mardi 26 juin 2018
Crew Sets Up Station for New Research Delivery Aboard Dragon
ISS - Expedition 56 Mission patch.
June 26, 2018
The Expedition 56 crew members are configuring the International Space Station for several new experiments being delivered on the upcoming SpaceX Dragon cargo mission. The orbital residents also explored space physics and serviced U.S. spacesuits.
NASA astronauts Drew Feustel and Ricky Arnold worked on science hardware today to support new research being delivered aboard Dragon when it arrives Monday at 7 a.m. EDT. The duo also continued studying the robotics procedures necessary to capture Dragon after its approach and rendezvous next week.
Feustel cleaned a mouse habitat for the Rodent Research-7 experiment observing microbes in the gastrointestinal system in mice. Arnold checked out the functionality of the Veggie facility that will process plants for the Veg-03 study researching how to grow food in space.
Image above: Canada’s 57.7-foot-long robotic arm, also known as the Canadarm2, with a latching end effector at its tip (used to grapple approaching spacecraft and portable data grapple fixtures) is pictured in the foreground as the International Space Station was orbiting over the Caspian Sea. Image Credit: NASA.
Flight Engineer Serena Auñón-Chancellor looked at how cement solidifies in space exploring its microstructure and material properties. Results could impact the design of lightweight space habitats and improve cement and concrete processing on Earth.
Finally, Alexander Gerst of the European Space Agency looked at spacesuit gear and set up the Quest airlock for future spacewalk operations. Gerst purged nitrogen from the suit’s oxygen lines and helped ground controllers prepare for overnight oxygen leak checks.
Related links:
Expedition 56: https://www.nasa.gov/mission_pages/station/expeditions/expedition56/index.html
SpaceX Dragon: https://www.nasa.gov/spacex
Mouse habitat: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=1537
Rodent Research-7: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7425
Veggie facility: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=374
Veg-03 study: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=1159
Cement solidifies in space: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7658
Spot the Station: https://spotthestation.nasa.gov/
Space Station Research and Technology: https://www.nasa.gov/mission_pages/station/research/index.html
International Space Station (ISS): https://www.nasa.gov/mission_pages/station/main/index.html
Images (mentioned), Text, Credits: NASA/Mark Garcia.
Best regards, Orbiter.ch
Space Station Science Highlights: Week of June 18, 2018
ISS - Expedition 56 Mission patch.
June 26, 2018
Scientific operations continued aboard the International Space Station as crew members finished up post EVA (spacewalk) activities. Soon, new hardware, supplies and research materials will be delivered aboard the SpaceX CRS-15 Dragon.
International Space Station (ISS). Animation Credit: NASA
Here are more details on some of the science that happened this week aboard your orbiting laboratory:
New sensor installed in preparation for investigation
The European Space Agency’s (ESA) MagVector investigation studies how Earth’s magnetic field interacts with an electrical conductor. Using extremely sensitive magnetic sensors placed around and above a conductor, researchers gain insight into ways that the magnetic field influences how conductors work. This research not only helps improve future experiments aboard the station and other electrical experiments, but it could offer insights into how magnetic fields influence electrical conductors in general, the backbone of our technology on Earth.
Image above: Eurpoean Space Agency astronaut Alexander Gerst performs the GRASP experiment, which studies how the body adapts to the microgravity environment. GRASP uses virtual reality headsets as a way to understand how important gravity is, compared to the other senses, when reaching for an object. Image Credit: NASA.
Last week, crew installed a 3D sensor array in preparation for upcoming runs of the investigation.
Cultural questionnaire completed by crew members
The station serves as home, office and recreation room for astronauts. They share this confined space far above the Earth with crew members from different countries and cultures for as long as six months or more. At the same time, maintaining individual well-being and crew harmony is important for the crew and mission success.
The Culture, Values, and Environmental Adaptation in Space (At Home In Space) investigation, sponsored by the Canadian Space Agency, looks at changes in perceptions about home in space and the ways a unique culture may develop aboard the station during a mission.
Last week, crew members completed At Home in Space questionnaires to be analyzed by researchers.
Plants undergo thinning activities
Understanding how plants grow and thrive in harsh environments, both on Earth and in space, is important for advancements in agriculture. The Advanced Plant Habitat Facility (Plant Habitat) is a fully-automated facility used to conduct plant bioscience research and provides a large, enclosed, environmentally-controlled chamber aboard the space station.
Image above: NASA astronaut Ricky Arnold performs plant thinning operations for the Plant Habitat-1 investigation. Image Credit: NASA.
The Plant Habitat-1 compares differences in genetics, metabolism, photosynthesis, and gravity sensing between plants grown in space and on Earth. This investigation provides key insights on major changes occurring in plants exposed to microgravity. The investigation began with the growth of Arabidopsis, small flowering plants related to cabbage and mustard. Arabidopsis is of particular interest because it contains the thale cress, a model organism and the first plant to have its entire genome sequenced. Last week, thinning activities were performed on the plants before being placed into single foil packs and inserted into MiniCold bags.
Space to Ground: Clearing the Cosmos: 06/22/2018
Learn more about the Advanced Plant Habitat here: https://www.nasa.gov/mission_pages/station/research/Giving_Roots_and_Shoots_Their_Space_APH
Other work was done on these investigations: Food Acceptability, SUBSA, Biochemical Profile, Marrow, GRASP, Repository, RemDeb, RaDI-N, ACME, STaARS BioScience-9, MELFI, Manufacturing Device, ELF, HDEV, SCAN Testbed, TSIS, MERLIN, DOSIS-3D, VESSEL ID System, Team Task Switching, CEO and ASIM.
Related links:
SpaceX CRS-15: https://www.nasa.gov/mission_pages/station/research/news/SpX-15_Resupply
At Home In Space: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=1727
Plant Habitat: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=2036
Plant Habitat-1: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=2032
Food Acceptability: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7562
SUBSA: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=308
Biochemical Profile: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=980
Marrow: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=1673
GRASP: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=2038
Repository: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=954
RemDeb: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7350
RaDI-N: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=874
ACME: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=2058
STaARS BioScience-9: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7783
MELFI: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=56
Manufacturing Device: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=1934
ELF: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=1738
HDEV: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=892
SCAN Testbed: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=156
TSIS: http://www.nasa.gov/tsis-1
MERLIN: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=29
DOSIS-3D: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=177
VESSEL ID System: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=737
Team Task Switching: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7538
CEO: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=84
ASIM: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=1822
Spot the Station: https://spotthestation.nasa.gov/
Space Station Research and Technology: https://www.nasa.gov/mission_pages/station/research/index.html
International Space Station (ISS): https://www.nasa.gov/mission_pages/station/main/index.html
Images (mentioned), Animation (mentioned), Video (NASA), Text, Credits: NASA/Michael Johnson/Yuri Guinart-ramirez, Lead Increment Scientist Expeditions 55 & 56.
Best regards, Orbiter.ch
lundi 25 juin 2018
Crew Gets Ready for Dragon, Studies Space Impacts on Health and Physics
ISS - Expedition 56 Mission patch.
June 25, 2018
The Expedition 56 crew members are getting ready for the arrival next week of the 15th SpaceX Dragon mission to the International Space Station. The space residents also explored how microgravity impacts health and physics today while setting up a variety of cubesats for deployment.
Image above: The SpaceX Dragon cargo craft is pictured in the grips of the Canadarm2 robotic arm as the International Space Station was orbiting above northern Africa on May 5, 2018. Image Credits: NASA.
The Falcon 9 rocket from SpaceX that will launch the Dragon space freighter into Earth orbit is due to lift off Friday at 5:41 a.m. EDT and take a three-day trip to the orbital laboratory. The commercial space freighter will be loaded with almost six thousand pounds of new science experiments, crew supplies and space station hardware.
NASA astronaut Ricky Arnold will be backed up by Commander Drew Feustel in the Cupola when he commands the Canadarm2 to grapple Dragon Monday at 7 a.m. The duo is reviewing procedures and training on a computer this week for the rendezvous and capture activities. Robotics controllers on the ground will then take over after the capture and remotely install Dragon a couple of hours later to the Harmony module where it will remain for 32 days. NASA TV will broadcast live the Dragon science briefings, launch, capture and installation activities.
Image above: Sunrise over Thailand, seen by EarthCam on ISS, speed: 27'605 Km/h, altitude: 408,29 Km, image captured by Roland Berga (on Earth in Switzerland) from International Space Station (ISS) using ISS-HD Live application with EarthCam's from ISS on June 25, 2018 at 22:48 UTC. Image Credits: Orbiter.ch Aerospace/Roland Berga.
Feustel started the workweek collecting and stowing biological samples for the Multi-Omics study that is observing how gut microbes may affect an astronaut’s immune system. He then worked on the Atomization experiment that is researching liquid spray processes to potentially improve the design of jet and rocket engines.
NASA astronaut Serena Auñón-Chancellor installed a cubesat deployer on a multi-purpose experiment platform that will soon be placed outside the Japanese Kibo laboratory module. It will deploy nine different cubesats to continue space research and demonstrate space applications.
Related links:
Multi-Omics: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=1689
Cubesats: https://www.nasa.gov/mission_pages/cubesats/index.html
Expedition 56: https://www.nasa.gov/mission_pages/station/expeditions/expedition56/index.html
Space Station Research and Technology: https://www.nasa.gov/mission_pages/station/research/index.html
International Space Station (ISS): https://www.nasa.gov/mission_pages/station/main/index.html
Images (mentioned), Text, Credits: NASA/Mark Garcia/Orbiter.ch Aerospace/Roland Berga.
Best regards, Orbiter.ch
NASA Technologies Significantly Reduce Aircraft Noise
NASA logo.
June 25, 2018
A series of NASA flight tests has successfully demonstrated technologies that achieve a significant reduction in the noise generated by aircraft and heard by communities near airports.
The Acoustic Research Measurement (ARM) flights, which concluded in May, at NASA’s Armstrong Flight Research Center in California, tested technology to address airframe noise, or noise that is produced by non-propulsive parts of the aircraft, during landing. The flights successfully combined several technologies to achieve a greater than 70 percent reduction in airframe noise.
Image above: The ARM flights were flown on NASA’s SubsoniC Research Aircraft Testbed G-III aircraft, or SCRAT, at NASA’s Armstrong Flight Research Center in California. NASA combined three technologies, including Landing Gear Noise Reduction, landing gear cavity treatments, and the Adaptive Compliant Trailing Edge flexible wing flap, to demonstrate a reduction in airframe noise in excess of 70 percent. This may reduce aircraft noise for communities that live near airports. Image Credits: NASA/Ken Ulbrich.
“The number one public complaint the Federal Aviation Administration receives is about aircraft noise,” said Mehdi Khorrami, an aerospace scientist at NASA’s Langley Research Center in Virginia, and principal investigator for Acoustic Research Measurement. “NASA’s goal here was to reduce aircraft noise substantially in order to improve the quality of life for communities near airports. We are very confident that with the tested technologies we can substantially reduce total aircraft noise, and that could really make a lot of flights much quieter.”
NASA tested several experimental designs on various airframe components of a Gulfstream III research aircraft at Armstrong, including landing gear fairings and cavity treatments designed and developed at Langley, as well as the Adaptive Compliant Trailing Edge (ACTE) wing flap, which had previously been flight-tested to study aerodynamic efficiency. The aircraft flew at an altitude of 350 feet, over an 185-sensor microphone array deployed on the Rogers Dry Lake at Edwards Air Force Base in California.
The Landing Gear Noise Reduction technology element addressed airframe noise caused by airflow moving past the landing gear on approach. The experimental landing gear tested by NASA features fairings that are porous along their front, meaning they consist of many tiny holes that, in part, allow some of the air to flow through the fairing, while also deflecting some of the airflow around the landing gear.
Image above: While porous concepts for landing gear fairings have been studied before, NASA’s design was based on extensive computer simulations to produce the maximum amount of noise reduction without the penalty of increasing aerodynamic drag. The landing gear cavity was treated with a series of chevrons near its leading edge, and a net stretched across the opening to alter airflow, aligning it more with the wing. Image Credits: NASA/Ken Ulbrich.
Porous concepts have been studied before, but the unique design developed by NASA resulted from highly detailed computer simulations that led NASA engineers to what they believe is the ideal design for maximum noise reduction without increasing aerodynamic drag.
Another area of focus was landing gear cavities, also a known cause of airframe noise. These are the regions where the landing gear deploys from the main body of an aircraft, typically leaving a large cavity where airflow can get pulled in, creating noise. NASA applied two concepts to these sections, including a series of chevrons placed near the front of the cavity with a sound-absorbing foam at the trailing wall, as well as a net that stretched across the opening of the main landing gear cavity. This altered the airflow and reduced the noise resulting from the interactions between the air, the cavity walls, and its edges.
To reduce wing flap noise, NASA used an experimental, flexible flap that had previously been flown as part of the ACTE project, which investigated the potential for flexible, seamless flaps to increase aerodynamic efficiency. As opposed to conventional wing flaps that typically feature gaps between the flap and the main body of the wing, the ACTE flap, built by FlexSys Inc. of Ann Arbor, Michigan, is a seamless design that eliminates those gaps.
Significant reduction in aircraft noise must be realized in order for air transportation growth to maintain its current trend. The reduction of airframe noise using NASA technology is an important achievement in this effort, as it may lead to quieter aircraft, which will benefit communities near airports and foster expanded airport operations.
“This airframe noise reduction produced by NASA technology is definitely momentous, and the best part is that it directly benefits the public,” said ARM Project Manager Kevin Weinert. “While there are obvious potential economic gains for the industry, this benefits the people who live near major airports, and have to deal with the noise of aircraft coming in to land. This could greatly reduce the noise impact on these communities.”
For more information about NASA’s aeronautics research, visit: https://www.nasa.gov/aeroresearch
Adaptive Compliant Trailing Edge (ACTE): https://www.nasa.gov/centers/armstrong/programs_projects/ACTE/index.html
Landing Gear Noise Reduction technology: https://www.nasa.gov/centers/armstrong/feature/NASA_Tech_Reduces_Airframe_Noise.html
Aeronautics: https://www.nasa.gov/topics/aeronautics/index.html
Future Aircraft: https://www.nasa.gov/subject/7565/future-aircraft
Images (mentioned), Text, Credits: NASA/J.D. Harrington/Sean Potter/Armstrong Flight Research Center/Matt Kamlet.
Best regards, Orbiter.ch
Will We Know Life When We See It? NASA-led Group Takes Stock of the Science
Exoplanets - Exobiology logo.
June 25, 2018
In the last decade we have discovered thousands of planets outside our solar system and have learned that rocky, temperate worlds are numerous in our galaxy. The next step will involve asking even bigger questions. Could some of these planets host life? And if so, will we be able to recognize life elsewhere if we see it?
Image above: Artist's conception of what life could look like on the surface of a distant planet. Image Credit: NASA.
A group of leading researchers in astronomy, biology and geology have come together under NASA’s Nexus for Exoplanet System Science, or NExSS, to take stock of our knowledge in the search for life on distant planets and to lay the groundwork for moving the related sciences forward.
“We’re moving from theorizing about life elsewhere in our galaxy to a robust science that will eventually give us the answer we seek to that profound question: Are we alone?” said Martin Still, NASA exoplanet scientist at Headquarters, Washington.
In a set of five review papers published last week in the scientific journal Astrobiology, NExSS scientists took an inventory of the most promising signs of life, called biosignatures. They considered how to interpret the presence of biosignatures, should we detect them on distant worlds. A primary concern is ensuring the science is strong enough to distinguish a living world from a barren planet masquerading as one.
The assessment comes as a new generation of space and ground-based telescopes are in development. NASA’s James Webb Space Telescope will characterize the atmospheres of some of the first small, rocky planets. Other observatories— such as the Giant Magellan Telescope and the Extremely Large Telescope, both in Chile— are planning to carry sophisticated instruments capable of detecting the first biosignatures on faraway worlds.
Image above: Life can leave "fingerprints" of its presence in the atmosphere and on the surface of a planet. These potential signs of life, or biosignatures, can be detected with telescopes. Image Credits: NASA/Aaron Gronstal.
Through their work with NExSS, scientists aim to identify the instruments needed to detect potential life for future NASA flagship missions. The detection of atmospheric signatures of a few potentially habitable planets may possibly come before 2030, although whether the planets are truly habitable or have life will require more in-depth study.
Since we won’t be able to visit distant planets and collect samples anytime soon, the light that a telescope observes will be all we have in the search for life outside our solar system. Telescopes can examine the light reflecting off a distant world to show us the kinds of gases in the atmosphere and their "seasonal" variations, as well as colors like green that could indicate life.
These kinds of biosignatures can all be seen on our fertile Earth from space, but the new worlds we examine will differ significantly. For example, many of the promising planets we have found are around cooler stars, which emit light in the infrared spectrum, rather than our sun’s high emissions of visible-light.
Image above: Abiotic processes can fool us into thinking a barren planet is alive. Rather than measuring a single characteristic of a planet, we should consider a suite of traits to build the case for life. Image Credits: NASA/Aaron Gronstal.
“What does a living planet look like?” said Mary Parenteau, an astrobiologist and microbiologist at NASA’s Ames Research Center in Silicon Valley and a co-author. “We have to be open to the possibility that life may arise in many contexts in a galaxy with so many diverse worlds — perhaps with purple-colored life instead of the familiar green-dominated life forms on Earth, for example. That’s why we are considering a broad range of biosignatures.”
The scientists assert that oxygen — the gas produced by photosynthetic organisms on Earth — remains the most promising biosignature of life elsewhere, but it is not foolproof. Abiotic processes on a planet could also generate oxygen. Conversely, a planet lacking detectable levels of oxygen could still be alive — which was exactly the case of Earth before the global accumulation of oxygen in the atmosphere.
“On early Earth, we wouldn’t be able to see oxygen, despite abundant life,” said Victoria Meadows, an astronomer at the University of Washington in Seattle and lead author of one of the papers. “Oxygen teaches us that seeing, or not seeing, a single biosignature is insufficient evidence for or against life — overall context matters.”
Image above: Since the data we collect from planets will be limited, scientists will quantify how likely a planet has life based on all the available evidence. Follow-up observations are required for confirmation. Image Credits: NASA/Aaron Gronstal.
Rather than measuring a single characteristic, the NExSS scientists argue that we should be looking at a suite of traits. A planet must show itself capable of supporting life through its features, and those of its parent star.
The NExSS scientists will create a framework that can quantify how likely it is that a planet has life, based on all the available evidence. With the observation of many planets, scientists may begin to more broadly classify the “living worlds” that show common characteristics of life, versus the “non-living worlds.”
“We won’t have a ‘yes’ or ‘no’ answer to finding life elsewhere,” said Shawn Domagal-Goldman, an astrobiologist at NASA’s Goddard Space Flight Center in Greenbelt, Maryland and a co-author. “What we will have is a high level of confidence that a planet appears alive for reasons that can only be explained by the presence of life.”
Related links:
Nexus for Exoplanet System Science (NExSS): https://nexss.info/
Five review papers: https://www.liebertpub.com/toc/ast/18/6
Astrobiology: https://www.nasa.gov/content/the-search-for-life
Exoplanets: https://www.nasa.gov/content/the-search-for-life
Images (mentioned), Text, Credits: NASA/Sarah Loff/Felicia Chou.
Greetings, Orbiter.ch
James Webb Space Telescope to Target Jupiter’s Great Red Spot
NASA - James Webb Space Telescope (JWST) patch.
June 25, 2018
James Webb Space Telescope, the most ambitious and complex space observatory ever built, will use its unparalleled infrared capabilities to study Jupiter’s Great Red Spot, shedding new light on the enigmatic storm and building upon data returned from NASA’s Hubble Space Telescope and other observatories.
Image above: This photo of Jupiter, taken by NASA’s Hubble Space Telescope, was snapped when the planet was comparatively close to Earth, at a distance of 415 million miles. Image Credits: NASA, ESA, and A. Simon (NASA Goddard).
Jupiter’s iconic storm is on the Webb telescope’s list of targets chosen by guaranteed time observers, scientists who helped develop the incredibly complex telescope and among the first to use it to observe the universe. One of the telescope’s science goals is to study planets, including the mysteries still held by the planets in our own solar system from Mars and beyond.
Leigh Fletcher, a senior research fellow in planetary science at the University of Leicester in the United Kingdom, is the lead scientist on the Webb telescope’s observations of Jupiter’s storm. His team is part of a larger effort to study several targets in our solar system with Webb, spearheaded by astronomer Heidi Hammel, the executive vice president of the Association of Universities for Research in Astronomy (AURA). NASA selected Hammel as an interdisciplinary scientist for Webb in 2002.
“Webb’s infrared sensitivity provides a wonderful complement to Hubble visible-wavelength studies of the Great Red Spot,” explained Hammel. “Hubble images have revealed striking changes in the size of the Great Red Spot over the mission’s multi-decade-long lifetime.”
Fletcher and his team plan to use Webb’s mid-infrared instrument (MIRI) to create multispectral maps of the Great Red Spot and analyze its thermal, chemical and cloud structures. The scientists will be able to observe infrared wavelengths that could shed light on what causes the spot’s iconic color, which is often attributed to the sun’s ultraviolet radiation interacting with nitrogen, sulfur and phosphorus-bearing chemicals that are lifted from Jupiter’s deeper atmosphere by powerful atmospheric currents within the storm.
Fletcher explained that using MIRI to observe in the 5 to 7 micrometer range could be particularly revealing for the Great Red Spot, as no other mission has been able to observe Jupiter in that part of the electromagnetic spectrum, and observations in such wavelengths are not possible from Earth. Those wavelengths of light could allow the scientists to see unique chemical byproducts of the storm, which would give insight into its composition.
“We’ll be looking for signatures of any chemical compounds that are unique to the [Great Red Spot]…which could be responsible for the red chromophores,” said Fletcher. Chromophores are the parts of molecules responsible for their color. Fletcher added, “If we don’t see any unexpected chemistry or aerosol signatures…then the mystery of that red color may remain unresolved.”
Image above: This true-color image of Jupiter’s Great Red Spot was created by citizen scientist Björn Jónsson using data from the JunoCam imager on NASA’s Juno spacecraft. Image Credits: NASA/JPL-Caltech/SwRI/MSSS/Björn Jónsson.
Webb’s observations may also help determine whether the Great Red Spot is generating heat and releasing it into Jupiter’s upper atmosphere, a phenomenon that could explain the high temperatures in that region. Recent NASA-funded research showed that colliding gravity waves and sound waves, produced by the storm, could generate the observed heat, and Fletcher said Webb might be able to gather data to support this.
“Any waves produced by the vigorous convective activity within the storm must pass through the stratosphere before they reach the ionosphere and thermosphere,” he explained. “So if they really do exist and are responsible for heating Jupiter’s upper layers, hopefully we’ll see evidence for their passage in our data.”
Generations of astronomers have studied the Great Red Spot; the storm has been monitored since 1830, but it has possibly existed for more than 350 years. The reason for the storm’s longevity largely remains a mystery, and Fletcher explained that the key to understanding the formation of storms on Jupiter is to witness their full life cycle — growing, shrinking, and eventually dying. We did not see the Great Red Spot form, and it may not die anytime soon (though it has been shrinking, as documented by images from NASA’s Hubble Space Telescope and other observatories), so scientists must rely on observing “smaller and fresher” storms on the planet to see how they begin and evolve, something that Webb may do in the future, said Fletcher.
James Webb Space Telescope (JWST). Image Credits: NASA/ESA/CSA
“These particular observations will reveal the storm’s vertical structure, which will be an important constraint for numerical simulations of Jovian [Jupiter] meteorology,” he explained. “If those simulations can help explain what Webb observes in the infrared, then we’ll be a step closer to understanding how these gigantic maelstroms live for so long.”
The James Webb Space Telescope will be the world's premier space science observatory. Webb will solve mysteries of our solar system, look beyond to distant worlds around other stars, and probe the mysterious structures and origins of our universe and our place in it. Webb is an international project led by NASA with its partners, the European Space Agency (ESA) and the Canadian Space Agency (CSA).
Read more about Jupiter here: https://www.nasa.gov/jupiter
For more information about the Webb telescope, visit: https://jwst.nasa.gov/miri.html
Webb’s mid-infrared instrument (MIRI): https://jwst.nasa.gov/miri.html
Images (mentioned), Text, Credits: NASA/Lynn Jenner/Goddard Space Flight Center, By Eric Villard/Laura Betz.
Greetings, Orbiter.ch
Earth’s first mission to a binary asteroid, for planetary defence
ESA - European Space Agency logo.
25 June 2018
Planning for humankind’s first mission to a binary asteroid system has entered its next engineering phase. ESA’s proposed Hera mission would also be Europe’s contribution to an ambitious planetary defence experiment.
Named for the Greek goddess of marriage, Hera would fly to the Didymos pair of Near-Earth asteroids: the 780 m-diameter mountain-sized main body is orbited by a 160 m moon, informally called ‘Didymoon’, about the same size as the Great Pyramid of Giza.
Hera surveying asteroid
“Such a binary asteroid system is the perfect testbed for a planetary defence experiment but is also an entirely new environment for asteroid investigations. Although binaries make up 15% of all known asteroids, they have never been explored before, and we anticipate many surprises,” explains Hera manager Ian Carnelli.
“The extremely low-gravity environment also presents new challenges to the guidance and navigation systems. Fortunately we can count on the unique experience of ESA’s Rosetta operations team which is an incredible asset for the Hera mission.”
The smaller Didymoon is Hera’s main focus: the spacecraft would perform high-resolution visual, laser and radio science mapping of the moon, which will be the smallest asteroid visited so far, to build detailed maps of its surface and interior structure.
Asteroid collision
By the time Hera reaches Didymos, in 2026, Didymoon will have achieved historic significance: the first object in the Solar System to have its orbit shifted by human effort in a measurable way.
A NASA mission called the Double Asteroid Redirection Test, or DART, is due to collide with it in October 2022. The impact will lead to a change in the duration of Didymoon’s orbit around the main body. Ground observatories all around the world will view the collision, but from a minimum distance of 11 million km away.
“Essential information will be missing following the DART impact – which is where Hera comes in,” adds Ian. “Hera’s close-up survey will give us the mass of Didymoon, the shape of the crater, as well as physical and dynamical properties of Didymoon.
Infrared imaging of the impact crater
“This key data gathered by Hera will turn a grand but one-off experiment into a well-understood planetary defence technique: one that could in principle be repeated if we ever need to stop an incoming asteroid.”
The traditional method of estimating the mass of a planetary body is to measure its gravitational pull on a spacecraft. That is not workable within the Didymos system: Didymoon’s gravitational field would be swamped by that of its larger partner.
Hera mission
Instead, Hera imagery will be used to track key landmarks on the surface on the bigger body, ‘Didymain’, such as boulders or craters. By measuring the ‘wobble’ Didymoon causes its parent, relative to the common centre of gravity of the overall two-body system, its mass could be determined with an accuracy over 90%.
Hera will also measure the crater left by DART to a resolution of 10 cm, accomplished through a series of daring flybys, giving insight into the surface characteristics and internal composition of the asteroid.
“Hera benefits from more than five years of work put into ESA’s former Asteroid Impact Mission,” comments Ian. “Its main instrument is a replica of an asteroid imager already flying in space – the Framing Camera used by NASA’s Dawn mission as it surveys Ceres, which is provided by the German Aerospace Center, DLR.
Hera and CubeSats in orbit
“It would also carry a ‘laser radar’ lidar for surface ranging, as well as a hyperspectral imager to characterise surface properties. In addition, Hera will deploy Europe’s first deep space CubeSats to gather additional science as well as test advanced multi-spacecraft intersatellite links.”
NASA’s DART mission meanwhile has passed its preliminary design review and is about to enter its ‘Phase C’ detailed design stage.
Related links:
ESA's Hera: http://www.esa.int/www.esa.int/hera
Double Asteroid Redirect Test: http://dart.jhuapl.edu/
ESA Asteroid Day: http://www.esa.int/Our_Activities/Space_Engineering_Technology/Asteroid_day
Images (mentioned), Video (mentioned), Text, Credits: ESA/ScienceOffice.org.
Greetings, Orbiter.ch
Inscription à :
Articles (Atom)

























