mardi 5 mars 2019

Mars InSight Lander's 'Mole' Pauses Digging












NASA - InSight Mission patch.

March 5, 2019

NASA's Mars InSight lander has a probe designed to dig up to 16 feet (5 meters) below the surface and measure heat coming from inside the planet. After beginning to hammer itself into the soil on Thursday, Feb. 28, the 16-inch-long (40-centimeter-long) probe — part of an instrument called the Heat and Physical Properties Package, or HP3 — got about three-fourths of the way out of its housing structure before stopping. No significant progress was seen after a second bout of hammering on Saturday, March 2. Data suggests the probe, known as a "mole," is at a 15-degree tilt.

Scientists suspect it hit a rock or some gravel. The team had hoped there would be relatively few rocks below ground, given how few appear on the surface beside the lander. Even so, the mole was designed to push small rocks aside or wend its way around them. The instrument, which was provided for InSight by the German Aerospace Center (DLR), did so repeatedly during testing before InSight launched.


Image above: NASA's InSight lander set its heat probe, called the Heat and Physical Properties Package (HP3), on the Martian surface on Feb. 12. Image Credits: NASA/JPL-Caltech/DLR.

"The team has decided to pause the hammering for now to allow the situation to be analyzed more closely and jointly come up with strategies for overcoming the obstacle," HP3 Principal Investigator Tilman Spohn of DLR wrote in a blog post. He added that the team wants to hold off from further hammering for about two weeks.

Data show that the probe itself continues to function as expected: After heating by 50 degrees Fahrenheit (28 degrees Celsius), it measures how quickly that heat dissipates in the soil. This property, known as thermal conductivity, helps calibrate sensors embedded in a tether trailing from the back of the mole. Once the mole is deep enough, these tether sensors can measure Mars' natural heat coming from inside the planet, which is generated by radioactive materials decaying and energy left over from Mars' formation.

The team will be conducting further heating tests this week to measure the thermal conductivity of the upper surface. They will also use a radiometer on InSight's deck to measure temperature changes on the surface. Mars' moon Phobos will pass in front of the Sun several times this week; like a cloud passing overhead, the eclipse will darken and cool the ground around InSight.

For more details, visit DLR's blog: https://www.dlr.de/blogs/en/desktopdefault.aspx

For more information about InSight, visit: https://mars.nasa.gov/insight/

Heat and Physical Properties Package (HP3): https://mars.nasa.gov/insight/spacecraft/instruments/hp3/

Image (mentioned), Text, Credits: NASA/Tony Greicius/JPL/Andrew Good.

Greetings, Orbiter.ch

Weighing Galactic Wind Provides Clues to Evolution of Galaxies













NASA & DLR - SOFIA Mission patch.

March 5, 2019

The Cigar Galaxy (M82) is famous for its extraordinary speed in making new stars, with stars being born 10 times faster than in the Milky Way. Now, data from the Stratospheric Observatory for Infrared Astronomy, SOFIA, have been used to study this galaxy in further detail, revealing how material that affects the evolution of galaxies may get into intergalactic space.

Researchers found, for the first time, that the galactic wind flowing from the center of the Cigar Galaxy (M82) is aligned along a magnetic field and transports a very large mass of gas and dust — the equivalent mass of 50 to 60 million Suns.

“The space between galaxies is not empty,” said Enrique Lopez-Rodriguez, a Universities Space Research Association scientist working on the SOFIA team. “It contains gas and dust — which are the seed materials for stars and galaxies. Now, we have a better understanding of how this matter escaped from inside galaxies over time.”


Image above: Composite image of the Cigar Galaxy (also called M82), a starburst galaxy about 12 million light-years away in the constellation Ursa Major. The magnetic field detected by SOFIA, shown as streamlines, appears to follow the bipolar outflows (red) generated by the intense nuclear starburst. The image combines visible starlight (gray) and a tracing of hydrogen gas (red) from the Kitt Peak Observatory, with near-infrared and mid-infrared starlight and dust (yellow) from SOFIA and the Spitzer Space Telescope. Image Credits: NASA/SOFIA/E. Lopez-Rodiguez; NASA/Spitzer/J. Moustakas et al.

Besides being a classic example of a starburst galaxy, which means it is forming an extraordinary number of new stars compared with most other galaxies, M82 also has strong winds blowing gas and dust into intergalactic space. Astronomers have long theorized that these winds would also drag the galaxy’s magnetic field in the same direction, but despite numerous studies, there has been no observational proof of the concept.

Researchers using the airborne observatory SOFIA found definitively that the wind from the Cigar Galaxy not only transports a huge amount of gas and dust into the intergalactic medium, but also drags the magnetic field so it is perpendicular to the galactic disc. In fact, the wind drags the magnetic field more than 2,000 light-years across — close to the width of the wind itself.

“One of the main objectives of this research was to evaluate how efficiently the galactic wind can drag along the magnetic field,” said Lopez-Rodriguez. “We did not expect to find the magnetic field to be aligned with the wind over such a large area.”

These observations indicate that the powerful winds associated with the starburst phenomenon could be one of the mechanisms responsible for seeding material and injecting a magnetic field into the nearby intergalactic medium. If similar processes took place in the early universe, they would have affected the fundamental evolution of the first galaxies.

The results were published in January 2019 in the Astrophysical Journal Letters: https://iopscience.iop.org/article/10.3847/2041-8213/aaf8b9

SOFIA’s newest instrument, the High-resolution Airborne Wideband Camera-Plus, or HAWC+, uses far-infrared light to observe celestial dust grains, which align along magnetic field lines. From these results, astronomers can infer the shape and direction of the otherwise invisible magnetic field. Far-infrared light provides key information about magnetic fields because the signal is clean and not contaminated by emission from other physical mechanisms, such as scattered visible light.

“Studying intergalactic magnetic fields — and learning how they evolve — is key to understanding how galaxies evolved over the history of the universe,” said Terry Jones, professor emeritus at the University of Minnesota, in Minneapolis, and lead researcher for this study. “With SOFIA’s HAWC+ instrument, we now have a new perspective on these magnetic fields.”

The HAWC+ instrument was developed and delivered to NASA by a multi-institution team led by the Jet Propulsion Laboratory (JPL). JPL scientist and HAWC+ Principal Investigator Darren Dowell, along with JPL scientist Paul Goldsmith, were part of the research team using HAWC+ to study the Cigar Galaxy.


Animation above: SOFIA, the Stratospheric Observatory for Infrared Astronomy Boeing 747SP, telescope door opening. Animation Credit: NASA

SOFIA, the Stratospheric Observatory for Infrared Astronomy, is a Boeing 747SP jetliner modified to carry a 106-inch diameter telescope. It is a joint project of NASA and the German Aerospace Center, DLR. NASA’s Ames Research Center in California’s Silicon Valley manages the SOFIA program, science and mission operations in cooperation with the Universities Space Research Association headquartered in Columbia, Maryland, and the German SOFIA Institute (DSI) at the University of Stuttgart. The aircraft is maintained and operated from NASA’s Armstrong Flight Research Center Hangar 703, in Palmdale, California.

SOFIA: http://www.nasa.gov/mission_pages/SOFIA/index.html

SOFIA’s newest instrument: https://www.nasa.gov/ames/image-feature/one-of-a-kind-camera-added-to-sofia

Galaxies: https://www.nasa.gov/subject/6894/galaxies

Images (mentioned), Text, Credits: NASA/Ames Research Center/Kassandra Bell and Arielle Moullet, USRA SOFIA Science Center.

Greetings, Orbiter.ch

The science circling above us on the Space Station












ESA - Columbus Module patch.

5 March 2019

The International Space Station orbits Earth, 400 km above our heads, running scientific experiments that cannot be done anywhere else. Read on for our bi-weekly update on European science in space.

ASIM on Columbus

This week ESA is highlighting space weather, so let us start with the Atmosphere–Space Interactions Monitor (ASIM) that was installed outside Europe’s Columbus laboratory on the International Space Station last year.

This suite of instruments monitors high-altitude lightning phenomena with unprecedented accuracy. It is the most sensitive x- and gamma-ray instrument flown in space and monitors Earth in a broad electromagnetic spectral range with microsecond accuracy.

The space-based storm hunter is working extremely well and exciting results are expected soon. Some of ASIM’s sensitive instruments only record at night-time, during the week of 16 February, the Space Station flew with an orientation that placed the Sun in ASIM’s field of view for extended periods. This restricted its night-time viewing possibilities to only 20 minutes per orbit.

(Click on the image for enlarge)

Even though these luminous lightning events occur at high altitudes, they are not actually considered “space weather”. However, ASIM does have a trick up its sleeve. In the future, its Brussels, Belgium-based operators, will occasionally direct the storm hunter’s attention to monitor Aurorae. This is part of ASIM’s “secondary science” goals and its equipment is well-suited and perfectly placed to observe the dancing lights caused by electromagnetic radiation hitting Earth’s atmosphere.

On the inside

Inside the Space Station many automated European experiments continued to collect data over the past two weeks. The Dosis-3D dosimeters dotted around the outpost that passively keep track of the cosmic radiation quietly did their thing. Meanwhile the Electromagnetic Levitator was fired up for another round of weightless metallurgy. The facility was pumped with helium on 25 February for a number of cycles of heating and cooling ferro-boron alloys to understand and improve casting of this metal for industrial applications on Earth.

Dosis-3D radiation monitor in Columbus (orange)

NASA astronaut Anne McClain swapped the flash discs that record valuable scientific data for the Sodi-DCMIX experiment that then ran throughout the week of 18 February. This experiment looks at how fluids and gases behave in space. Molecules are constantly moving and colliding even though there is no microscope powerful enough to see the movement. Scientists are interested in observing and measuring how these movements, combined with temperature changes, lead the fluid’s constituents to redistribute themselves.

Anne, Oleg and David

A number of facilities were prepared to start new batches of science runs in the coming weeks. Russian commander of the Space Station Oleg Kononenko familiarised himself with the Roscosmos–ESA plasma laboratory PK-4 and the Fluid Science Laboratory worked on the Soft Matter Dynamics experiments.

The third experiment for Europe’s commercial facility inside the Columbus laboratory continued to operate in its ICE Cube and Canadian astronaut David Saint-Jacques prepared the mini-computers called AstroPi for the start of the Astro Pi challenge.

Related links:

Sodi-DCMIX experiment: https://www.esa.int/spaceinimages/Images/2016/08/SODI-DCMIX_3

Soft Matter Dynamics: http://www.esa.int/Our_Activities/Human_and_Robotic_Exploration/International_Space_Station/Fake_plastic_atoms

ICE Cube: http://www.icecubesservice.com/

Astro Pi challenge: https://www.esa.int/Education/AstroPI/The_European_Astro_Pi_Challenge_2018_2019_run_your_experiment_in_space

Experiment archive: http://eea.spaceflight.esa.int/

European space laboratory Columbus: http://www.esa.int/Our_Activities/Human_and_Robotic_Exploration/Columbus

International Space Station Benefits for Humanity: http://www.esa.int/Our_Activities/Human_and_Robotic_Exploration/International_Space_Station_Benefits_for_Humanity

International Space Station (ISS): http://www.esa.int/Our_Activities/Human_and_Robotic_Exploration/International_Space_Station

Images, Text, Credits: ESA/NASA.

Greetings, Orbiter.ch

Cluster helps solve mysteries of geomagnetic storms








ESA - Cluster Mission logo.

05 March 2019

In a powerful example of combining multi-mission satellite data with computer simulations, scientists have used ESA's Cluster mission to reveal details about how electrons interact with waves in Earth's magnetic environment. This research helps explain the behaviour of particles during geomagnetic storms and has significant implications for our understanding of space weather, which is in turn necessary to help protect space technology from the potentially harmful effects of energetic particles generated during such storms.


Image above: Cluster and the Van Allen Probes in Earth's magnetosphere. Image Credits: ESA/NASA/SOHO/LASCO/EIT.

The Sun constantly bombards Earth with a flow of charged particles known as the solar wind. Powerful shocks arising in this flow can cause disturbances in Earth's magnetosphere – the protective bubble created by our planet's magnetic field – which are known as geomagnetic storms.

These storms transfer a large amount of energy to the magnetosphere, eventually causing electrons to accelerate along magnetic field lines, which are continuous curves indicating the magnetic field direction, extending between the poles of our planet. When these electrons enter the ionosphere – the upper layer of Earth's atmosphere – the resulting interaction causes atoms like nitrogen and oxygen to release light, leading to the beautiful displays known as the aurora. The most energetic electrons can also cause serious damage to satellites and other electronic infrastructure.

For a long time, the detailed mechanisms behind the movement of electrons between the magnetosphere and the ionosphere remained a mystery. But recently a team of scientists discovered that certain types of oscillations in Earth's magnetic field can explain some intriguing observations of how electrons behave along magnetic field lines.

As the solar wind varies in speed and intensity, bursts of plasma can be fired from the magnetotail, in the opposite direction to the Sun, towards Earth, through a process known as magnetic reconnection. When these fast plasma streams reach Earth, they impact high-pressure plasma on the magnetic field lines. This causes the magnetic field lines to vibrate, giving rise to standing waves – also known as Alfvén waves – oscillating perpendicular to the dipolar magnetic field lines.

Akin to waves on a guitar string, these oscillations occur on a range of scales, including small-scale waves comparable to the orbits of particles moving along the field lines. In this case, these waves are called Kinetic-Scale Field Line Resonances (KFLRs) and, while always present in the magnetosphere, they are enhanced when magnetic storms on the Sun send highly energetic solar wind flows towards Earth, triggering a geomagnetic storm.


Image above: Electrons trapped in kinetic scale field line resonance. Image Credit: ESA.

Studying observations of Earth's magnetic field taken on different occasions by ESA's Cluster mission and NASA's Van Allen Probes, a team of scientists noticed that, in both sets of data, the distribution of electrons within these waves was stretched following the direction of magnetic field lines from the North Pole to the South Pole.

However, the detailed structure of the distributions was different in the two sets of observations, which were taken at significantly different points along the magnetic field. The Van Allen Probes observations were performed in June 2013 during a geomagnetic storm; the Cluster observations, dating back to February 2001, were obtained in storm-like circumstances, under enhanced auroral conditions.

To investigate the nature of the electron distributions and the differences in the details  seen by the two missions, the scientists brought in a computer simulation.

"I had created the computer model to study the interaction of electrons within magnetospheric Alfvén waves, and these observations provided us with the first opportunity to look specifically at kinetic-scale field line resonances in the inner magnetosphere," explains project lead Peter Damiano from the University of Alaska Fairbanks, USA.

"We were surprised to find that the simulations reproduced the characteristics of the observations from both missions very well. And when we compared the observations and the simulations, it became clear that the stretching of the electron distribution in the direction of Earth's magnetic field was caused, in both cases, by the trapping of electrons within the KFLRs."


Image above: Cluster measurement of electron distribution function. Image Credits: ESA/Cluster; P. Damiano et al. (2018).

Since the KFLRs evolve over time, so does the trapped electron population, and this explains the difference between the observations by the two missions. The Cluster data demonstrated more clearly how the distribution changes over time, because observations were made every four seconds – similar to the oscillation period of the waves. The Van Allen Probes data, on the other hand, were taken every eleven seconds, so the distribution of electrons was smoothed out and it was more difficult to see how it changed over time. As the spacecraft took measurements while in different locations, the study also revealed that electrons could be trapped at different points along the magnetic field lines because of the global extent of the waves. This illustrates how the simulations help scientists connect and understand seemingly remote observations.

Being closer to the ionosphere, the Cluster observations of electron distribution functions also illustrated the significant loss of electrons from the magnetosphere to ionosphere – which can contribute to the generation of auroral emissions at high altitudes. The simulations showed that this loss might be due to the interaction of KFLRs with non-trapped electrons.


Image above: High-altitude red aurora observed from the International Space Station. Image Credits: ESA/NASA.

Although scientists have a good idea of how the magnetosphere works overall, many specific details are still unclear, and this study is one step towards furthering our understanding.

"Our ultimate goal is to understand magnetospheric processes well enough to forecast how particles behave around Earth, including predicting the locations of the most dangerous geomagnetic storms," explains Philippe Escoubet, Cluster mission scientist.

"This would help us to forecast the impact of the energetic particle environment around Earth on all sorts of technological infrastructure."

During geomagnetic storms, KFLRs are enhanced, modifying the distributions of particles in the Van Allen radiation belts – two doughnut-shaped regions of highly energetic charged particles surrounding Earth. These changes to the plasma can impact other electromagnetic waves that are linked to the acceleration of very high-energy electrons, and consequently the response of the magnetosphere during geomagnetic storms.

"Elucidating how electrons interact with KFLRs during such storms is vital for understanding and predicting space weather," continues Damiano.

Space weather refers to the variable solar conditions that can influence our planet's surroundings, with effects on the performance of human technology on ground and in space. As spacecraft electronics can be severely affected by highly-energetic charged particles, especially at times of strong geomagnetic activity, it is vital to recognise the impact of magnetospheric processes on satellite infrastructure, and science missions like Cluster and the Van Allen Probes are crucial to these efforts.


Image above: Artist's impression of the Cluster spacecraft. Image Credits: ESA/ATG medialab.

"If we can accurately forecast when geomagnetic storms occur, we can take measures such as switching off spacecraft electronics to avoid short-circuiting, and flying aeroplanes around storms to prevent excess radiation exposure to crew and passengers," continues Escoubet.

"Space weather can also affect GPS signals and better understanding its impacts would help us generate more accurate location data."

Launched in 2000, Cluster has helped unearth a plethora of interesting details about the magnetosphere and its interaction with the solar wind. The mission's four spacecraft can access high latitudes above our planet, providing new and unprecedented measurements of the magnetosphere.

This result highlights how combining data from more than one mission allows us to study magnetospheric phenomena in a totally new way. It also demonstrates the richness of the Cluster and Van Allen Probe data archives and their combined potential to make new discoveries with far-reaching applications.

Notes for Editors:

"Electron Distributions in Kinetic Scale Field Line Resonances: A Comparison of Simulations and Observations" by P.A. Damiano et al (2018) is published in Geophysical Research Letters: https://agupubs.onlinelibrary.wiley.com/doi/full/10.1029/2018GL077748

Cluster is a constellation of four spacecraft flying in formation around Earth. It is the first space mission able to study, in three dimensions, the natural physical processes occurring within and in the near vicinity of the Earth's magnetosphere. Launched in 2000, it is composed of four identical spacecraft orbiting the Earth in a pyramidal configuration, along a nominal polar orbit of 4 × 19.6 Earth radii (1 Earth radius = 6380 km). Cluster's payload consists of state-of-the-art plasma instrumentation to measure electric and magnetic fields over wide frequency ranges, and key physical parameters characterising electrons and ions from energies of near 0 eV to a few MeV. The science operations are coordinated by the Joint Science Operations Centre (JSOC) at the Rutherford Appleton Laboratory, United Kingdom, and implemented by ESA's European Space Operations Centre (ESOC), in Darmstadt, Germany.

More information on the Cluster mission can be found here: http://sci.esa.int/cluster

NASA's Van Allen Probes (formerly known as the Radiation Belt Storm Probes, RBSP) study two extreme and dynamic regions of space known as the Van Allen Radiation Belts that surround Earth. Named for their discoverer, James Van Allen, these two concentric, doughnut-shaped rings are filled with high-energy particles that gyrate, bounce, and drift through the region, sometimes shooting down to Earth's atmosphere, sometimes escaping out into space. The radiation belts swell and shrink over time as part of a much larger space weather system driven by energy and material that erupt off the sun's surface and fill the entire solar system.

More information on the Van Allen Probes can be found here: https://www.nasa.gov/mission_pages/rbsp/mission/index.html

Images (mentioned), Text, Credits: ESA/Philippe Escoubet/Geophysical Institute, University of Alaska Fairbanks/Peter A. Damiano.

Greetings, Orbiter.ch

lundi 4 mars 2019

Making Space for SpaceX Crew Dragon, Spacewalk Prep and Science













ISS - Expedition 58 Mission patch.

March 4, 2019

Expedition 58 capped off its busy weekend with additional outfitting for the SpaceX Crew Dragon, which had only completed its hard dock to the International Space Station yesterday morning as part of the Demo-1 uncrewed flight test.

After opening the hatch between the two spacecraft, the crewmates configured Crew Dragon for its stay while barnacled to the orbiting laboratory. This work included installation of the intramodule ventilation system, which helps cycle air from Crew Dragon to station. The crew members ticked off additional items from their checklist, also installing window covers and checking valves before taking part in a welcoming ceremony for the visiting vehicle at 10:45 a.m. EST Sunday, which aired on NASA Television.


Image above: Expedition 58 crew members Anne McClain, David Saint-Jacques and Oleg Konenenko welcome the SpaceX Crew Dragon to the International Space Station after a successful docking on March 3, 2019, ushering in the era of NASA’s Commercial Crew Program. Image Credit: NASA TV.

Today, NASA astronaut Anne McClain, David Saint-Jacques of the Canadian Space Agency and Russian cosmonaut and Expedition 58 Commander Oleg Kononenko went over emergency procedures specific to Crew Dragon’s stay in orbit. While Crew Dragon is designed to remain docked to the space station for up to 210 days, this test of the spacecraft will be much shorter, ending early Friday morning. Crew Dragon is expected to return to Earth with a splashdown in the Atlantic Ocean at approximately 8:45 a.m. on Friday, March 8—a little more than six hours after its separation from station.

Crew Dragon welcoming ceremony

While Kononenko was focused on the Plasma Kristall-4 experiment, which investigates the liquid phase and flow phenomena of complex plasmas, for this week’s runs, McClain and Saint-Jacques spent most of the day in the Quest airlock. The pair worked on their EMU [Extravehicular Mobility Unit] spacesuits, making sure their suits fit in advance of a series of spacewalks currently slated for late March and early April.

Saint-Jacques also made time in the day to connect with junior high school and college students in Hallifax, Nova Scotia, through a space-to-ground downlink where he shared his perspective of living and working aboard the world’s only microgravity laboratory.

Related article:

SpaceX Crew Dragon Hatch Open
https://orbiterchspacenews.blogspot.com/2019/03/spacex-crew-dragon-hatch-open.html

Related links:

Expedition 58: https://www.nasa.gov/mission_pages/station/expeditions/expedition58/index.html

Plasma Kristall-4 experiment: https://www.nasa.gov/mission_pages/station/research/experiments/1343.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

Image (mentioned), Video, Text, Credits: NASA/Catherine WilliamsNASA TV/SciNews.

Best regards, Orbiter.ch

Web@30: The 30-year anniversary of an invention that changed the world













CERN - European Organization for Nuclear Research logo.

4 March, 2019

Geneva, 4 March 2019. Thirty years ago, a young computer expert working at CERN combined ideas about accessing information with a desire for broad connectivity and openness. His proposal became the World Wide Web. CERN is celebrating the 30th anniversary of this revolutionary invention with a special day on 12 March.

In March 1989, while working at CERN, Sir Tim Berners-Lee wrote his first proposal for an internet-based hypertext system to link and access information across different computers. In November 1990, this “web of information nodes in which the user can browse at will” was formalised as a proposal, “WorldWideWeb: Proposal for a HyperText Project”, by Berners-Lee, together with a CERN colleague, Robert Cailliau. By Christmas that year, Berners-Lee had implemented key components, namely html, http and URL, and created the first Web server, browser and editor (WorldWideWeb).

While working at CERN, Sir Tim Berners-Lee invented the World Wide Web (Image: CERN)

On 30 April 1993, CERN released the latest version of the WWW software into the public domain and made it freely available for anyone to use and improve. This decision encouraged the use of the Web, and society to benefit from it: half of the world’s population is now online, and close to 2 billion websites exist. Openness has been endemic to CERN’s culture ever since its Convention was signed in 1953. CERN promotes the distribution and open sharing of software, technology, publications and data, through initiatives such as open source software, open hardware, open access publishing and the CERN Open Data Portal.

“It is a great honour and a source of pride for CERN to host an event to mark the 30th anniversary of Tim Berners-Lee’s proposal for what would become the World Wide Web, and I am delighted that Sir Tim will be with us on the day,” said CERN Director-General, Fabiola Gianotti. "The Web's invention has transformed our world, and continues to show how fundamental research fuels innovation. CERN's culture of openness was a key factor in the Laboratory’s decision in 1993 to make the web available free to everybody, a key step in its development and subsequent spread.”

On the morning of 12 March, the Web@30 event at CERN will kick off celebrations around the world. Sir Tim Berners-Lee, Robert Cailliau and other Web pioneers and experts will share their views on the challenges and opportunities brought by the Web. The event will be opened by Fabiola Gianotti, CERN’s Director-General, and is being organised by CERN in collaboration with two organisations founded by Berners-Lee: the World Wide Web Foundation and the World Wide Web Consortium (W3C).

World Wide Web (WWW). Image Credit: Wikimedia

As part of a project to preserve some of the digital assets associated with the birth of the Web, CERN organised a hackathon (11-15 February 2019) to recreate the first browser (WorldWideWeb) using current technology. Previously, CERN promoted the restoration of the first ever website and the line-mode browser.

We have a limited number of seats available for the media; interested journalists should RSVP (press@cern.ch) by 6 March 2019. The event will be broadcast by EBU, webcast and streamed live on CERN Facebook and YouTube channels. Some of the speakers and current members of CERN’s IT department – home to the Worldwide LHC Computing Grid (WLCG) – are available for interviews prior to the event. For more information, please contact press@cern.ch.

To request interviews with Web Foundation spokespeople: press@webfoundation.org

Note:

CERN, the European Organization for Nuclear Research, is one of the world’s largest and most respected centres for scientific research. Its business is fundamental physics, finding out what the Universe is made of and how it works. At CERN, the world’s largest and most complex scientific instruments are used to study the basic constituents of matter — the fundamental particles. By studying what happens when these particles collide, physicists learn about the laws of Nature.

The instruments used at CERN are particle accelerators and detectors. Accelerators boost beams of particles to high energies before they are made to collide with each other or with stationary targets. Detectors observe and record the results of these collisions.

Additional resources:

•    Web@30 website: https://web30.web.cern.ch/

•    The birth of the web: https://home.cern/science/computing/birth-web

•    History of the web timeline: https://web30.web.cern.ch/web-history

•    History of the CERN Web Software Public Releases: https://cds.cern.ch/record/2126020?ln=en%C2%A0

•    Licensing the web: https://home.cern/science/computing/birth-web/licensing-web

•    Information Management: A Proposal (Sir Tim Berners-Lee, March 1989, May 1990): https://cds.cern.ch/record/369245/files/dd-89-001.pdf

•    Collection of photos and videos about the web: https://home.cern/resources/image/computing/world-wide-web-images-gallery
https://videos.cern.ch/search?page=1&size=21&q=%22web@30%22

•    History of the web video: YouTube, HD, high-res: https://www.youtube.com/watch?v=k0gvAyCubGQ&feature=youtu.be

•    My web 30 YouTube playlist: https://www.youtube.com/playlist?list=PLAk-9e5KQYEpPnztdL95uYcMGBh0Kxfhy%C2%A0

Related links:

CERN’s IT department: https://home.cern/science/computing

Worldwide LHC Computing Grid (WLCG): https://home.cern/science/computing/grid

World Wide Web Foundation: https://webfoundation.org/

World Wide Web Consortium (W3C): https://www.w3.org/

World Wide Web: https://home.cern/science/computing/birth-web

For more information about European Organization for Nuclear Research (CERN), Visit: https://home.cern/

Images (mentioned), Text, Credits: CERN.

Best regards, Orbiter.ch

Methane and ozone data products from Copernicus Sentinel-5P











ESA - Sentinel-5P Mission logo.

4 March 2019

The Copernicus Sentinel-5P mission has been used to produce global maps of two atmospheric gases responsible for making our world warmer: methane, which is a particularly potent greenhouse gas, and ozone, which is a greenhouse gas and a pollutant in the lower part of the atmosphere. The maps give insight into where these gases are coming from.

Launched in October 2017, Sentinel-5P is the first Copernicus satellite dedicated to monitoring our atmosphere. It carries an advanced multispectral imaging spectrometer called Tropomi to image a wide range of air pollutants more accurately and at a higher spatial resolution than ever before.

Global methane

Prior to making data available to the public, scientists spend months testing and evaluating the information to make sure it is accurate. The mission is already being used to map pollutants such as nitrogen and sulphur dioxide and to monitor the hole in the ozone layer over Antarctica.

And now, data on methane and ozone in the troposphere, which is the lower part of the atmosphere, are available.

While carbon dioxide is more abundant in the atmosphere and therefore more commonly associated with global warming, methane is about 30 times more potent as a heat-trapping gas. It enters the atmosphere mainly from the fossil fuel industry, landfill sites, livestock farming, rice agriculture and wetlands.

Sentinel-5P

Jochen Landgraf, from the SRON Netherlands Institute for Space Research, said, “We have spent more than a year carefully testing the methane data and now the availability of data to everyone offers new opportunities for climate services.

“Like all gases that enter the atmosphere, methane is spread by the wind, so it is unclear where it originates. But thanks to Tropomi’s ability to measures at a spatial resolution of 7 x 7 km and global coverage every 24 hours, we can see daily methane emissions on regional scales and also larger point sources.

Methane over wetlands in Nigeria

“This information is important for policy makers working on climate regulations and for checking that countries adhere to agreements.”

Michael Buchwitz, from the University of Bremen, Germany, and who leads ESA’s Climate Change Initiative greenhouse gas project, noted, “Over the coming months we will be further studying these data in detail, comparing them with ground-based observations and global models, but we expected that a lot can be learned about atmospheric methane and its various emission sources.”

The new data release also includes tropospheric ozone. Ozone high up in the stratosphere shields us from the Sun’s harmful rays of ultraviolet radiation, but lower down in the troposphere it is a pollutant and can cause respiratory problems and can damage vegetation. Ozone is also a greenhouse gas.

Diego Loyola, from the German Aerospace Center, explains, “Ozone in the troposphere is an air pollutant and a greenhouse gas contributing to global warming.”

Global tropospheric ozone

“Tropospheric ozone is a difficult greenhouse gas to measure because of its short lifespan and the fact that concentrations can vary hugely from place to place,” continued Dr Loyola.

“The unprecedented spatial resolution offered by Copernicus Sentinel-5P’s Tropomi instrument means that we can now better analyse the complex relationship between tropospheric ozone and climate.”

Claus Zehner, ESA’s Sentinel-5P mission manager, noted, “With this new methane and tropospheric ozone data release, we are now providing almost all of the Copernicus Sentinel-5P’s data products to the user community.

“Both products are important for monitoring climate change and can also be used to gain experience for future missions such as for the candidate Copernicus expansion mission that is being developed to measure carbon dioxide.”

The Tropomi instrument was developed jointly by ESA and the Netherlands Space Office.

Related links:

Sentinel-5P: http://www.esa.int/Our_Activities/Observing_the_Earth/Copernicus/Sentinel-5P

Sentinel data access: https://scihub.copernicus.eu/

SRON Netherlands Institute for Space Research: https://www.sron.nl/

Royal Netherlands Meteorological Institute: http://www.knmi.nl/over-het-knmi/about

Netherlands Space Office: http://www.spaceoffice.nl/en/

University of Bremen–Institute of Environmental Physics: http://www.iup.uni-bremen.de/carbon_ghg/

DLR: http://www.dlr.de/dlr;internal&action=_setlanguage.action?LANGUAGE=en

Copernicus: http://www.esa.int/Our_Activities/Observing_the_Earth/Copernicus

Images, Animation, Text, Credits: ESA/contains modified Copernicus data (2018–19), processed by SRON/processed by DLR.

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