jeudi 26 août 2021

CASC - Long March-3B launches TJSW-7

 







CASC -  China Aerospace Science and Technology Corporation logo.


August 26, 2021

Long March-3B carrying TJSW-7 liftoff

A Long March-3B launch vehicle launched the Communication Technology Test Satellite 7 (TJSW-7) from the Xichang Satellite Launch Center, Sichuan Province, southwest China, on 24 August 2021, at 15:41 UTC (23:41 local time).

Long March-3B launches TJSW-7

According to official sources, the satellite has successfully entered the planned orbit. TJSW-7 (通信技术试验卫星七号) will be “mainly used to carry out communication technology test missions”.

Communication Technology Test Satellite 7 or TJSW-7. (Illustration)

Related article:

CASC - Long March-3B launches TJSW-5
https://orbiterchspacenews.blogspot.com/2020/01/casc-long-march-3b-launches-tjsw-5.html

For more information about China Aerospace Science and Technology Corporation (CASC): http://english.spacechina.com/n16421/index.html

Images, Video, TexCredits: China Central Television (CCTV)/China Aerospace Science and Tt, echnology Corporation(CASC)/SciNews/Orbiter.ch Aerospace/Roland Berga.

Greetings, Orbiter.ch

NASA’s Perseverance Plans Next Sample Attempt

 







NASA - Mars 2020 Perseverance Rover logo.


August 26, 2021

The rover will abrade a rock this week, allowing scientists and engineers to decide whether that target would withstand its powerful drill.


Image above: NASA’s Perseverance Mars rover will abrade the rock at the center of this image, allowing scientists and engineers to assess whether it would hold up to the rover’s more powerful sampling drill. Image Credits: NASA/JPL-Caltech.

In its search for signs of ancient microbial life on Mars, NASA’s Perseverance rover is once again preparing to collect the first of many rock core samples that could eventually be brought to Earth for further study.

This week, a tool on the rover’s 7-foot-long (2-meter-long) robotic arm will abrade the surface of a rock nicknamed “Rochette,” allowing scientists to look inside and determine whether they want to capture a sample with the rover’s coring bit. Slightly thicker than a pencil, the sample would be sealed in one of the 42 remaining titanium tubes aboard the rover.

Should the team decide to acquire a core from this rock, the sampling process would be initiated next week.

The mission attempted to capture their first record of the crater floor on Aug. 6 from a rock that ultimately proved too crumbly, breaking into powder and fragments of material too small to be retained in the sample tube before it was sealed and stored within the rover.

Perseverance has since trucked 1,493 feet (455 meters) to a ridge nicknamed “Citadelle” – French for “castle,” a reference to how this craggy spot overlooks Jezero Crater’s floor. The ridge is capped with a layer of rock that appears to resist wind erosion, a sign that it’s more likely to hold up during drilling.


Image above: A close-up of the rock, nicknamed “Rochette,” that the Perseverance science team will examine in order to determine whether to take a rock core sample from it. Image Credits: NASA/JPL-Caltech.

“There are potentially older rocks in the ‘South Séítah’ region ahead of us, so having this younger sample can help us reconstruct the whole timeline of Jezero,” said Vivian Sun, one of the mission’s scientists at NASA’s Jet Propulsion Laboratory in Southern California.

The team has added a step to the sampling process for this coming attempt: After using its Mastcam-Z camera system to peer inside the sample tube, the rover will pause the sampling sequence so the team can review the image to ensure a rock core is present. Once a sample is confirmed, they will command Perseverance to seal the tube.

Although the pulverized rock eluded capture in the initial sample-acquisition effort, the first sample tube still contains a sample of Martian atmosphere, which the mission had originally planned to acquire at a later time.

“By returning samples to Earth, we hope to answer a number of scientific questions, including the composition of Mars’ atmosphere,” said Ken Farley, Perseverance’s project scientist at Caltech in Pasadena, California. “That’s why we’re interested in an atmospheric sample along with rock samples.”

While atop Citadelle, Perseverance will use its subsurface radar, called RIMFAX – short for Radar Imager for Mars’ Subsurface Experiment – to peer at rock layers below it. The top of the ridge will also provide a great vantage point for Mastcam-Z to look for other potential rock targets in the area.

More About the Mission

A key objective for Perseverance’s mission on Mars is astrobiology, including the search for signs of ancient microbial life. The rover will characterize the planet’s geology and past climate, pave the way for human exploration of the Red Planet, and be the first mission to collect and cache Martian rock and regolith (broken rock and dust).

Subsequent NASA missions, in cooperation with ESA (European Space Agency), would send spacecraft to Mars to collect these sealed samples from the surface and return them to Earth for in-depth analysis.

Perseverance Rover sampling operation. Animation Credits: NASA/JPL-Caltech

The Mars 2020 Perseverance mission is part of NASA’s Moon to Mars exploration approach, which includes Artemis missions to the Moon that will help prepare for human exploration of the Red Planet.

JPL, which is managed for NASA by Caltech, built and manages operations of the Perseverance rover.

For more about Perseverance:

https://mars.nasa.gov/mars2020/ and https://nasa.gov/perseverance

Related articles:

Why NASA’s Mars rover failed to collect its first rock core
https://orbiterchspacenews.blogspot.com/2021/08/why-nasas-mars-rover-failed-to-collect.html

NASA’s Perseverance Team Assessing First Mars Sampling Attempt
https://orbiterchspacenews.blogspot.com/2021/08/nasas-perseverance-team-assessing-first.html

Images (mentioned), Animation (mentioned), Text, Credits: NASA/Tony Greicius/Karen Fox/Alana Johnson/JPL/Andrew Good.

Best regards, Orbiter.ch

CASC - Long March-2C launches three satellites

 







CASC - China Aerospace Science and Technology Corporation logo.


August 26, 2021

Long March-2C launch

A Long March-2C launch vehicle launched three communication satellites from the Jiuquan Satellite Launch Center, Gansu Province, northwest China, on 24 August 2021, at 11:15 UTC (19:15 local time).

Long March-2C launches three satellites

According to official sources, the three “communication technology test satellites” were successfully placed into the desired orbits. For this mission, the Long March-2C launch vehicle had a Yuanzheng-1 (Expedition-1) upper stage and a 4.2m diameter fairing.

For more information about China Aerospace Science and Technology Corporation (CASC): http://english.spacechina.com/n16421/index.html

Credits: China Central Television (CCTV)/China Aerospace Science and Technology Corporation (CASC)/SciNews/Orbiter.ch Aerospace/Roland Berga.

Greetings, Orbiter.ch

My Favorite Martian Image: Helicopter Sees Potential Rover Road Ahead

 





NASA - Ingenuity Mars Helicopter logo.


August 26, 2021

Perseverance scientist impressed with aerial images of location considered for rover exploration.


Image above: This image of the South Séítah region of Jezero Crater was captured by NASA's Ingenuity Mars Helicopter during its 12th flight at Mars, on August 16, 2021. Image Credits: NASA/JPL-Caltech.

Ask any space explorer, and they’ll have a favorite photograph or two from their mission. For Ken Farley, the project scientist for NASA’s Perseverance rover, one of his current favorites is a color image of “South Seítah,” an area the mission’s science team had considered potentially worthy of a rover visit. The agency’s Ingenuity Mars Helicopter took the image during its 12th and most recent flight, on Aug. 16.

Prior to Ingenuity’s latest flight, the majority of what the Perseverance science team knew of the southern portion of the Seítah feature came from orbiter images. Based on that data, they believed the site could possibly be a treasure trove of complex geology, providing information that could play a valuable role as the rover team searches for signs of ancient microbial life and attempts to characterize the geology of the area and to understand the area’s history.

They used the rotorcraft’s images to look for signs of layered, sedimentary rock that could have been deposited in water, intriguing rocky outcrops accessible to the rover, and safe routes the rover could take into and back out of the area.

“From a science perspective, these images of South Seítah are the most valuable Ingenuity has taken to date,” said Farley, who’s based at Caltech. “And part of their value may be in what they are not showing. Sedimentary layers in rocks are not readily apparent in the image, and there may be areas that could be difficult to negotiate with the rover. There is work to do by our science and rover driving teams to understand better how to respond to the new data.”

Ingenuity Mars Helicopter photos reconnaissance. Animation Credits: NASA/JPL-Caltech

Ingenuity obtained 10 images of the area as it flew into and then back out of South Seítah at an altitude of 33 feet (10 meters). The flight was one of the most complicated the helicopter team has executed so far – the longest-duration flight to date (169.5 seconds) with multiple waypoints as it flew from relatively non-descript terrain outside South Seítah into much more varied terrain inside, and then back out again.

“What this image may be saying is, we don’t need to drive further west to obtain the best geologic variety of this first science campaign,” said Farley. “If we decide to make the trip to South Seítah, we’ve got some valuable intel on what we’ll encounter. And if the decision is to stick around ‘Artuby Ridge,’ the rover’s current location, we’ll have saved valuable time. It’s a win-win.”

More About Ingenuity

The Ingenuity Mars Helicopter was built by JPL, which also manages the operations demonstration activity during its extended mission for NASA Headquarters. It is supported by NASA’s Science, Aeronautics Research, and Space Technology mission directorates. NASA’s Ames Research Center in California’s Silicon Valley, and NASA’s Langley Research Center in Hampton, Virginia, provided significant flight performance analysis and technical assistance during Ingenuity’s development. AeroVironment Inc., Qualcomm, and SolAero also provided design assistance and major vehicle components. Lockheed Martin Space designed and manufactured the Mars Helicopter Delivery System.

For more information about Ingenuity:

https://go.nasa.gov/ingenuity-press-kit and https://mars.nasa.gov/technology/helicopter

More About Perseverance

A key objective for Perseverance’s mission on Mars is astrobiology, including the search for signs of ancient microbial life. The rover will characterize the planet’s geology and past climate, pave the way for human exploration of the Red Planet, and be the first mission to collect and cache Martian rock and regolith.

Subsequent NASA missions, in cooperation with ESA (European Space Agency), would send spacecraft to Mars to collect these sealed samples from the surface and return them to Earth for in-depth analysis.

The Mars 2020 Perseverance mission is part of NASA’s Moon to Mars exploration approach, which includes Artemis missions to the Moon that will help prepare for human exploration of the Red Planet.

JPL, which is managed for NASA by Caltech in Pasadena, California, built and manages operations of the Perseverance rover.

For more about Perseverance:

https://mars.nasa.gov/mars2020/ and https://nasa.gov/perseverance

Image (mentioned), Animation (mentioned), Text, Credits: NASA/Karen Fox/Alana Johnson/JPL/DC Agle.

Greetings, Orbiter.ch

New Shepard Successfully Completes Mission with Commercial and NASA-Supported Payloads on Board

 







Blue Origin - New Shepard NS-17 Mission patch.


August 26, 2021

The New Shepard reusable launch system was launched from and landed at Blue Origin’s Launch Site One in West Texas, on 26 August 2021, at 14:31 UTC (09:31 CDT). During the mission, NASA’s lunar landing technology demonstration was tested for the second time on the exterior of the booster, 18 commercial payloads were inside the crew capsule (11 NASA-supported) and an art installation was present on the exterior of the capsule. NS-17 is the eight mission, launch and landing, for this New Shepard launch vehicle.

Blue Origin NS-17: New Shepard launch and landing, 26 August 2021

Blue Origin successfully completed the 17th New Shepard mission to space and back for the program, and the 8th consecutive flight for this particular vehicle.

Today’s flight featured payloads supported by NASA’s Flight Opportunities program and included a second flight of the Deorbit, Descent, and Landing (DDL) Sensor Demonstration under a NASA Tipping Point partnership. The DDL demonstration, which flew for the second time mounted on the exterior of New Shepard’s booster, tested technology designed to achieve high-accuracy landing for future Moon missions. This aims to enable long-term lunar exploration.


Image above: New Shepard landing on the pad in West Texas on August 26, 2021, with the NASA Lunar Landing Sensor Demo mounted on the exterior of the booster during this planned second flight. Image Credit: Blue Origin.

“After flying more than 100 payloads to space on New Shepard, today’s 8th flight of this vehicle carried NASA-sponsored and commercial experiments, including the second flight of NASA’s lunar landing technology that will one day allow us to further explore the Moon’s surface,” said Bob Smith, CEO, Blue Origin. “We are grateful to NASA for partnering with us once again on this experiment, and we are proud of the Blue Origin team for executing a great flight in support of all our customers.” 


Other payload highlights included a second flight of the OSCAR Trash-to-Gas payload, which evaluated a system that helps process trash samples into useful gases; the University of Florida’s third flight of the “Biological Imaging in Support of Suborbital Science" experiment, which further tested the calibration of data collection for biological experiments; and Suborbital Triptych, a work of art by Ghanaian artist Amoako Boafo painted on three exterior panels on the crew capsule.  

NS-17 Key Mission Stats

- 8th consecutive successful flight to space and back for this New Shepard vehicle.  

- 18th consecutive successful crew capsule landing (every flight in program, including a pad escape test in 2012).

- The crew capsule reached an apogee of 343,787 ft above ground level (AGL) / 347,434 ft mean sea level (MSL) (104.8 km AGL / 105.9 km MSL).  

- The booster reached an apogee of 343,385 ft AGL / 347,032 ft MSL (104.7 km AGL / 105.8 km MSL).

- The mission elapsed time was 10 min 15 sec and the max ascent velocity was 2,232 mph / 3,592 km/h.

- The mission carried thousands of postcards from Club for the Future, Blue Origin’s foundation.

All mission crew and onsite personnel supporting this launch exercised safety measures to mitigate COVID-19 risks to themselves, customers, and surrounding communities.

Related article:

NASA Technologies Slated for Testing on Blue Origin’s New Shepard
https://orbiterchspacenews.blogspot.com/2021/08/nasa-technologies-slated-for-testing-on.html

Related link:

Blue Origin: https://www.blueorigin.com/

Images, Video, Text, Credits: Blue Origin/NASA/SciNews.

Best regards, Orbiter.ch

mercredi 25 août 2021

Botany and Biology During Break in Spacewalk Preps

 







ISS - Expedition 65 Mission patch.


August 25, 2021

The Expedition 65 crew set up a plant habitat and demonstrated a new ultrasound device amid a variety of other space research aboard the International Space Station today. Meanwhile, the cosmonauts took a break from spacewalk preparations and focused on maintenance.

NASA and its international partners are studying how a variety of life forms from microbes, to plants, to humans and more, are impacted by living long term in microgravity. Doctors observe how weightlessness affects life suited to gravity and learn how to keep astronauts healthy in space and plan for longer missions beyond low Earth orbit.


Image above: Astronaut Shane Kimbrough works on the Mochii miniature electron microscope to support spectroscopic investigations aboard the space station. Image Credit: NASA.

Plants have been growing on the station for years and as the orbiting lab has expanded so have the facilities to support space botany. Today, NASA Flight Engineer Megan McArthur installed the Veggie vegetable production system in the Columbus laboratory module. Veggie will host the APEX-08 study, being delivered soon aboard the SpaceX Cargo Dragon, to explore space-caused stress and genetic changes in plants.

A new portable ultrasound device was being tested aboard the orbiting lab today in conjunction with touchscreen tablets. NASA Flight Engineer Shane Kimbrough demonstrated using the Butterfly IQ Ultrasound and scanned his veins, kidney, and bladder. Afterward, he filled out a questionnaire to determine to determine the ultrasound’s usability and capabilities without immediate ground support.

NASA Flight Engineer Mark Vande Hei continued unpacking cargo from Northrop Grumman’s Cygnus space freighter attached to the Unity module. Thomas Pesquet of ESA (European Space Agency) recorded a science video for French students then photographed plants for the Eklosion botany study.

International Space Station (ISS). Animation Credit: NASA

Commander Akihiko Hoshide of the Japan Aerospace Exploration Agency (JAXA) worked science maintenance and orbital plumbing tasks throughout Wednesday. At the end of the day, Hoshide installed an arm with a gripper on a pair of Astrobee robotic free-flyers to test mobility techniques.

After several days of spacewalk preparations to configure the Nauka Multipurpose Laboratory Module on Sept. 3 and 9, cosmonauts Oleg Novitskiy and Pyotr Dubrov turned their attention today to a variety of electronics and life support work in the station’s Russian segment.

Related links:

Expedition 65: https://www.nasa.gov/mission_pages/station/expeditions/expedition65/index.html

Veggie: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=374

Columbus laboratory module: https://www.nasa.gov/mission_pages/station/structure/elements/europe-columbus-laboratory

APEX-08 study: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=8300

Butterfly IQ Ultrasound: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=8211

Unity module: https://www.nasa.gov/mission_pages/station/structure/elements/unity

Eklosion: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=8358

Astrobee: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=1891

Space Station Research and Technology: https://www.nasa.gov/mission_pages/station/research/overview.html

International Space Station (ISS): https://www.nasa.gov/mission_pages/station/main/index.html

Image (mentioned), Animation (mentioned), Text, Credits: NASA/Mark Garcia.

Best regards, Orbiter.ch

Protecting the Ozone Layer Also Protects Earth’s Ability to Sequester Carbon

 







NASA - EOS Aura Mission patch.


August 25, 2021

Protecting the ozone layer also protects Earth’s vegetation and has prevented the planet from an additional 0.85 degrees Celsius of warming, according to new research from Lancaster University, NASA, and others. This new study in Nature demonstrates that by protecting the ozone layer, which blocks harmful ultraviolet (UV) radiation, the Montreal Protocol regulating ozone-depleting substances also protects plants – and their ability to pull carbon from the atmosphere. The impact from plants has not been accounted for in previous climate change research.


Image above: Previous “world-avoided” experiments have shown that, without the Montreal Protocol, ozone levels would be depleted globally by the mid-twentieth century. Image Credits: NASA/Goddard Space Flight Center Scientific Visualization Studio.

“We know the ozone layer is connected to climate. We know greenhouse gases affect the ozone layer. But what we’ve never done before this is connect the ozone layer to the terrestrial carbon cycle,” said lead author Paul Young, an atmospheric and climate scientist at Lancaster University in the United Kingdom.

The ozone layer in the upper atmosphere, or stratosphere, blocks UV radiation that can damage living tissue, including plants. The ozone “hole,” discovered in 1985, is the result of humans emitting chlorofluorocarbons (CFCs), which are ozone-depleting chemicals and greenhouse gases that were once commonly used as coolants in refrigerators and in aerosols like hairspray. They were then phased out of use by the Montreal Protocol signed in 1987 and its subsequent amendments.

Scientists have previously simulated the world that we avoided by banning CFCs. Now, the new study returns to the same question – what would happen if CFCs continued to be emitted? – and looked at the effect on plants.

“Past world-avoided experiments have never considered the impacts of increased UV radiation on plants, and what that would mean for the plants’ ability to sequester carbon,” said Young.

NASA Sees Definitive Evidence of the Montreal Protocol's Success

Video above: Nearly 200 countries came together to sign the Montreal Protocol in 1987, which limited CFC emissions. The production of CFCs was eventually phased out, and the ozone layer is recovering as a result. Video Credits: NASA's Goddard Space Flight Center/Katy Mersmann.

The team used a series of models to gain a more complete picture and simulate two hypothetical scenarios: the world projected and the world avoided. “The world projected is similar to the path we’re currently on,” said Luke Oman, a research physical scientist focusing on atmospheric chemistry and dynamics at NASA’s Goddard Space Flight Center in Greenbelt, Maryland. “The world avoided represents a path not taken.”

For the world-avoided scenario, the researchers assumed that CFC emissions would increase at the same rate, 3% every year, from the 1970s onward. The models show that there would be a huge thinning of the ozone layer across the globe by 2050. By 2100, ozone holes forming in the tropics would be worse than what has been observed in the Antarctic ozone hole.

In their models of the world-avoided, a depleted ozone layer would let more harmful ultraviolet (UV) radiation reach the surface, inhibiting plants from storing carbon in their tissue and in the soil. As a result, atmospheric CO2 levels are estimated to be 30% higher than they would likely be under Earth’s current trajectory. Consequently, Earth would likely be an additional 0.85°C hotter in that “world-avoided” scenario solely because of the impact on plants.

This global thinning of the ozone layer would allow significantly more harmful UV radiation from the sun to reach the surface, which would effectively sunburn the plants on Earth, said Young. Earth’s trees and vegetation would be much less efficient at photosynthesis, hindering their ability to absorb carbon out of the atmosphere and sequester it, storing carbon in plant tissue and the soil for many years. Overall, the damage to plants would result in 580 billion metric tons less carbon stored in forests, soil and vegetation. It would instead be released into the atmosphere, increasing atmospheric CO2 levels by 30% on average compared to the world projected scenario.

EOS Aura satellite. Image Credit: NASA

That huge increase in atmospheric CO2 alone would cause global temperatures to rise 0.85°C by 2100, according to the models. That’s on top of the warming Earth may experience due to prior and expected emissions of CO2 and other greenhouse gases, as well as the 1.7°C of direct warming due to increased CFC emissions in this scenario.

But how do we know this “world-avoided” scenario is anything like the world that would come to be without the Montreal Protocol? The team checked their models against historical data collected by NASA satellites and other available data from NASA’s partners. For example, they looked at ozone levels recorded by the Ozone Monitoring Instrument (OMI) aboard NASA’s Aura satellite and compared them to what the models ‘predicted’ would have happened. What happened in the model was very close to what actually happened in the past, giving the scientists confidence that their model could accurately project what may happen in the future.

Related links:

Nature: https://www.nature.com/articles/s41586-021-03737-3

Ozone Monitoring Instrument (OMI) aboard NASA’s Aura satellite: https://aura.gsfc.nasa.gov/omi.html

Aura satellite: https://www.nasa.gov/subject/3184/aura

Images (mentioned), Video (mentioned), Text, Credits: NASA's Earth Science News Team/By Sofie Bates.

Greetings, Orbiter.ch