Friday, July 24, 2026

Virgo Cluster Galaxy NGC 4654: A One-sided Spiral | Hubble

Virgo Cluster Galaxy NGC 4654: A One-sided Spiral | Hubble

The NASA/European Space Agency Hubble picture is a spiral galaxy struggling against titanic forces that appear on galactic scales in space. This is NGC 4654, an intermediate spiral galaxy in the constellation Virgo (the Maiden). “Intermediate” means that it lies between the spiral galaxies that have a bar across the center and those that do not with a weak bar structure in its center. It is situated 72 million light-years from Earth in the Virgo Cluster, a particularly massive and populous galaxy cluster. NGC 4654 is just north of the celestial equator, making it visible from the northern hemisphere and most of the southern hemisphere. 

NGC 4654 is particularly asymmetric with a rounded and clearly-defined edge on one side and a long tail of gas stretching out from the opposite side—beyond Hubble’s view in this image. The cause of this gaseous tail is the same as for many of the other galaxies jostling in the crowded Virgo Cluster: namely, ram pressure stripping. NGC 4654 moves with such high velocity through space that it sweeps up and rams through the intracluster medium, the hot, rarefied gas filling the space between the Virgo Cluster’s galaxies. The intracluster medium in turn exerts a “ram pressure” on the galaxy, compressing the galaxy’s leading edge and tugging at its gas, creating the elongated tail. 

It is not just the galaxy’s gas that is unevenly distributed, its stars are too. This is more unusual for a spiral galaxy. While the spiral arm on its leading edge is rich with stars and gas, the opposite arm noticeably lacks stars, influencing the galaxy’s lopsided spiral shape. It is thought that ram pressure alone is unlikely to have had this effect. Rather, NGC 4654 has also been subjected to the gravitational force of the fellow Virgo Cluster galaxy NGC 4639. While the two galaxies are far apart now, a fly-by interaction between them around 500 million years ago ripped away NGC 4654’s gas along one side, limiting star formation there and creating the asymmetry in its shape.

Many galaxies that undergo ram pressure stripping suffer reduced star formation rates as the cold gas that collapses to form their stars is pulled away and lost. NGC 4654, however, is still forming nearly two Suns’ worth of stars every year, a rate comparable to other galaxies of similar size. The active star formation can be seen in the latest Hubble data used in this image that picks up on a wavelength of red light emitted by the clouds of energized gas where newborn stars lurk. The bright pink bubbles appear all across NGC 4654, from its forward spiral arm, to around its weak bar, and out to the edge of its disc.

The data used for this image come from two observing programs that have the aim of linking gas in galaxies with star formation. By observing many prominent galaxies in the vicinity of our own, researchers hope to better understand how gas moves around in galaxies, where and when it collapses to form stars and star clusters, and what effect those new stars have on the gas around them.

Image Description: A spiral galaxy. It has a prominent spiral arm on one side (lower left) and a wide, glowing core. Dark brown filaments of dust swirl through its disc, while blue clusters of stars are found mostly going out to its arm. On the opposite side to the arm (upper right), gas trails off from the disc, out of the view in this image. A matching spiral arm is not visible on this side. The galaxy lies on a dark background.


Credit: ESA/Hubble & NASA, D. Thilker, J. Lee and the PHANGS-HST Team
Date: July 24, 2026

#NASA #Hubble #Astronomy #Space #Science #Stars #StarFormation #Galaxies #IntermediateSpiralGalaxies #VirgoCluster #NGC4654 #InteractingGalaxies #NGC4639 #RamPressureStripping #VirgoConstellation #Cosmos #Universe #HubbleSpaceTelescope #HST #ESA #Europe #GSFC #STScI #UnitedStates #STEM #Education

Drone views: China CAS Space Lijian-1 Commercial Rocket Launches 5 Satellites

Drone views: China CAS Space Lijian-1 Commercial Rocket Launches 5 Satellites

China successfully launched five satellites aboard the Lijian-1 Y15 carrier rocket at 7:33am Beijing time on July 24, 2026, from the Dongfeng Commercial Space Innovation Pilot Zone in northwest China. 

The five satellites, including an orbital data center demonstrator and a weather satellite, were placed into their preset sun-synchronous orbits. This mission marks the 15th flight of the Lijian-1 carrier rocket.

Satellite list: Tianyi-48, Gande-1-01, Xiguang-2-03, Jitianxing-A-04, and Yinglong Fengguang-1

Tianyi-48, developed by Spacety, adds another member to the company's remote sensing satellite constellation. Gande-1-01 is a scientific experiment satellite, while Xiguang-2-03 serves optical remote sensing purposes. Jitianxing-A-04 and Yinglong Fengguang-1 are dedicated to Earth observation and scientific experiments in their respective domains. Four out of five customer payloads delivered from Dongfeng have a form of artificial intelligence (AI) solutions for operational use or trials.

Lijian-1 (Kinetica-1) is CAS Space’s first launch vehicle and consists of four stages, all burning solid fuel. CAS Space offers the ability to launch a single satellite to utilize all of the rocket’s payload capacity, however more ‘rideshare’ missions occur for multiple satellites to be delivered in one launch.

The payload capacity of the launch vehicle is:

2,000 kilograms to low Earth orbit

1,500 kilograms to a 500-kilometer sun-synchronous orbit

The first-stage is powered by a solid rocket booster that burns an unspecified solid fuel, generating 200 tons of thrust. The second-stage is also powered by a solid rocket booster, producing 110 tons of thrust with the same unidentified propellant. The-third stage, also using the undisclosed propellant, generates 45 tons of thrust. Finally, the fourth-stage is powered by another solid rocket booster, providing 8 tons of thrust with the same solid propellant.

On its launch pad, Lijian-1 stands at 30 meters tall. The first two stages have a diameter of 2.65 meters, the fairing has a diameter of either 2.65 or 3.35 meters. When prepared for launch Lijian-1 weighs a believed 135,000 kilograms.

CAS Space is a Chinese commercial space launch provider based in Guangzhou, capital and largest city of Guangdong province in southern China. CAS Space was founded in 2018 and is majority owned by the Chinese Academy of Sciences (CAS).


Video Credit: CAS Space
Text Credit: Jack C.
Duration: 28 seconds
Date: July 24, 2026


#NASA #Space #Satellites #Earth #EarthObservation #RemoteSensing #China #中国 #CASSpace #中科宇航 #CAS #中国科学院 #Kinetica1 #Lijian1 #Lijian1Y15Rocket #Lijian1Y15 #LaunchVehicles #SolidFuelRockets #CGSTL #SatelliteLaunches #CommercialSpace #CAS #JiuquanSatelliteLaunchCenter #JSLC #InnerMongolia #STEM #Education #HD #Video

China CAS Space Lijian-1 Commercial Rocket Launches 5 Satellites to Orbit

China CAS Space Lijian-1 Commercial Rocket Launches 5 Satellites to Orbit








China successfully launched five satellites aboard the Lijian-1 Y15 carrier rocket at 7:33am Beijing time on July 24, 2026, from the Dongfeng Commercial Space Innovation Pilot Zone in northwest China. 

The five satellites, including an orbital data center demonstrator and a weather satellite, were placed into their preset sun-synchronous orbits. This mission marks the 15th flight of the Lijian-1 carrier rocket.

Satellite list: Tianyi-48, Gande-1-01, Xiguang-2-03, Jitianxing-A-04, and Yinglong Fengguang-1

Tianyi-48, developed by Spacety, adds another member to the company's remote sensing satellite constellation. Gande-1-01 is a scientific experiment satellite, while Xiguang-2-03 serves optical remote sensing purposes. Jitianxing-A-04 and Yinglong Fengguang-1 are dedicated to Earth observation and scientific experiments in their respective domains. Four out of five customer payloads delivered from Dongfeng have a form of artificial intelligence (AI) solutions for operational use or trials.

Lijian-1 (Kinetica-1) is CAS Space’s first launch vehicle and consists of four stages, all burning solid fuel. CAS Space offers the ability to launch a single satellite to utilize all of the rocket’s payload capacity, however more ‘rideshare’ missions occur for multiple satellites to be delivered in one launch.

The payload capacity of the launch vehicle is:

2,000 kilograms to low Earth orbit

1,500 kilograms to a 500-kilometer sun-synchronous orbit

The first-stage is powered by a solid rocket booster that burns an unspecified solid fuel, generating 200 tons of thrust. The second-stage is also powered by a solid rocket booster, producing 110 tons of thrust with the same unidentified propellant. The-third stage, also using the undisclosed propellant, generates 45 tons of thrust. Finally, the fourth-stage is powered by another solid rocket booster, providing 8 tons of thrust with the same solid propellant.

On its launch pad, Lijian-1 stands at 30 meters tall. The first two stages have a diameter of 2.65 meters, the fairing has a diameter of either 2.65 or 3.35 meters. When prepared for launch Lijian-1 weighs a believed 135,000 kilograms.

CAS Space is a Chinese commercial space launch provider based in Guangzhou, capital and largest city of Guangdong province in southern China. CAS Space was founded in 2018 and is majority owned by the Chinese Academy of Sciences (CAS).


Image Credit: CAS Space
Text Credit: Jack C.
Date: July 24, 2026


#NASA #Space #Satellites #Earth #EarthObservation #RemoteSensing #China #中国 #CASSpace #中科宇航 #CAS #中国科学院 #Kinetica1 #Lijian1 #Lijian1Y15Rocket #Lijian1Y15 #LaunchVehicles #SolidFuelRockets #CGSTL #SatelliteLaunches #CommercialSpace #CAS #JiuquanSatelliteLaunchCenter #JSLC #InnerMongolia #STEM #Education

China CAS Space Lijian-1 Commercial Rocket Launches 5 Satellites to Orbit

China CAS Space Lijian-1 Commercial Rocket Launches 5 Satellites to Orbit

China successfully launched five satellites aboard the Lijian-1 Y15 carrier rocket at 7:33am Beijing time on July 24, 2026, from the Dongfeng Commercial Space Innovation Pilot Zone in northwest China. 

The five satellites, including an orbital data center demonstrator and a weather satellite, were placed into their preset sun-synchronous orbits. This mission marks the 15th flight of the Lijian-1 carrier rocket.

Satellite list: Tianyi-48, Gande-1-01, Xiguang-2-03, Jitianxing-A-04, and Yinglong Fengguang-1

Tianyi-48, developed by Spacety, adds another member to the company's remote sensing satellite constellation. Gande-1-01 is a scientific experiment satellite, while Xiguang-2-03 serves optical remote sensing purposes. Jitianxing-A-04 and Yinglong Fengguang-1 are dedicated to Earth observation and scientific experiments in their respective domains. Four out of five customer payloads delivered from Dongfeng have a form of artificial intelligence (AI) solutions for operational use or trials.

Lijian-1 (Kinetica-1) is CAS Space’s first launch vehicle and consists of four stages, all burning solid fuel. CAS Space offers the ability to launch a single satellite to utilize all of the rocket’s payload capacity, however more ‘rideshare’ missions occur for multiple satellites to be delivered in one launch.

The payload capacity of the launch vehicle is:

2,000 kilograms to low Earth orbit

1,500 kilograms to a 500-kilometer sun-synchronous orbit

The first-stage is powered by a solid rocket booster that burns an unspecified solid fuel, generating 200 tons of thrust. The second-stage is also powered by a solid rocket booster, producing 110 tons of thrust with the same unidentified propellant. The-third stage, also using the undisclosed propellant, generates 45 tons of thrust. Finally, the fourth-stage is powered by another solid rocket booster, providing 8 tons of thrust with the same solid propellant.

On its launch pad, Lijian-1 stands at 30 meters tall. The first two stages have a diameter of 2.65 meters, the fairing has a diameter of either 2.65 or 3.35 meters. When prepared for launch Lijian-1 weighs a believed 135,000 kilograms.

CAS Space is a Chinese commercial space launch provider based in Guangzhou, capital and largest city of Guangdong province in southern China. CAS Space was founded in 2018 and is majority owned by the Chinese Academy of Sciences (CAS).


Video Credit: CCTV
Text Credit: Jack C.
Duration: 29 seconds
Date: July 24, 2026


#NASA #Space #Satellites #Earth #EarthObservation #RemoteSensing #China #中国 #CASSpace #中科宇航 #CAS #中国科学院 #Kinetica1 #Lijian1 #Lijian1Y15Rocket #Lijian1Y15 #LaunchVehicles #SolidFuelRockets #CGSTL #SatelliteLaunches #CommercialSpace #CAS #JiuquanSatelliteLaunchCenter #JSLC #InnerMongolia #STEM #Education #HD #Video

Thursday, July 23, 2026

China Long March 3B Rocket Survives Lightning Strike to Deliver Satellite to Orbit

China Long March 3B Rocket Survives Lightning Strike to Deliver Satellite to Orbit

[amateur video] A China Long March 3B/E rocket was struck by lightning about 30 seconds after liftoff on Thursday, July 23, 2026, at the Xichang Satellite Launch Center in the southwestern Sichuan province. Nevertheless, the rocket successfully delivered the Tianlian-2-06 relay satellite into a geostationary transfer orbit to expand the China Space Station's communications capacity.


Video Credit: Cosmic Peguin
Duration: 51 seconds
Date: July 23, 2026


#NASA #Space #Satellites #China #中国 #RocketLaunches #LongMarchRockets #LongMarch3BE #CZ3E #LightningStrikes #CALT #中国运载火箭技术研究院 #Tianlian206 #ChinaSpaceStation #中国空间站 #CAST #通信技术试验卫星二十五号 #XSLC #西昌卫星发射中心 #SichuanProvince #四川 #STEM #Education #HD #Video

SpaceX Starship & Super Heavy Booster at Sunset: Drone views | Starbase Texas

SpaceX Starship & Super Heavy Booster at Sunset: Drone views | Starbase Texas


The thirteenth flight test of Starship is preparing to launch as early as Friday, July 24, 2026. The 90-minute launch window will open at 5:45 p.m. CT. The upcoming flight will aim to complete similar objectives targeted on the previous flight test that debuted the Starship and Super Heavy V3 vehicles, while also carrying next-generation Starlink V3 satellites for the first time.

A live webcast of the flight test will begin about 30 minutes before liftoff that you can watch here: https://www.spacex.com/launches/starship-flight-13

The booster’s primary test objective will be executing a successful launch, ascent, stage separation, boostback burn, and landing burn at an offshore landing point in the Gulf of America. There have been several modifications to hardware and software to address issues seen on the previous flight.

At stage separation on Flight 12, slight differences in engine startup on the ship caused the directional flip of the booster to be off by approximately 90 degrees. The startup sequence has been modified to be more robust to timing variability and more reliably flip in the desired direction, which is done to increase overall performance. After stage separation and the flip, the Super Heavy booster attempted its boostback burn. Five of its 33 engines experienced issues when attempting to re-light causing the boostback burn to end early. The Super Heavy on this upcoming flight has hardware modifications to improve re-light reliability along with updates to engine alarms and aborts to match the conditions seen in the multi-engine flight environment.

The Starship upper stage’s primary objectives include the deployment of 20 Starlink V3 satellites, a relight of a single Raptor engine while in space, and another controlled entry, descent, and splashdown in the Indian Ocean. There have also been several modifications to Starship’s propulsion system to address the engine out issue experienced on the previous flight.

Approximately 40 seconds after stage separation, Starship lost one of its three Raptor vacuum optimized engines. The vehicle was able to demonstrate its engine out capability and reach its planned suborbital trajectory. Several hardware and operational modifications have been made to address the interconnected causes with additional reliability improvements planned in upcoming versions of the Raptor engine.

For the first time, Starship will carry V3 Starlink satellites to space, which aim to greatly expand the network's capacity and user speeds. As part of this initial test, Starship is planned to deploy 20 satellites which will extend solar arrays and antennas and will attempt to connect with the larger Starlink constellation via high-capacity lasers. The Starlink satellites will be on the same suborbital trajectory as Starship and are expected to demise upon reentry approximately 20 minutes after deployment.

Six of the satellites have been modified with a suite of cameras to scan Starship’s heat shield and transmit imagery down to operators to continue testing methods of analyzing Starship’s heat shield readiness for return to launch site on future missions. Several tiles on Starship have been painted white to simulate missing tiles and serve as imaging targets in the test.

Several upgrades and experiments related to Starship’s heatshield will also be tested to continue iteration towards a fully and rapidly reusable design. Multiple tiles will be attached to the metallic side of Starship’s aft flaps along with modified tiles and attachment mechanisms in the heatshield covering the aft skirt to gather flight data on different attachment options. Finally, Starship’s heatshield will have load sensing tiles to take measurements as the vehicle experiences higher dynamic pressure on ascent than previous flights, putting added stress on the tile attachments in exchange for increased payload to orbit capability.

NASA plans to use a lunar lander version of Starship to deliver astronauts and cargo to the Moon during the Artemis IV mission and beyond through the Human Landing System (HLS) Program.

Download the Free Starship User Guide (PDF):
https://www.spacex.com/media/starship_users_guide_v1.pdf

Image Credit: Space Exploration Technologies Corporation (SpaceX)
Duration: 28 seconds
Release Date: July 23, 2026

#NASA #SpaceX #Space #Earth #Mars #Moon #MoonToMars #ArtemisProgram #ArtemisIII #ArtemisIV #Starship #StarshipV3 #FlightTest13 #ReusableSpacecraft #SuperHeavy #SuperHeavyV3 #ElonMusk #Engineering #SpaceTechnology #HumanSpaceflight #CommercialSpace #SpaceExploration #StarbaseTexas #UnitedStates #STEM #Education #HD #Video

Preparing for SpaceX Starship's 13th Flight Test | Starbase Texas

Preparing for SpaceX Starship's 13th Flight Test | Starbase Texas








The thirteenth flight test of Starship is preparing to launch as early as Thursday, July 23, 2026. The 90-minute launch window will open at 5:45 p.m. CT. The upcoming flight will aim to complete similar objectives targeted on the previous flight test that debuted the Starship and Super Heavy V3 vehicles, while also carrying next-generation Starlink V3 satellites for the first time.

A live webcast of the flight test will begin about 30 minutes before liftoff that you can watch here: https://www.spacex.com/launches/starship-flight-13

The booster’s primary test objective will be executing a successful launch, ascent, stage separation, boostback burn, and landing burn at an offshore landing point in the Gulf of America. There have been several modifications to hardware and software to address issues seen on the previous flight.

At stage separation on Flight 12, slight differences in engine startup on the ship caused the directional flip of the booster to be off by approximately 90 degrees. The startup sequence has been modified to be more robust to timing variability and more reliably flip in the desired direction, which is done to increase overall performance. After stage separation and the flip, the Super Heavy booster attempted its boostback burn. Five of its 33 engines experienced issues when attempting to re-light causing the boostback burn to end early. The Super Heavy on this upcoming flight has hardware modifications to improve re-light reliability along with updates to engine alarms and aborts to match the conditions seen in the multi-engine flight environment.

The Starship upper stage’s primary objectives include the deployment of 20 Starlink V3 satellites, a relight of a single Raptor engine while in space, and another controlled entry, descent, and splashdown in the Indian Ocean. There have also been several modifications to Starship’s propulsion system to address the engine out issue experienced on the previous flight.

Approximately 40 seconds after stage separation, Starship lost one of its three Raptor vacuum optimized engines. The vehicle was able to demonstrate its engine out capability and reach its planned suborbital trajectory. Several hardware and operational modifications have been made to address the interconnected causes with additional reliability improvements planned in upcoming versions of the Raptor engine.

For the first time, Starship will carry V3 Starlink satellites to space, which aim to greatly expand the network's capacity and user speeds. As part of this initial test, Starship is planned to deploy 20 satellites which will extend solar arrays and antennas and will attempt to connect with the larger Starlink constellation via high-capacity lasers. The Starlink satellites will be on the same suborbital trajectory as Starship and are expected to demise upon reentry approximately 20 minutes after deployment.

Six of the satellites have been modified with a suite of cameras to scan Starship’s heat shield and transmit imagery down to operators to continue testing methods of analyzing Starship’s heat shield readiness for return to launch site on future missions. Several tiles on Starship have been painted white to simulate missing tiles and serve as imaging targets in the test.

Several upgrades and experiments related to Starship’s heatshield will also be tested to continue iteration towards a fully and rapidly reusable design. Multiple tiles will be attached to the metallic side of Starship’s aft flaps along with modified tiles and attachment mechanisms in the heatshield covering the aft skirt to gather flight data on different attachment options. Finally, Starship’s heatshield will have load sensing tiles to take measurements as the vehicle experiences higher dynamic pressure on ascent than previous flights, putting added stress on the tile attachments in exchange for increased payload to orbit capability.

NASA plans to use a lunar lander version of Starship to deliver astronauts and cargo to the Moon during the Artemis IV mission and beyond through the Human Landing System (HLS) Program.

Download the Free Starship User Guide (PDF):
https://www.spacex.com/media/starship_users_guide_v1.pdf

Image Credit: Space Exploration Technologies Corporation (SpaceX)
Release Dates: July 19-23, 2026

#NASA #SpaceX #Space #Earth #Mars #Moon #MoonToMars #ArtemisProgram #ArtemisIII #ArtemisIV #Starship #StarshipV3 #FlightTest13 #ReusableSpacecraft #SuperHeavy #SuperHeavyV3 #ElonMusk #Engineering #SpaceTechnology #HumanSpaceflight #CommercialSpace #SpaceExploration #StarbaseTexas #UnitedStates #STEM #Education

Planet Mars Images: July 19-23, 2026 | NASA's Curiosity & Perseverance Rovers

Planet Mars Images: July 19-23, 2026 | NASA's Curiosity & Perseverance Rovers

MSL - sol 4958
Mars 2020 - sol 1927
Mars 2020 - sol 1927
MSL - sol 4961
MSL - sol 4961
MSL - sol 4954
MSL - sol 4959
MSL - sol 4958
Note: The circles are a result of using the Dust Removal Tool (DRT) tool, a spinning metal brush.

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Celebrating 13+ Years on Mars (2012-2025)
Mission Name: Mars Science Laboratory (MSL)
Rover Name: Curiosity
Main Job: To determine if Mars was ever habitable to microbial life. 
Launch: Nov. 6, 2011
Landing Date: Aug. 5, 2012, Gale Crater, Mars

Celebrating 5+ Years on Mars
Mission Name: Mars 2020
Rover Name: Perseverance
Main Job: Seek signs of ancient life and collect samples of rock and regolith (broken rock and soil) for return to Earth.
Launch: July 30, 2020
Landing: Feb. 18, 2021, Jezero Crater, Mars

For more information on NASA's Mars missions, visit: mars.nasa.gov

Image Credits: NASA/JPL-Caltech/ASU/MSSS
Processing: Kevin M. Gill
Release Dates: July 19-23, 2026

#NASA #Space #Astronomy #Science #Planets #Mars #Astrobiology #Geology #CuriosityRover #MSL #MountSharp #GaleCrater #PerseveranceRover #Mars2020 #JezeroCrater #Robotics #SpaceTechnology #SpaceEngineering #MSSS #JPL #Caltech #UnitedStates #CitizenScience #KevinGill #SpaceExploration #SolarSystem #STEM #Education

China's Orienspace Developing Larger Liquid-Fueled Gravity-2 Commercial Rocket

China's Orienspace Developing Larger Liquid-Fueled Gravity-2 Commercial Rocket


China on Wednesday, July 22, 2026, successfully sent a Gravity-1 carrier rocket into space from waters off the coast of Shanghai in east China, marking a complete success for this flight test mission.

The Taiyuan Satellite Launch Center launched the commercial rocket at 10:54 (Beijing Time), placing nine satellites into their designated orbits. The mission was the third flight of the Gravity-1 rocket.

This flight marks Gravity-1's first open-sea launch and China's first commercial sea-based launch in the East China Sea off the Yangtze River Delta.

After three flights, the rocket's overall reliability has been validated, and it is now transitioning from the trial phase into scaled commercial operations.

"With this launch accomplished, the next rocket will be used for the deployment of China's low‑orbit Internet satellite constellation. The fifth and sixth launches are scheduled for the third quarter of this year," said Xu Guoguang, chief designer and commander of the Gravity-1 rocket.

Gravity-1, a solid‑fuel rocket, has a maximum payload capacity of 6.5 tons. Given the capacity limitations of solid‑fuel designs, the team is pushing ahead with Gravity-2—a much larger, recoverable liquid‑fuel rocket with a low‑Earth orbit payload of 21.5 tons and a 500‑km sun‑synchronous orbit payload of 15 tons. The new rocket is scheduled to make its first flight in the fourth quarter of this year.

"The exploration of solid-fuel rocket launches at sea is also paving the way for future liquid-fuel rocket launches from the ocean. For liquid rockets, we are also considering alternative approaches, such as launching from a drilling platform. These methods are all on the table and will require further exploration," said Xu.


Video Credit: CCTV
Duration: 1 minute
Date: July 23, 2026


#NASA #Space #Satellites #Earth #China #中国 #OrienSpace #东方空间 #SeaLaunch #EastChinaSea #RocketLaunch #Gravity2Rockets #LiquidFuelRockets #Gravity1Rockets #引力1号 #Gravity1Y4Rocket #SolidFuelRockets #CommercialSpace #ChinaSpaceflight #SpaceTechnology #AerospaceEngineering #STEM #Education #HD #Video

NASA Astronaut Chris Williams: Thinking Like a Scientist

NASA Astronaut Chris Williams: Thinking Like a Scientist

NASA astronaut Chris Williams is set to return to Earth after an eight-month mission aboard the International Space Station. During his assignment, Williams conducted a variety of research that informs new technologies, improves healthcare on Earth, and paves the way for future missions to the Moon and Mars.  

NASA astronaut Chris Williams and Roscosmos cosmonauts Sergey Kud-Sverchkov and Sergei Mikaev of Russia are nearing the end of their mission that began with a launch from Kazakhstan aboard their Russian Soyuz MS-28 spacecraft on Nov. 27, 2025. The trio will undock from the Rassvet module in the Soyuz MS-28 over the weekend signifying the beginning of Expedition 75. They will take a short ride back to Earth for a parachute-assisted landing in Kazakhstan inside the Soyuz. 

Here’s a look at his scientific mission: https://go.nasa.gov/4gOF65a 

[0:34] European Enhanced Exploration Exercise Device (E4D)
https://www.nasa.gov/mission/station/research-explorer/investigation/#id=8035
[0:54] Germicidal Ultraviolet Light Biofilm Inhibition (GULBI)
https://www.nasa.gov/mission/station/research-explorer/investigation/#id=9305
[0:59] Streptococcus pneumoniae (Spn) Infection of Cardiac Tissue (MVP Cell-09)
https://www.nasa.gov/mission/station/research-explorer/investigation/#id=9160
[1:03] Zero Boil-Off Tank Noncondensables
https://www.nasa.gov/mission/station/research-explorer/investigation/#id=8190
(ZBOT-NC) h[1:10] Spacewalks 

https://www.nasa.gov/international-space-station/space-station-spacewalks/

[1:24] Test facility for lab-aUtomation System in Kibo (TUSK)
https://www.nasa.gov/mission/station/research-explorer/facility/#id=9404
[1:30] Neutralino Space ISS Surveyor (ISS Surveyor) 
https://www.nasa.gov/mission/station/research-explorer/investigation/#id=9034
[1:39] Japanese Experiment Module - Exposed Facility (JEM-EF)
https://www.nasa.gov/mission/station/research-explorer/facility/#id=134

Follow Expedition 74:

Expedition 74 Crew
Station Commander: Sergey-Kud Sverchkov (Russia)
Roscosmos (Russia) Flight Engineers:
Andrey Fedyaev, Sergei Mikaev,
Anna Kikina, Pyotr Dubrov
European Space Agency Flight Engineer: Sophie Adenot
NASA Flight Engineers: Jessica Meir, Jack Hathaway, Chris Williams, Anil Menon

An international partnership of space agencies provides and operates the elements of the International Space Station (ISS). The principals are the space agencies of the United States, Russia, Europe, Japan, and Canada.


Video Credit: NASA's Johnson Space Center
Duration: 2 minutes
Release Date: July 23, 2026


#NASA #Space #Science #ISS #Earth #Astronauts #ChrisWilliams #Europe #France #ESA #Cosmonauts #Russia #Россия #Roscosmos #Роскосмос #HumanSpaceflight #Expedition74 #Expedition75 #InternationalCooperation #MicrogravityExperiments #SpaceLaboratory #UnitedStates #STEM #Education #HD #Video

NASA Artemis III Solid Rocket Booster Stacking | Kennedy Space Center

NASA Artemis III Solid Rocket Booster Stacking | Kennedy Space Center

Artemis III crew members, NASA astronauts Randy Bresnick (left) and Andre Douglas, view the right-hand aft assembly solid rocket booster segment of the Artemis III Space Launch System (SLS) rocket inside the Vehicle Assembly Building at NASA’s Kennedy Space Center in Florida on Friday, July 10, 2026. The astronauts met with NASA’s Exploration Ground Systems teams and got a close look at the work underway for their upcoming mission. Bresnick, Douglas, NASA astronaut Frank Rubio, and the European Space Agency astronaut Luca Parmitano will launch on the Artemis III mission to conduct critical rendezvous and docking tests with lunar lander systems in low Earth orbit, advancing the capabilities needed before astronauts return to the lunar surface on Artemis IV.
Technicians use a massive crane to lift the right-hand forward center assembly solid rocket booster segment for the Artemis III Space Launch System (SLS) rocket inside the Rotation, Processing, and Surge Facility at NASA’s Kennedy Space Center in Florida on Tuesday, July 14, 2026.
The right-hand aft assembly solid rocket booster segment for NASA’s Artemis III Space Launch System (SLS) rocket arrives at the agency’s Vehicle Assembly Building at NASA’s Kennedy Space Center in Florida on Thursday, July 9, 2026, ahead of stacking on top of the mobile launcher for the Artemis III mission.
The left-hand and right-hand aft assembly solid rocket booster segments for NASA’s Artemis III Space Launch System (SLS) rocket are secured to the mobile launcher at the agency’s Vehicle Assembly Building at NASA’s Kennedy Space Center in Florida on Saturday, July 11, 2026.
The left-hand and right-hand aft assembly solid rocket booster segments for NASA’s Artemis III Space Launch System (SLS) rocket are secured to the mobile launcher at the agency’s Vehicle Assembly Building at NASA’s Kennedy Space Center in Florida on Saturday, July 11, 2026.
Teams with NASA’s Exploration Ground Systems (EGS) lowered and secured the left-hand aft assembly solid rocket booster segment for NASA’s Artemis III Space Launch System (SLS) rocket to the mobile launcher at the agency’s Vehicle Assembly Building at NASA’s Kennedy Space Center in Florida on Thursday, July 9, 2026.
Teams with NASA’s Exploration Ground Systems lowered and secured the left-hand aft assembly solid rocket booster segment for NASA’s Artemis III Space Launch System (SLS) rocket to the mobile launcher at the agency’s Vehicle Assembly Building at NASA’s Kennedy Space Center in Florida on Thursday, July 9, 2026.
Boeing employees, from left to right, Adam Shaffer, Electrical Ground Systems equipment and technical lead engineer; Anna Fischer, Space Launch System electrical engineering intern; Ethan Minvielle, Space Launch System electrical engineering intern; and Joseph Colangelo, Space Launch System Test and evaluation engineering intern, pose for a photograph following left-hand aft assembly solid rocket booster segment for NASA’s Artemis III SLS (Space Launch System) was secured to the mobile launcher at the agency’s Vehicle Assembly Building at NASA Kennedy on Thursday, July 9, 2026.

The twin solid rocket boosters (SRBs), manufactured by Northrop Grumman in Utah, will provide more than 75 percent of the SLS rocket’s total thrust at launch. Planned to launch in 2027, the Artemis III Mission will launch astronauts in the Orion spacecraft on top of the SLS rocket to test rendezvous and docking capabilities in low Earth orbit between Orion and commercial spacecraft needed to land astronauts on the Moon.

On future missions, including Artemis IV in 2028, landers will bring astronauts to the lunar surface. While Artemis III will not land on the Moon, it will test the complex capabilities NASA needs to return—this time to stay.

Learn more about NASA’s Artemis program:

Image Credit: NASA/Ben Smegelsky/Kim Shiflett/Frank Michaux
Dates: July 9-14, 2026


#NASA #Space #Science #Earth #Moon #ArtemisProgram #ArtemisIII #ArtemisIIIMission #LunarLanders #HLS #NASASLS #SRBs #OrionSpacecraft #Astronauts #Italy #Italia #Europe #HumanSpaceflight #SolarSystem #SpaceExploration #NASAKennedy #VAB #MerrittIsland #Florida #UnitedStates #STEM #Education

Wednesday, July 22, 2026

New Expedition 74 Crew Photos: July 2026 | International Space Station

New Expedition 74 Crew Photos: July 2026 | International Space Station

All ten International Space Station crew members gather inside the Unity module for a portrait during dinnertime, showing off gourmet food packages from the European Space Agency (ESA). Clockwise from bottom left are Roscosmos cosmonaut Sergey Kud-Sverchkov (Russia); NASA astronauts Jessica Meir and Jack Hathaway; Roscosmos cosmonauts Andrey Fedyaev, Anna Kikina, and Pyotr Dubrov of Russia; European Space Agency astronaut Sophie Adenot; NASA astronauts Anil Menon and Chris Williams; and Roscosmos cosmonaut Sergei Mikaev of Russia.
From left, Expedition 74 flight engineers Anna Kikina and Pyotr Dubrov of Roscosmos, and Anil Menon of NASA pose for a portrait while holding a cake celebrating their recent arrival aboard the International Space Station. The trio launched aboard their Soyuz MS‑29 spacecraft from the Baikonur Cosmodrome on July 14, 2026, and docked to the orbital outpost’s Rassvet module the same day, beginning an eight‑and‑a‑half‑month space research mission.
Roscosmos cosmonaut and Expedition 74 flight engineer Andrey Fedyaev of Russia poses for a portrait while holding a cake celebrating the recent arrival of three new crewmates aboard the International Space Station.
NASA astronaut and Expedition 74 flight engineer Anil Menon is pictured inside the International Space Station's Unity module familiarizing himself with lab hardware and systems during his second day in space.
Expedition 74 flight engineer and NASA astronaut Anil Menon spent a day learning about the Life Sciences Glovebox from fellow NASA astronaut Jessica Meir.

After spending 241 days aboard the International Space Station, Expedition 74 flight engineer and NASA astronaut Chris Williams is scheduled to is return to Earth on July 26.

Expedition 74 emblem

Three Expedition 74 crew members are packing up cargo and handing over their responsibilities with less than one week to go before returning to Earth. Meanwhile, the International Space Station’s three newest crewmates are already in the second week of their mission getting used to life on orbit and researching how microgravity affects the human body.

NASA astronaut Chris Williams and Roscosmos cosmonauts Sergey Kud-Sverchkov and Sergei Mikaev of Russia are nearing the end of their mission that began with a launch from Kazakhstan aboard their Russian Soyuz MS-28 spacecraft on Nov. 27, 2025. The trio will undock from the Rassvet module in the Soyuz MS-28 over the weekend signifying the beginning of Expedition 75. They will take a short ride back to Earth for a parachute-assisted landing in Kazakhstan inside the Soyuz. 

Follow Expedition 74:

Expedition 74 Crew
Station Commander: Sergey-Kud Sverchkov (Russia)
Roscosmos (Russia) Flight Engineers:
Andrey Fedyaev, Sergei Mikaev,
Anna Kikina, Pyotr Dubrov
European Space Agency Flight Engineer: Sophie Adenot
NASA Flight Engineers: Jessica Meir, Jack Hathaway, Chris Williams, Anil Menon

An international partnership of space agencies provides and operates the elements of the International Space Station (ISS). The principals are the space agencies of the United States, Russia, Europe, Japan, and Canada.


Image Credits: NASA's Johnson Space Center/Chris Williams, European Space Agency
Dates: July 15-July 22, 2026



#NASA #Space #Science #ISS #Earth #SoyuzMS29CrewSpacecraft #Astronauts #Europe #France #ESA #Cosmonauts #Russia #Россия #Roscosmos #Роскосмос #HumanSpaceflight #Expedition74 #Expedition75 #InternationalCooperation #UnitedStates #STEM #Education

Canadian Wildfire Smoke over Atlantic Ocean | International Space Station

Canadian Wildfire Smoke over Atlantic Ocean | International Space Station



Expedition 74 flight engineer and NASA astronaut Jessica Meir shared these photos and commented: "My thoughts are with all of those affected by the Canadian wildfires. This weekend I spotted their smoke drifting out across the Atlantic Ocean (the hazy, grayer layer among the clouds seen here)."

"Stay safe, Earthlings!"

Dr. Jessica Meir is also a scientist that grew up in the American state of Maine that borders Canada.

NASA Astronaut/Dr. Jessica Meir's Biography:
https://www.nasa.gov/people/jessica-u-meir/

Follow Expedition 74:

Expedition 74 Crew
Station Commander: Sergey-Kud Sverchkov (Russia)
Roscosmos (Russia) Flight Engineers:
Andrey Fedyaev, Sergei Mikaev,
Anna Kikina, Pyotr Dubrov
European Space Agency Flight Engineer: Sophie Adenot
NASA Flight Engineers: Jessica Meir, Jack Hathaway, Chris Williams, Anil Menon

An international partnership of space agencies provides and operates the elements of the International Space Station (ISS). The principals are the space agencies of the United States, Russia, Europe, Japan, and Canada.


Image Credit: NASA's Johnson Space Center/J. Meir
Release Date: July 20, 2026



#NASA #Space #Science #ISS #Earth #AtlanticOcean #Canada #Wildfires #SmokePlumes #ClimateChange #GlobalHeating #Astronauts #JessicaMeir #AstronautPhotography #Europe #France #ESA #Cosmonauts #Russia #Россия #Roscosmos #Роскосмос #HumanSpaceflight #Expedition74 #InternationalCooperation #UnitedStates #STEM #Education

Close-up: Long Distance Galactic Gravitational Lensing | Hubble

Close-up: Long Distance Galactic Gravitational Lensing | Hubble Space Telescope

This intriguing observation from the NASA/European Space Agency Hubble Space Telescope shows a gravitationally lensed galaxy with the long-winded identification SGAS J143845+145407. Gravitational lensing has resulted in a mirror image of the galaxy at the center of this image, creating a captivating centerpiece.

Gravitational lensing occurs when a massive celestial body—such as a galaxy cluster—causes a sufficient curvature of spacetime for the path of light around it to be visibly bent, as if by a lens. Appropriately, the body causing the light to curve is called a gravitational lens, and the distorted background object is referred to as being "lensed". Gravitational lensing can result in multiple images of the original galaxy, as seen in this image, or in the background object appearing as a distorted arc or even a ring. Another important consequence of this lensing distortion is magnification, allowing astronomers to observe objects that would otherwise be too far away or too faint to be seen.

Hubble has a special flair for detecting lensed galaxies. The telescope's sensitivity and crystal-clear vision allow it to see faint and distant gravitational lenses that cannot be detected with ground-based telescopes because of the blurring effect of Earth's atmosphere. Hubble was the first telescope to resolve details within lensed images of galaxies, and is capable of imaging both their shape and internal structure.

This particular lensed galaxy is from a set of Hubble observations that take advantage of gravitational lensing to peer inside galaxies in the early Universe. The lensing reveals details of distant galaxies that would otherwise be unobtainable, and this allows astronomers to determine star formation in early galaxies. This in turn gives scientists a better insight into how the overall evolution of galaxies has unfolded.  


Credit: European Space Agency/Hubble & NASA, J. Rigby
Duration: 30 seconds
Release Date: July 18, 2022


#NASA #Space #Science #Astronomy #Hubble #GravitationalLensing #Galaxies #SGASJ143845145407 #BootesConstellation #Astrophysics #Physics #Cosmos #Universe #HubbleSpaceTelescope #HST #NASAGoddard #GSFC #STScI #UnitedStates #ESA #Europe #STEM #Education #HD #Video