jeudi 22 août 2019

Study started for bacteria-free space missions













ISS - International Space Station logo.

22 August 2019

Bacteria grow everywhere, including inside the International Space Station. That is why ESA has selected the Luxembourg Institute of Science and Technology (LIST) to develop antimicrobial surface treatments for the interior of spacecraft.

Four Spacecraft Docked on Space Station

The Luxembourg institute launched its 18-month research project dubbed “ESA NBactspace”, on 4 March 2019, with a view to ensuring the health and safety of astronauts during future missions.

Bacterial pathogens are becoming resistant to antibiotics, while standard surface coatings designed to counteract growth rely on heavy metal particles, such as silver and copper – metals that can form a toxicity risk in the closed environment of a spacecraft. As we look to explore farther into our Solar System, it is important for mission designers to keep astronauts safe from microbial, algal and parasitic contamination as well as from nanoparticle toxicity.

Inside the Space Station

LIST has been tasked with developing heavy-metal free antimicrobial coatings, that provide the same efficiency in space while using non-toxic biologically sourced materials, such molecules extracted from plants or lignin-based materials, or antimicrobial peptides found in bacteria.

The goal is to have no particles released into the spacecraft, or release a very low concentration of non-toxic biodegradable or biocompatible particles.

All-in-one antimicrobial surface

Two common ways of avoiding pathogens binding to surfaces are through materials that destroy these pathogens on contact, or developing surfaces that diffuse activity along their exterior. LIST aims to build a new, efficient combination of both these mechanisms, using biologically-sourced or synthetic materials that are biologically compatible.

Matiss experiment floating in Space Station

“The application study follows from research conducted on the International Space Station such as the MATISS series of experiments that are testing common coatings,” says ESA’s Malgorzata Holynska, materials and processes engineer, “the findings will greatly contribute to better knowledge and definition of standards to follow in confined environments such as spacecraft, but also for applications on Earth.”

The applied research could have important socio-economic impacts, besides developing a sustainable and viable alternative to heavy metal-based surface coatings. It is envisaged that the technology could be transfered to other environments, such as e.g. the hospital setting, and medical implants or devices.

Related links:

Luxembourg Institute of Science and Technology (LIST): https://www.list.lu/en/mrt/project/nbactspace/

Human health: http://www.esa.int/Our_Activities/Human_and_Robotic_Exploration/Research/Human_health

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

Images, Text, Credits: ESA/A. Gerst/NASA.

Greetings, Orbiter.ch

Uncrewed Soyuz Rocket Launches on Two-Day Trip to Station









ROSCOSMOS - Soyuz MS-14 / Skybot F-850 Mission patch.

August 22, 2019


Image above: The Soyuz MS-14 spacecraft launches from the Baikonur Cosmodrome in Kazakhstan on Wednesday, Aug. 21. Image Credits: Roscosmos/NASA TV.

The Soyuz MS-14 spacecraft launched at 11:38 p.m. EDT (8:38 a.m. Aug. 22 Baikonur time) from Site 31 at the Cosmodrome on a Soyuz 2.1a booster, which has been used recently to launch uncrewed Russian Progress cargo resupply missions to the space station.

Soyuz MS-14 launch with Skybot F-850 on board

The Soyuz 2.1a booster, equipped with a new digital flight control system and upgraded engines, is replacing the Soyuz FG booster that has been used for decades to launch crews into space. The Soyuz spacecraft will have an upgraded motion control and navigation system, as well as a revamped descent control system.

Soyuz MS-14 to test new upgrades, ferry Skybot humanoid robot to ISS. Image Credit: Roscosmos

Instead of crew members, the Soyuz will carry 1,450 pounds of cargo to the Expedition 60 crew currently residing on the orbital outpost.

Skybot F-850 humanoid robot

The Soyuz will navigate to station for an automated docking on the space-facing Poisk module on Saturday, Aug. 24, at 1:30 a.m.  After a two-week stay at the station, the Soyuz will be commanded to undock from the station on Friday, Sept. 6, at 2:13 p.m. EDT.

NASA TV coverage of the docking, and undocking activities is as follows:

Saturday, Aug. 24:

    12:45 a.m. – Docking coverage (docking scheduled for 1:30 a.m.) EDT

Friday, Sept. 6:

    1:45 p.m. – Undocking coverage (undocking scheduled for 2:13 p.m.) EDT

Related links:

Expedition 60: https://www.nasa.gov/mission_pages/station/expeditions/expedition60/index.html

NASA TV: https://www.nasa.gov/multimedia/nasatv/#public and https://www.nasa.gov/nasalive

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), Videos, Text, Credits: NASA/Mark Garcia/Roscosmos/SciNews.

Greetings, Orbiter.ch

mercredi 21 août 2019

Spacewalkers Complete Installation of Second Commercial Docking Port














ISS - Expedition 60 Mission patch / EVA - Extra Vehicular Activities patch.

August 21, 2019

NASA astronauts Nick Hague and Andrew Morgan concluded today’s spacewalk at 2:59 p.m. EDT. During the six-hour and 32-minute spacewalk, the two astronauts successfully installed the second of two international docking adapters (IDAs).


Image above: Spacewalkers Nick Hague (top) and Andrew Morgan install the International Docking Adapter (IDA-3) to the Pressurized Mating Adapter on top of the station’s Harmony module. Image Credit: NASA TV.

The IDAs will be used for the future arrivals of Boeing CST-100 Starliner and SpaceX Crew Dragon  commercial crew spacecraft. NASA’s commercial crew partnership with Boeing and SpaceX will restore launches of American astronauts from American soil on American rockets and maximize the time U.S. crews can dedicate to scientific research and technological advances aboard the orbiting laboratory to enable the agency’s ambitious goals for the Artemis lunar exploration program and future missions to the Moon and Mars. Regular human space transportation to the space station is a critical step to opening the space station for commercial business to enable the growth of the U.S. commercial space sector and the development of a robust low-Earth orbit economy.

The spacewalkers also completed additional routing for the station’s wireless internet.


Image above: Astronauts Christina Koch and Luca Parmitano take a portrait with spacewalkers Andrew Morgan (right) and Nick Hague (left) in their U.S. spacesuits during this morning’s spacewalk preparations. Image Credit: NASA.

Space station crew members have spent a total of 56 days, 23 hours, and 26 minutes during 218 spacewalks in support of station assembly, maintenance and upgrades. It was the fifth spacewalk in 2019, and the first for Morgan. During three spacewalks, Hague has now spent a total of 19 hours and 59 minutes outside the space station.

Related links:

Expedition 60: https://www.nasa.gov/mission_pages/station/expeditions/expedition60/index.html

commercial crew: http://www.nasa.gov/commercialcrew

International Docking Adapter-3 (IDA-3): https://www.nasa.gov/feature/meet-the-international-docking-adapter

Artemis: https://www.nasa.gov/artemis

Moon and Mars: https://www.nasa.gov/moontomars/

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

mardi 20 août 2019

LS2 Report: New SPS beam dump takes shape













CERN - European Organization for Nuclear Research logo.

20 August, 2019

The Super Proton Synchrotron will receive a new beam dump before the end of the second long shutdown of CERN’s accelerator complex 

 The beam dump's shielding being assembled (Image: Maximilien Brice/CERN)

By the end of the second long shutdown (LS2) of CERN’s accelerator complex, a nine-metre-long object with several hundred tonnes of shielding will be installed around the beam line of the Super Proton Synchrotron (SPS). But this object, the longest single component of the SPS, is no ordinary one. It contains the new beam dump of the SPS, designed to absorb beams of particles whose flight through the SPS needs to be terminated. Deep inside the complex device will sit the actual absorbing elements of the dump, containing graphite, molybdenum and tungsten. This core will be sheathed in layers of concrete, cast-iron shielding (painted green per CERN’s colour schemes) and marble. The new beam dump will help absorb particle beams with a wide range of energies – from 14 to 450 GeV – and is being built as part of the LHC Injectors Upgrade (LIU) project.

As discussed in a previous LS2 Report, the old beam dump of the SPS – located at Point 1 of the accelerator’s ring – is being replaced by a new one at Point 5, in preparation for the High-Luminosity LHC (HL-LHC). Since the older object would be unable to cope with the higher beam intensities needed for the HL-LHC, which will come online in 2026, the SPS team decided five years ago to construct a new dump with the required properties. The re-design was needed because the higher intensities will result in the dump undergoing much larger mechanical forces over the course of its lifetime, necessitating a more robust device than before.

“We considered building an external dump outside the SPS tunnel, similar to the one the LHC has,” explains Etienne Carlier, from CERN’s Technology department. “But the large dynamic range of the SPS beams makes it impossible to extract the different beams with one system. So we decided to use an internal dump, which is part of the SPS itself.” Building this beam dump is one of the most important tasks in the framework of the LIU project and around 125 metres of the SPS tunnel will be modified to accommodate it. There are several challenges along the way, involving the dedicated infrastructure required, which includes new kicker magnets, an optical system to monitor the beam position and cooling and ventilation systems.

The kickers located before an accelerator’s beam dump are responsible for deflecting the beam off its usual path and sweeping it into the dump block. At a precise instant, they need to generate suitable electromagnetic pulses in the vertical and horizontal planes to do so. The vertical kicker system generates a pulse of up to 650 MW during one SPS revolution with the help of the most powerful pulse-forming network built at CERN. It uses two newly developed redundant 36-kV solid-state switches, which will operate in parallel for machine protection, to transfer the stored energy to the magnet. “The kicker deflects and dilutes the beam in such a way that it can be absorbed along the length of the dump core,” notes Carlier. “And because it has to always deflect the beam at the same angle independent of the beam energy, the charge build-up in the capacitor bank is proportional to the energy of the circulating beams.”

The kicker switch (Image: CERN)

SPS operators need to know whether beams are being dumped correctly or not, by observing their shape and distribution as they enter the dump volume. “We need to have this information so we know that the dump has a uniform heat profile when the beams enter it,” Carlier says. The beam profile will be recorded by means of a screen that will be installed in the path of the beams being dumped, as part of the “Beam Instrumentation TV” system. This intricate system is made of a 17-m-long optical line with five high-quality mirrors that transfer the beam image from the screen to a well-shielded camera located outside the beam dump, which the operators can monitor remotely in real time.

The beam dump will have a dedicated vacuum sector surrounding the whole structure. The core itself is surrounded by copper shielding and will be water-cooled, while air ventilation will not only help with cooling but will also ensure that none of the air gets activated by the radiation of the core. After LS2, the dump will be baked out in the tunnel before the SPS receives beam, heating the graphite making up the dump core to 200 °C. Then, during machine operation, the dump block will be heated to higher temperatures by the impacting beams and the pressure within the dump will temporarily increase until the blocks are conditioned.

Preparations to house the gigantic structure are under way in the underground caverns and tunnels where the SPS sits, and the dump itself is taking shape on the surface. The abutment upon which the beam dump will sit is being assembled in the cavern known as ECX5, where once the UA1 detector operated. This abutment has to be made of a special concrete, containing extremely low levels of cobalt and europium. These elements are easily activated by radiation and would therefore stay hot for a long time. Avoiding them comes at a high cost but ensures that the abutment doesn’t absorb too much radiation over the course of the dump’s lifetime. The abutment’s base will be affixed to the ground, while the layer just below the dump will be composed of movable concrete blocks.

The civil-engineering work is expected to last until the end of this year, after which the beam dump will start to be assembled in its designated abode. Over the remaining months of LS2, the beam dump and its services will be readied for the beams that will arrive in 2021, as the LHC begins its third run.

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.

Founded in 1954, the CERN Laboratory sits astride the Franco–Swiss border near Geneva. It was one of Europe’s first joint ventures and now has 23 Member States.

Related links:

Second long shutdown (LS2): https://home.cern/tags/long-shutdown-2

CERN’s accelerator complex: https://home.cern/science/accelerators/accelerator-complex

Super Proton Synchrotron (SPS): https://home.cern/science/accelerators/super-proton-synchrotron

LHC Injectors Upgrade (LIU) project: https://home.cern/news/opinion/accelerators/time-lhc-injectors-upgrade-project

High-Luminosity LHC (HL-LHC): https://home.cern/science/accelerators/high-luminosity-lhc

UA1 detector: https://home.cern/science/experiments/ua1

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

Images (mentioned), Text, Credits: CERN/Achintya Rao.

Greetings, Orbiter.ch

Spacewalkers Installing New Commercial Docking Port Wednesday













ISS - Expedition 60 Mission patch.

August 20, 2019

A new commercial crew docking port is in position on the International Space Station ready for installation during Wednesday’s spacewalk. Russia is also counting down to the launch of an unpiloted Soyuz spacecraft to the orbiting lab just a few hours after tomorrow’s spacewalk.

The Expedition 60 crew was asleep when the Canadarm2 robotic arm grappled and removed the International Docking Adapter-3 (IDA-3) from the rear of the SpaceX Dragon cargo craft. Robotics controllers then remotely guided the IDA-3 to the Harmony module’s space-facing port and inspected it with the Canadarm2.


Image above: NASA astronauts (from left) Christina Koch, Nick Hague and Andrew Morgan gather for a portrait inside the International Space Station’s “window to the world,” the seven-windowed cupola, as the SpaceX Dragon cargo craft approaches the orbiting lab on July 27. Image Credit: NASA.

Spacewalkers Nick Hague and Andrew Morgan will set their spacesuits to battery power Wednesday at 8:20 a.m. EDT and exit the Quest airlock to finish installing the IDA-3. The duo will spend about six and a half hours routing cables and configuring the station’s second Boeing and SpaceX crew vehicle docking port. NASA TV is broadcasting live the spacewalk starting Wednesday at 6:30 a.m.

Commander Alexey Ovchinin with Flight Engineers Christina Koch and Luca Parmitano familiarized themselves with tomorrow’s spacewalk procedures. Koch also prepared Hague and Andrew’s installation tools and set up the IDA-3 control panel.


Image above: NASA astronauts (from left) Andrew Morgan and Nick Hague pose with the spacesuits they will wear during a six-and-a-half-hour spacewalk to install the International Docking Adapter-3. Image Credit: NASA.

Parmitano moved on and continued researching cell differentiation for the Micro-15 investigation. Afterward, he photographed biofilm samples in the Kubik incubator for the BioRock space mining study that explores how microbes interact with rocks.

The Soyuz MS-14 spacecraft is standing at its launch pad in Kazakhstan preparing for a liftoff just a few hours after Hague and Morgan finish their spacewalk. The unpiloted vehicle will blast off Wednesday at 11:38 p.m. EDT and test its 2.1a booster segment during ascent. The Soyuz spacecraft will automatically dock to the station’s Poisk module on Saturday at 1:30 a.m.

Related links:

Expedition 60: https://www.nasa.gov/mission_pages/station/expeditions/expedition60/index.html

NASA TV: https://www.nasa.gov/multimedia/nasatv/#public and https://www.nasa.gov/nasalive

Canadarm2: https://www.nasa.gov/mission_pages/station/structure/elements/remote-manipulator-system-canadarm2/

International Docking Adapter-3 (IDA-3): https://www.nasa.gov/feature/meet-the-international-docking-adapter

Harmony module: https://www.nasa.gov/mission_pages/station/structure/elements/harmony

Quest airlock: https://www.nasa.gov/mission_pages/station/structure/elements/joint-quest-airlock

Micro-15: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7653

Kubik: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=894

BioRock: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7566

Poisk module: https://www.nasa.gov/mission_pages/station/structure/elements/poisk-mini-research-module-2

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

Mission to Jupiter's Icy Moon Confirmed


















NASA - Europa Clipper Mission patch.

August 20, 2019


Image above: A 2016 artist's concept of the Europa Clipper spacecraft. The design is changing as the spacecraft is developed. Image Credits: NASA/JPL-Caltech.

An icy ocean world in our solar system that could tell us more about the potential for life on other worlds is coming into focus with confirmation of the Europa Clipper mission's next phase. The decision allows the mission to progress to completion of final design, followed by the construction and testing of the entire spacecraft and science payload.

"We are all excited about the decision that moves the Europa Clipper mission one key step closer to unlocking the mysteries of this ocean world," said Thomas Zurbuchen, associate administrator for the Science Mission Directorate at NASA Headquarters in Washington. "We are building upon the scientific insights received from the flagship Galileo and Cassini spacecraft and working to advance our understanding of our cosmic origin, and even life elsewhere."

The mission will conduct an in-depth exploration of Jupiter's moon Europa and investigate whether the icy moon could harbor conditions suitable for life, honing our insights into astrobiology. To develop this mission in the most cost-effective fashion, NASA is targeting to have the Europa Clipper spacecraft complete and ready for launch as early as 2023. The agency baseline commitment, however, supports a launch readiness date by 2025.

NASA's Jet Propulsion Laboratory in Pasadena, California, leads the development of the Europa Clipper mission in partnership with the Johns Hopkins University Applied Physics Laboratory for the Science Mission Directorate. Europa Clipper is managed by the Planetary Missions Program Office at NASA's Marshall Space Flight Center in Huntsville, Alabama.

Related links:

Europa Clipper: https://europa.nasa.gov/

Astrobiology: https://astrobiology.nasa.gov/

Image (mentioned), Text, Credits: NASA/Alana Johnson/JPL/Gretchen McCartney.

Best regards, Orbiter.ch

Space Station Science Highlights: Week of August 12, 2019













ISS - Expedition 60 Mission patch.

Aug. 20, 2019

Scientific studies continued aboard the International Space Station last week, including experiments on acoustics, crystal growth, the effects of microgravity on stem cells, and more. Crew members also prepared for an upcoming extravehicular activity (EVA), or spacewalk, to install an International Docking Adapter or IDA. Use of these standardized docking facilities allows the space station to accommodate multiple spacecraft, from new commercial craft to other yet-to-be designed international vehicles. The space station is a test bed for learning what keeps humans healthy during long-duration space travel and demonstrating technologies for future exploration, including Artemis, NASA’s program to return humans to the Moon as a stepping stone to Mars.


Image above: NASA astronaut Christina Koch takes images of Earth from the cupola as the space station flies 259 miles above the Atlantic Ocean off the coast of South America. Image Credit: NASA.

Here are details on some of the science conducted on the orbiting laboratory during the week of August 12:

Space may be silent but the space station is not

The crew completed questionnaires and measured ambient background noise for the Acoustic Diagnostics investigation, which tests the hearing of crew members before, during, and after flight to assess possible adverse effects of noise and microgravity. Researchers compare the relationship between the detection of sounds naturally generated from within the inner ear and hearing loss from exposure to noisy environments.

Toward a longer shelf life for antibodies


Image above: Monoclonal antibodies like this one bind selectively to targets, meaning they can fight a wide range of diseases while leaving healthy tissues and cells intact. CASIS PCG 19 compares antibody formulation stability in microgravity and on Earth. Image Credit: NASA.

Vials for the CASIS PCG 19 investigation incubated at different temperatures for two weeks. The crew transferred these vials to the Minus Eighty-Degree Laboratory Freezer for ISS (MELFI) to preserve them. This investigation examines the stability of monoclonal antibody formulations in microgravity. These formulations degrade over time but discarding them leads to increased cost and limits locations on Earth where patients can benefit from them. Storing formulations in microgravity may reveal processes that lead to degradation and, ultimately, to methods for slowing it down.

Understanding stem cells in space


Animation above: European Space Agency astronaut Luca Parmitano conducts operations for the Micro-15 investigation, which examines the influence of microgravity on stem cell differentiation, gene expression and cell proliferation. Animation Credit: NASA.

Stem cells are capable of becoming any type of cell in the body, a process known as cell differentiation. Prior flight experiments and ground-based simulations have demonstrated that microgravity influences this differentiation as well as gene expression and cell proliferation in stem cells. The Micro-15 investigation examines the mechanisms behind these observations using three-dimensional (3D) cultures of mammalian stem cells. The crew prepared the culture sets and initiated incubation. Sets of twelve samples will incubate for various lengths of time before retrieval and fixing.

Keeping tabs on astronaut health

Bio-Monitor tests a wearable garment capable of monitoring an astronaut’s heart rate, respiration rate, skin temperature and other parameters for up to 48 hours in a non-invasive and unobtrusive way. The space station is equipped with health and life sciences research tools, but the capability for continuous and simultaneous recording of several physiological parameters is lacking. The Bio-Monitor could help address these gaps. Last week, a crew member wore the garment and headband connected to the data unit for a 72-hour session.

Other investigations on which the crew performed work:

- Lighting Effects studies the effects on crew member circadian rhythms, sleep, and cognitive performance when solid-state light-emitting diodes (LEDs) replace fluorescent light bulbs on the space station:
https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=2013

- The ISS Experience creates short virtual reality videos from footage taken during the yearlong investigation covering different aspects of crew life, execution of science and the international partnerships involved on the space station:
https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7877

- Food Acceptability examines changes in the appeal of food aboard the space station during long-duration missions. “Menu fatigue” from repeatedly consuming a limited choice of foods may contribute to the loss of body mass often experienced by crew members, potentially affecting astronaut health, especially as mission length increases:
https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7562

- Standard Measures captures a consistent and simple set of measures from crew members throughout the ISS Program to characterize adaptive responses to and risks of living in space:
https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7711

- Goodyear Tire evaluates creation of silica fillers using traditional techniques in microgravity, which may yield results not possible on Earth:
https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7716

- Rodent Research-17 (RR-17) uses young and old mice to evaluate the physiological, cellular and molecular effects of microgravity and spaceflight:
https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7992

Space to Ground: Robotic Refueling: 08/16/2019

Related links:

Expedition 60: https://www.nasa.gov/mission_pages/station/expeditions/expedition60/index.html

International Docking Adapter or IDA: https://www.nasa.gov/feature/meet-the-international-docking-adapter

Artemis: https://www.nasa.gov/artemis

Acoustic Diagnostics: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7898

CASIS PCG 19: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7914

Minus Eighty-Degree Laboratory Freezer for ISS (MELFI): https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=56

Micro-15: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7653

Bio-Monitor: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=7392

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/Vic Cooley, Lead Increment Scientist Expedition 60.

Greetings, Orbiter.ch