also helping to determine which rock targets to explore up close.

A suite of sensors on the mast and deck will monitor weather conditions and the dust environment, and a ground-penetrating radar will assess sub-surface geologic structure.

The Mars 2020 rover will use the same sky crane landing system as Curiosity, but will have the ability to land in more challenging terrain with two enhancements, making more rugged sites eligible as safe landing candidates.

"By adding what's known as range trigger, we can specify where we want the parachute to open, not just at what velocity we want it to open," said Allen Chen, Mars 2020 entry, descent and landing lead at NASA's Jet Propulsion Laboratory in Pasadena, California. "That shrinks our landing area by nearly half."

Terrain-relative navigation on the new rover will use onboard analysis of downward-looking images taken during descent, matching them to a map that indicates zones designated unsafe for landing.

"As it is descending, the spacecraft can tell whether it is headed for one of the unsafe zones and divert to safe ground nearby," said Chen. "With this capability, we can now consider landing areas with unsafe zones that previously would have disqualified the whole area. Also, we can land closer to a specific science destination, for less driving after landing."

There will be a suite of cameras and a microphone that will capture the never-before-seen or heard imagery and sounds of the entry, descent and landing sequence. Information from the descent cameras and microphone will provide valuable data to assist in planning future Mars landings, and make for thrilling video.

"Nobody has ever seen what a parachute looks like as it is opening in the Martian atmosphere," said JPL's David Gruel, assistant flight system manager for the Mars 2020 mission. "So this will provide valuable engineering information."

Microphones have flown on previous missions to Mars, including NASA's Phoenix Mars Lander in 2008, but never have actually been used on the surface of the Red Planet.

"This will be a great opportunity for the public to hear the sounds of Mars for the first time, and it could also provide useful engineering information," said Mars 2020 Deputy Project Manager Matt Wallace of JPL.

Once a mission receives preliminary approval, it must go through four rigorous technical and programmatic reviews - known as Key Decision Points (KDP) - to proceed through the phases of development prior to launch. Phase A involves concept and requirements definition, Phase B is preliminary design and technology development, Phase C is final design and fabrication, and Phase D is system assembly, testing and launch. Mars 2020 has just passed its KDP-C milestone.

"Since Mars 2020 is leveraging the design and some spare hardware from Curiosity, a significant amount of the mission's heritage components have already been built during Phases A and B," said George Tahu, Mars 2020 program executive at NASA Headquarters in Washington. "With the KDP to enter Phase C completed, the project is proceeding with final design and construction of the new systems, as well as the rest of the heritage elements for the mission."

The Mars 2020 mission is part of NASA's Mars Exploration Program. Driven by scientific discovery, the program currently includes two active rovers and three NASA spacecraft orbiting Mars. NASA also plans to launch a stationary Mars lander in 2018, InSight, to study the deep interior of Mars.

JPL manages the Mars 2020 project and the Mars Exploration Program for NASA's Science Mission Directorate in Washington. Caltech in Pasadena manages JPL for NASA.

For more information about Mars 2020, visit:

http://mars.nasa.gov/mars2020

viernes, 20 de mayo de 2016

Next pair of Galileo navigation satellites encapsulated for launch

The next two Galileo satellites were encapsulated for next week’s launch Wednesday. Photo credit: ESA/CNES/Arianespace – Photo Optique Video du CSG – JM Guillon

Europe’s nearly $8 billion Galileo navigation system, an analog to the U.S. GPS satellite network, is hitting a stride in production and launches, with another two spacecraft encapsulated Wednesday inside the fairing of a Soyuz rocket for liftoff next week.

The two navigation satellites will become the 13th and 14th operational Galileo craft launched since 2011. With a successful launch May 24, the Galileo system will have received six new satellites since September 2015.

Technicians at the European-run space center in French Guiana enclosed the Galileo satellites and their Russian-built Fregat space tug inside their aerodynamic shield Wednesday, a day after the satellites were mounted side-by-side atop the Fregat.

Workers then adorned the fairing with traditional decals.

A Russian Soyuz-2.1b rocket is scheduled to roll out of its MIK integration building at the Guiana Space Center on Friday for a nearly 700-meter (2,300-foot) trip to the launch pad.

Ground crews will move a mobile service structure around the Soyuz rocket later Friday to add the launcher’s upper composite, comprising the Galileo satellites, Fregat stage and payload fairing.

Each Galileo spacecraft weighs about 715 kilograms, or 1,576 pounds, with a full tank of propellant.

Liftoff is scheduled for Tuesday at 0848:43 GMT (4:48:43 a.m. EDT; 5:48:43 a.m. French Guiana time) at an instantaneous launch opportunity.

Built by OHB of Germany with navigation instrumentation from Britain’s Surrey Satellite Technology Ltd., the Galileo spacecraft will be deployed nearly four hours after launch by the Fregat upper stage in an orbit 23,522 kilometers (14,615 miles) above Earth at an inclination of 57.4 degrees.

Nicknamed Danielè and Alizée after children who won a painting competition organized by the European Commission in 2011, the satellites will use their own power to descend a few hundred kilometers to enter the operational Galileo fleet.

The Galileo network is funded by the European Commission, the EU’s executive body, and supported by the European Space Agency.

When complete in 2020, signals from the Galileo system and the U.S. Air Force’s next-generation GPS satellites will be fully compatible, giving users better positioning and timing accuracy and an independent backup navigation service.

Next week’s launch will be managed by Arianespace, and it comes less than a month after the last Soyuz flight from French Guiana. The launch will mark the 15th Soyuz mission from the jungle spaceport in South America since 2011.

The mission will be the fourth of 12 launches planned by Arianespace this year across its fleet of Ariane 5, Soyuz and Vega boosters.

More photos of the Galileo satellites’ encapsulation are posted below.
Photo credit: ESA/CNES/Arianespace – Photo Optique Video du CSG – JM Guillon
Photo credit: ESA/CNES/Arianespace – Photo Optique Video du CSG – JM Guillon
Photo credit: ESA/CNES/Arianespace – Photo Optique Video du CSG – JM Guillon
Photo credit: ESA/CNES/Arianespace – Photo Optique Video du CSG – JM Guillon
Photo credit: ESA/CNES/Arianespace – Photo Optique Video du CSG – S. Martin
Photo credit: ESA/CNES/Arianespace – Photo Optique Video du CSG – S. Martin
Photo credit: ESA/CNES/Arianespace – Photo Optique Video du CSG – S. Martin
Photo credit: ESA/CNES/Arianespace – Photo Optique Video du CSG – S. Martin

http://www.esa.int


miércoles, 24 de febrero de 2016

SPACEX READY FOR NEXT ATTEMPT TO LAUNCH AND LANDING

popsci.com


Por Sarah Fecht




SpaceX is slated to launch a broadcasting satellite into orbit this week, and the Falcon 9 rocket is getting all fired up--literally. On Monday, the company briefly lit the first stage engines in a static test fire, and so far everything seems to be up to snuff.


If the weather holds out, the mission's launch window will begin on Wednesday at 6:46pm Eastern. Meteorologists are saying there's a 60 percent chance that the conditions will be okay for liftoff.


The rocket's payload, a nearly 12,000-pound satellite made by the satellite operator SES, will bolster communications and television broadcasting in the Asia-Pacific region.


If all goes well, Wednesday's mission will be the second launch of SpaceX's new-and-improved Falcon 9 rocket design, upgraded to carry more fuel and have more thrust.

It'll need that extra fuel, too. After the launch, SpaceX will attempt to land the first stage of the rocket on a barge in the ocean. However, landing on a swaying sea platform has proven to be difficult, and the odds of succeeding are even lower this time around. After a SpaceX rocket exploded last year, the satellite's launch was delayed for months. To make up for lost time, the Falcon 9 will carry the massive satellite into a higher orbit that will reduce the time it takes for the SES-9 satellite to get into the right position to begin operating.

Launching the satellite higher means the rocket will be coming down faster, and with less fuel to slow its descent. However, if SpaceX does manage to pull off the landing despite all those additional challenges, it'll make the success even sweeter.