Connect with us

US NATIONAL NEWS

Liftoff! NASA Sends Science, Tech to Moon on Firefly, SpaceX Flight

Published

on

Carrying science and tech on Firefly Aerospace’s first CLPS or Commercial Lunar Payload Services flight for NASA, Blue Ghost Mission 1 launched at 1:11 a.m. EST aboard a SpaceX Falcon 9 rocket from Launch Complex 39A at the agency’s Kennedy Space Center in Florida. The company is targeting a lunar landing on Sunday, March 2.

“This mission embodies the bold spirit of NASA’s Artemis campaign – a campaign driven by scientific exploration and discovery,” said NASA Deputy Administrator Pam Melroy. “Each flight we’re part of is vital step in the larger blueprint to establish a responsible, sustained human presence at the Moon, Mars, and beyond. Each scientific instrument and technology demonstration brings us closer to realizing our vision. Congratulations to the NASA, Firefly, and SpaceX teams on this successful launch.”

Once on the Moon, NASA will test and demonstrate lunar drilling technology, regolith (lunar rocks and soil) sample collection capabilities, global navigation satellite system abilities, radiation tolerant computing, and lunar dust mitigation methods. The data captured could also benefit humans on Earth by providing insights into how space weather and other cosmic forces impact our home planet.

“NASA leads the world in space exploration, and American companies are a critical part of bringing humanity back to the Moon,” said Nicola Fox, associate administrator, Science Mission Directorate, NASA Headquarters in Washington. “We learned many lessons during the Apollo Era which informed the technological and science demonstrations aboard Firefly’s Blue Ghost Mission 1 – ensuring the safety and health of our future science instruments, spacecraft, and, most importantly, our astronauts on the lunar surface. I am excited to see the incredible science and technological data Firefly’s Blue Ghost Mission 1 will deliver in the days to come.”

As part of NASA’s modern lunar exploration activities, CLPS deliveries to the Moon will help humanity better understand planetary processes and evolution, search for water and other resources, and support long-term, sustainable human exploration of the Moon in preparation for the first human mission to Mars.

There are 10 NASA payloads flying on this flight:

  • Lunar Instrumentation for Subsurface Thermal Exploration with Rapidity (LISTER) will characterize heat flow from the interior of the Moon by measuring the thermal gradient and conductivity of the lunar subsurface. It will take several measurements to about a 10-foot final depth using pneumatic drilling technology with a custom heat flow needle instrument at its tip. Lead organization: Texas Tech University
  • Lunar PlanetVac (LPV) is designed to collect regolith samples from the lunar surface using a burst of compressed gas to drive the regolith into a sample chamber for collection and analysis by various instruments. Additional instrumentation will then transmit the results back to Earth. Lead organization: Honeybee Robotics
  • Next Generation Lunar Retroreflector (NGLR) serves as a target for lasers on Earth to precisely measure the distance between Earth and the Moon. The retroreflector that will fly on this mission could also collect data to understand various aspects of the lunar interior and address fundamental physics questions. Lead organization: University of Maryland
  • Regolith Adherence Characterization (RAC) will determine how lunar regolith sticks to a range of materials exposed to the Moon’s environment throughout the lunar day. The RAC instrument will measure accumulation rates of lunar regolith on the surfaces of several materials including solar cells, optical systems, coatings, and sensors through imaging to determine their ability to repel or shed lunar dust. The data captured will allow the industry to test, improve, and protect spacecraft, spacesuits, and habitats from abrasive regolith. Lead organization: Aegis Aerospace
  • Radiation Tolerant Computer (RadPC) will demonstrate a computer that can recover from faults caused by ionizing radiation. Several RadPC prototypes have been tested aboard the International Space Station and Earth-orbiting satellites, but now will demonstrate the computer’s ability to withstand space radiation as it passes through Earth’s radiation belts, while in transit to the Moon, and on the lunar surface. Lead organization: Montana State University
  • Electrodynamic Dust Shield (EDS) is an active dust mitigation technology that uses electric fields to move and prevent hazardous lunar dust accumulation on surfaces. The EDS technology is designed to lift, transport, and remove particles from surfaces with no moving parts. Multiple tests will demonstrate the feasibility of the self-cleaning glasses and thermal radiator surfaces on the Moon. In the event the surfaces do not receive dust during landing, EDS has the capability to re-dust itself using the same technology. Lead organization: NASA’s Kennedy Space Center
  • Lunar Environment heliospheric X-ray Imager (LEXI) will capture a series of X-ray images to study the interaction of solar wind and the Earth’s magnetic field that drives geomagnetic disturbances and storms. Deployed and operated on the lunar surface, this instrument will provide the first global images showing the edge of Earth’s magnetic field for critical insights into how space weather and other cosmic forces surrounding our planet impact it. Lead organizations: NASA’s Goddard Space Flight Center, Boston University, and Johns Hopkins University
  • Lunar Magnetotelluric Sounder (LMS) will characterize the structure and composition of the Moon’s mantle by measuring electric and magnetic fields. This investigation will help determine the Moon’s temperature structure and thermal evolution to understand how the Moon has cooled and chemically differentiated since it formed. Lead organization: Southwest Research Institute
  • Lunar GNSS Receiver Experiment (LuGRE) will demonstrate the possibility of acquiring and tracking signals from Global Navigation Satellite System constellations, specifically GPS and Galileo, during transit to the Moon, during lunar orbit, and on the lunar surface. If successful, LuGRE will be the first pathfinder for future lunar spacecraft to use existing Earth-based navigation constellations to autonomously and accurately estimate their position, velocity, and time. Lead organizations: NASA Goddard, Italian Space Agency
  • Stereo Camera for Lunar Plume-Surface Studies (SCALPSS) will use stereo imaging photogrammetry to capture the impact of rocket plume on lunar regolith as the lander descends on the Moon’s surface. The high-resolution stereo images will aid in creating models to predict lunar regolith erosion, which is an important task as bigger, heavier payloads are delivered to the Moon in close proximity to each other. This instrument also flew on Intuitive Machine’s first CLPS delivery. Lead organization: NASA’s Langley Research Center

“With 10 NASA science and technology instruments launching to the Moon, this is the largest CLPS delivery to date, and we are proud of the teams that have gotten us to this point,” said Chris Culbert, program manager for the Commercial Lunar Payload Services initiative at NASA’s Johnson Space Center in Houston. “We will follow this latest CLPS delivery with more in 2025 and later years. American innovation and interest to the Moon continues to grow, and NASA has already awarded 11 CLPS deliveries and plans to continue to select two more flights per year.”

Firefly’s Blue Ghost lander is targeted to land near a volcanic feature called Mons Latreille within Mare Crisium, a more than 300-mile-wide basin located in the northeast quadrant of the Moon’s near side. The NASA science on this flight will gather valuable scientific data studying Earth’s nearest neighbor and helping pave the way for the first Artemis astronauts to explore the lunar surface later this decade.

Learn more about NASA’s CLPS initiative at:

https://www.nasa.gov/clps

Continue Reading
Click to comment

Leave a Reply

Your email address will not be published. Required fields are marked *

Sports

GM Brands Dominate Detroit as Cadillac and Corvette Capture IMSA Chevrolet Detroit Sports Car Classic Wins

Published

on

DETROIT (FNN SPORTS) — Cadillac and Chevrolet celebrated a historic hometown sweep Saturday as both General Motors brands captured class victories in the IMSA WeatherTech SportsCar Championship’s Chevrolet Detroit Sports Car Classic.

Competing in the shadow of General Motors’ Renaissance Center headquarters along the Detroit Riverwalk, the No. 31 Cadillac Whelen Cadillac V-Series.R driven by Jack Aitken and Earl Bamber dominated the 100-minute race to secure the overall victory and Grand Touring Prototype (GTP) class win.

In Grand Touring Daytona Pro (GTD PRO), Antonio Garcia and Alexander Sims powered the No. 3 Corvette Racing by Pratt Miller Motorsports Corvette Z06 GT3.R to victory, giving Chevrolet a celebrated win on its home turf.

Cadillac Continues Detroit Dominance

The No. 31 Cadillac controlled the race from start to finish, executing a near-flawless performance in front of General Motors executives, employees, and supporters.

The victory marked Cadillac’s fifth IMSA triumph in Detroit, adding to previous wins in 2017, 2018, 2021, and 2022. The result also extended the No. 31 team’s streak to seven consecutive GTP podium finishes.

“To do it here at the home of GM and Cadillac with so many friends and family with us, my team absolutely nailed it,” Aitken said after the race.

The No. 25 BMW M Team WRT BMW M Hybrid V8 finished second in class, while the No. 10 Cadillac Wayne Taylor Racing Cadillac V-Series.R completed the GTP podium.

Meanwhile, the No. 93 Acura Meyer Shank Racing with Curb Agajanian Acura ARX-06 earned the IMSA Michelin Sustainability in Racing Award with its fourth-place finish.

Corvette Capitalizes on Late-Race Drama

While Cadillac’s victory was largely under control, the GTD PRO race featured significant late-race drama.

Garcia nearly lost the lead when Jack Hawksworth attempted a pass entering Turn 1 in the No. 14 Vasser Sullivan Racing Lexus RC F GT3. Contact between the two cars triggered a penalty against Hawksworth, whose Lexus received a drive-through penalty for incident responsibility.

Despite the pressure, Garcia maintained control on the final restart to secure his first IMSA victory in Detroit and the 32nd IMSA win of his career.

“Super happy to be in victory lane in Chevrolet land,” Garcia said. “I think all the big bosses will be very happy, as we are. It was a fantastic drive by Alex, who put the car on pole and opened a big gap early.”

The late-race chaos opened the door for the No. 9 Pfaff Motorsports Lamborghini Temerario GT3 driven by Andrea Caldarelli and Sandy Mitchell to earn the new car’s first podium finish in second place.

The No. 65 Ford Mustang GT3 driven by Christopher Mies and Frederic Vervisch rounded out the GTD PRO podium in third.

Championship Battle Tightens Heading to Watkins Glen

Both class winners started from the Motul Pole Award position and successfully converted pole into victory despite two late caution periods that reshuffled the field and intensified competition during the closing laps.

The victory unofficially moves Aitken into the lead of the GTP championship standings, while the No. 4 Corvette pairing of Nicky Catsburg and Tommy Milner maintains the GTD PRO points lead, though by a reduced margin.

The IMSA WeatherTech SportsCar Championship returns June 28 for the Sahlen’s Six Hours of The Glen at Watkins Glen International, one of the premier endurance races on the North American sports car calendar.

Continue Reading

Tech

NASA Rolls Out Massive SLS Rocket Stage for Artemis III Mission to Kennedy Space Center

Published

on

Pictured above is the top four-fifths of the SLS (Space Launch System) core stage – the section containing the liquid hydrogen tank, liquid oxygen tank, intertank, and forward skirt. NASA will roll the largest section of the agency’s SLS rocket that will launch the second crewed Artemis mission under the Artemis III mission out of NASA’s Michoud Assembly Facility on Monday, April 20. Credit: NASA

NEW ORLEANS (FNN) — NASA will roll out the largest section of its Space Launch System rocket on Monday, April 20, marking a major milestone for the Artemis III mission.

The section, representing the top four-fifths of the SLS core stage, is being moved from NASA’s Michoud Assembly Facility in New Orleans. It includes the liquid hydrogen tank, liquid oxygen tank, intertank and forward skirt. The structure will be loaded onto NASA’s Pegasus barge for transport to Kennedy Space Center in Florida.

CORE STAGE DELIVERY AND INTEGRATION

Once the core stage arrives at Kennedy Space Center, teams will complete final outfitting and vertical integration. The hardware will then be transferred to NASA’s Exploration Ground Systems Program for stacking and launch preparation.

The Artemis III engine section and boat-tail, which protects the engines during launch, were previously moved to the Vehicle Assembly Building in July 2025. The four RS-25 engines are scheduled to arrive from Stennis Space Center in Mississippi no later than July 2026 for integration.

POWERING THE ARTEMIS III MISSION

Equipped with four RS-25 engines, the SLS core stage will generate more than 2 million pounds of thrust, enabling the launch of astronauts aboard the Orion spacecraft.

Artemis III is currently targeted for launch in 2027, following the successful Artemis II mission, which completed a crewed flight around the Moon on April 10.

NASA’S MOON-TO-MARS STRATEGY

The Artemis III mission is part of NASA’s broader Artemis program, aimed at returning astronauts to the Moon and establishing a sustained human presence.

The mission will test critical capabilities, including rendezvous and docking between the Orion spacecraft and commercial systems needed for future lunar landings, currently planned for 2028.

NASA is working in partnership with Boeing, the SLS core stage lead contractor, and L3Harris Technologies, the lead contractor for the RS-25 engines. The core stage remains the backbone of the SLS rocket and is manufactured at the Michoud Assembly Facilit

Continue Reading

Tech

NASA’s Artemis II Astronauts Begin Historic Journey Around the Moon After Key Orion Engine Burn

Published

on

Earth's crescent is seen from a solar array camera on the Orion spacecraft on the first flight day of the Artemis II mission. Credit: NASA

CAPE CANAVERAL, Fla. (FNN) — For the first time in more than 50 years, astronauts on a NASA mission are headed around the Moon after successfully completing a critical burn of the Orion spacecraft’s main engine.

The approximately six-minute firing of Orion’s service module engine Thursday — known as the translunar injection burn — accelerated the spacecraft and its crew beyond Earth’s orbit, placing them on a trajectory toward the Moon.

Aboard the spacecraft are NASA astronauts Reid Wiseman, Victor Glover and Christina Koch, along with Canadian Space Agency astronaut Jeremy Hansen.

“Today, for the first time since Apollo 17 in 1972, humans have departed Earth orbit,” said Dr. Lori Glaze, acting associate administrator for NASA’s Exploration Systems Development Mission Directorate. “Reid, Victor, Christina and Jeremy now are on a precise trajectory toward the Moon. Orion is operating with crew for the first time in space, and we are gathering critical data and learning from each step.”

NASA’s Space Launch System rocket and Orion spacecraft lifted off from Launch Pad 39B at Kennedy Space Center at 6:35 p.m. EDT on April 1, beginning a planned 10-day test mission around the Moon and back.

Successful Launch and Spacecraft Activation

Shortly after reaching space, Orion deployed its four solar array wings, allowing the spacecraft to generate power from the Sun. The crew and mission controllers then began transitioning the spacecraft from launch to normal flight operations while checking critical onboard systems.

About 49 minutes into the flight, the rocket’s upper stage fired to place Orion into an elliptical orbit around Earth. A second burn propelled the spacecraft — named “Integrity” by the crew — into a high Earth orbit extending roughly 46,000 miles above the planet for nearly 24 hours of system testing.

Following the maneuver, Orion separated from the upper stage and began flying independently.

System Tests and Crew Operations in Space

During the early phase of the mission, the astronauts conducted a manual piloting demonstration to evaluate Orion’s handling capabilities using the Interim Cryogenic Propulsion Stage as a docking target.

After the test, Orion executed an automated departure burn to safely move away from the stage. The propulsion stage later performed a disposal burn before re-entering Earth’s atmosphere over a remote area of the Pacific Ocean.

Before its re-entry, four small CubeSats were deployed from the rocket’s Orion stage adapter to conduct separate scientific missions.

Mission teams also transitioned communications to NASA’s Deep Space Network while the crew adjusted to the space environment. Astronauts completed their first rest periods, performed onboard exercise routines, restored the spacecraft’s toilet to normal operations and prepared the spacecraft for the translunar injection burn.

Lunar Flyby and Artemis Program Goals

The crew is scheduled to conduct a lunar flyby Monday, April 6, when astronauts will capture high-resolution images and make observations of the Moon’s surface — including portions of the lunar far side rarely seen directly by humans.

Although the far side will only be partially illuminated during the flyby, the lighting conditions are expected to cast long shadows across the terrain, highlighting ridges, slopes and crater rims that are difficult to observe under full sunlight.

After completing the flyby, the astronauts will return to Earth and splash down in the Pacific Ocean off the coast of San Diego.

The mission marks a major milestone for NASA’s Artemis program, which aims to send astronauts on increasingly ambitious missions to explore the Moon, advance scientific discovery, stimulate economic growth and prepare for the first crewed missions to Mars.

Continue Reading
Advertisement
Advertisement Ticket Time Machine ad
Advertisement Orlando Regional REALTOR Association logo
Advertisement Parts Pass App
Advertisement Hispanic Chamber of Commerce of Metro Orlando
Advertisement
Advertisement African American Chamber of Commerce of Central Florida
Advertisement FNN News en Español
Advertisement Indian American Chamber of Commerce logo
Advertisement Florida Sports Channel

FNN Newsletter

Trending