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WNBA star who hurt Caitlin Clark's eye calls for league to 'take action' against Trump administration policies

30 January 2025 at 19:22

Connecticut Sun player DiJonai Carrington incited fierce backlash by wearing an anti-Trump shirt last weekend, and now she's taking that message even further. 

During a press conference before an "Unrivaled" league game Thursday, Carrington declared it's time for WNBA players to "take action" in response to President Donald Trump's policies.

"We see that some of the policies are already going into action, and, of course, that means that as the WNBA and being at the forefront of a lot of these movements, it's time for us to also take action," Carrington said. 

"It definitely needs to happen as women, women's rights being taken away, like, now, LGBTQ rights being taken away now. They haven't happened yet, but definitely in the works."

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Carrington wore a shirt that said, "The F--- Donald Trump Tour" Friday while walking into Wayfair Arena in Miami, Florida.

The player is most known for her interactions with women's basketball phenom Caitlin Clark during Clark's rookie WNBA season in 2024. 

Carrington gave Clark a black eye after poking her during a game between Clark's Indiana Fever and Carrington's Connecticut Sun in the first round of the playoffs in September. Carrington laughed with Fever teammate Marina Mabrey after the incident.

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Carrington has said she didn't intentionally poke Clark in the eye and that she wasn't laughing about the incident. However, she made light of the controversy over Clark's black eye in an Instagram Live video in October. 

In the video, Carrington and her girlfriend, NaLyssa Smith, who plays on the Indiana Fever with Clark, were in their kitchen when Smith poked Carrington in the eye.

"Ow, you poked me in the eye," Carrington said. Smith apologized, and the two laughed.

"Did you do it on purpose?" Carrington asked.

Carrington provoked Clark fans prior to the eye-poking incident with multiple statements berating Clark and her fan base. 

During a game in June, Carrington fouled Clark after Clark received an inbound pass from teammate Kristy Wallace. Clark caught the pass and started toward the basket. Carrington was late getting to Clark due to a screen by Aliyah Boston, and she bumped into Clark.

Later that month, Carrington posted on X, saying Clark should do more to speak out about people using her name for "racism" and other forms of prejudice. She also called the Fever fans the "nastiest" in the league.

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NASA Solar Observatory Sees Coronal Loops Flicker Before Big Flares

15 January 2025 at 13:37

3 min read

NASA Solar Observatory Sees Coronal Loops Flicker Before Big Flares

For decades, scientists have tried in vain to accurately predict solar flares — intense bursts of light on the Sun that can send a flurry of charged particles into the solar system. Now, using NASA’s Solar Dynamics Observatory, one team has identified flickering loops in the solar atmosphere, or corona, that seem to signal when the Sun is about to unleash a large flare.

These warning signs could help NASA and other stakeholders protect astronauts as well as technology both in space and on the ground from hazardous space weather.

A portion of the Sun appears in shades of gold and black. In the upper left, several gold-shaded arches rise above a bright region on the Sun.
NASA’s Solar Dynamics Observatory captured this image of coronal loops above an active region on the Sun in mid-January 2012. The image was taken in the 171 angstrom wavelength of extreme ultraviolet light.
NASA/Solar Dynamics Observatory

Led by heliophysicist Emily Mason of Predictive Sciences Inc. in San Diego, California, the team studied arch-like structures called coronal loops along the edge of the Sun. Coronal loops rise from magnetically driven active regions on the Sun, where solar flares also originate.

The team looked at coronal loops near 50 strong solar flares, analyzing how their brightness in extreme ultraviolet light varied in the hours before a flare compared to loops above non-flaring regions. Like flashing warning lights, the loops above flaring regions varied much more than those above non-flaring regions.

“We found that some of the extreme ultraviolet light above active regions flickers erratically for a few hours before a solar flare,” Mason explained. “The results are really important for understanding flares and may improve our ability to predict dangerous space weather.”

Published in the Astrophysical Journal Letters in December 2024 and presented on Jan. 15, 2025, at a press conference during the 245th meeting of the American Astronomical Society, the results also hint that the flickering reaches a peak earlier for stronger flares. However, the team says more observations are needed to confirm this link.

The four panels in this movie show brightness changes in coronal loops in four different wavelengths of extreme ultraviolet light (131, 171, 193, and 304 angstroms) before a solar flare in December 2011. The images were taken by the Atmospheric Imaging Assembly (AIA) on NASA’s Solar Dynamics Observatory and processed to reveal flickering in the coronal loops.
NASA/Solar Dynamics Observatory/JHelioviewer/E. Mason

Other researchers have tried to predict solar flares by examining magnetic fields on the Sun, or by looking for consistent trends in other coronal loop features. However, Mason and her colleagues believe that measuring the brightness variations in coronal loops could provide more precise warnings than those methods — signaling oncoming flares 2 to 6 hours ahead of time with 60 to 80 percent accuracy.

“A lot of the predictive schemes that have been developed are still predicting the likelihood of flares in a given time period and not necessarily exact timing,” said team member Seth Garland of the Air Force Institute of Technology at Wright-Patterson Air Force Base in Ohio.

Each solar flare is like a snowflake — every single flare is unique.

Kara kniezewski

Kara kniezewski

Air Force Institute of Technology

“The Sun’s corona is a dynamic environment, and each solar flare is like a snowflake — every single flare is unique,” said team member Kara Kniezewski, a graduate student at the Air Force Institute of Technology and lead author of the paper. “We find that searching for periods of ‘chaotic’ behavior in the coronal loop emission, rather than specific trends, provide a much more consistent metric and may also correlate with how strong a flare will be.”

The scientists hope their findings about coronal loops can eventually be used to help keep astronauts, spacecraft, electrical grids, and other assets safe from the harmful radiation that accompanies solar flares. For example, an automated system could look for brightness changes in coronal loops in real-time images from the Solar Dynamics Observatory and issue alerts.

“Previous work by other researchers reports some interesting prediction metrics,” said co-author Vadim Uritsky of NASA’s Goddard Space Flight Center in Greenbelt, Maryland, and the Catholic University of Washington in D.C. “We could build on this and come up with a well-tested and, ideally, simpler indicator ready for the leap from research to operations.”

By Vanessa Thomas
NASA’s Goddard Space Flight Center, Greenbelt, Md.

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Jan 16, 2025
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NASA’s LEXI Will Provide X-Ray Vision of Earth’s Magnetosphere

3 January 2025 at 11:00

5 min read

NASA’s LEXI Will Provide X-Ray Vision of Earth’s Magnetosphere

A NASA X-ray imager is heading to the Moon as part of NASA’s Artemis campaign, where it will capture the first global images of the magnetic field that shields Earth from solar radiation.

The Lunar Environment Heliospheric X-ray Imager, or LEXI, instrument is one of 10 payloads aboard the next lunar delivery through NASA’s CLPS (Commercial Lunar Payload Services) initiative, set to launch from the agency’s Kennedy Space Center in Florida no earlier than mid-January, with Firefly Aerospace’s Blue Ghost Lander. The instrument will support NASA’s goal to understand how our home planet responds to space weather, the conditions in space driven by the Sun.

NASA’s next mission to the Moon will carry an instrument called LEXI (the Lunar Environment Heliospheric X-ray Imager), which will provide the first-ever global view of the magnetic environment that shields Earth from solar radiation. This video can be freely shared and downloaded at https://svs.gsfc.nasa.gov/14739.
Credits: NASA’s Goddard Space Flight Center

Once the dust clears from its lunar landing, LEXI will power on, warm up, and direct its focus back toward Earth. For six days, it will collect images of the X-rays emanating from the edges of our planet’s vast magnetosphere. This comprehensive view could illustrate how this protective boundary responds to space weather and other cosmic forces, as well as how it can open to allow streams of charged solar particles in, creating aurora and potentially damaging infrastructure. 

“We’re trying to get this big picture of Earth’s space environment,” said Brian Walsh, a space physicist at Boston University and LEXI’s principal investigator. “A lot of physics can be esoteric or difficult to follow without years of specific training, but this will be science that you can see.”

What LEXI will see is the low-energy X-rays that form when a stream of particles from the Sun, called the solar wind, slams into Earth’s magnetic field. This happens at the edge of the magnetosphere, called the magnetopause. Researchers have recently been able to detect these X-rays in a patchwork of observations from other satellites and instruments. From the vantage point of the Moon, however, the whole magnetopause will be in LEXI’s field of view.

An artist’s rendering of the surface of the moon, gray and rocky with a dark sky above it. In the foreground is a gold-colored lunar lander, round and on atop four lets. The LEXI instrument juts out from the top.
In this visualization, the LEXI instrument is shown onboard Firefly Aerospace’s Blue Ghost Mission 1, which will deliver 10 Commercial Lunar Payload Services (CLPS) payloads to the Moon.
Firefly Aerospace

The team back on Earth will be working around the clock to track how the magnetosphere expands, contracts, and changes shape in response to the strength of the solar wind.

“We expect to see the magnetosphere breathing out and breathing in, for the first time,” said Hyunju Connor, an astrophysicist at NASA’s Goddard Space Flight Center in Greenbelt, Maryland, and the NASA lead for LEXI. “When the solar wind is very strong, the magnetosphere will shrink and push backward toward Earth, and then expand when the solar wind weakens.”

The LEXI instrument will also be poised to capture magnetic reconnection, which is when the magnetosphere’s field lines merge with those in the solar wind and release energetic particles that rain down on Earth’s poles. This could help researchers answer lingering questions about these events, including whether they happen at multiple sites simultaneously, whether they occur steadily or in bursts, and more.

These solar particles streaming into Earth’s atmosphere can cause brilliant auroras, but they can also damage satellites orbiting the planet or interfere with power grids on the ground.

“We want to understand how nature behaves,” Connor said, “and by understanding this we can help protect our infrastructure in space.”

Several people dressed in white protective clothing handle the LEXI X-ray instrument and a sheet of silvery metallic film. The instrument is a boxy, rectangular shape and mostly gray metal.
The LEXI team packs the instrument at Boston University.
Michael Spencer/Boston University

The CLPS delivery won’t be LEXI’s first trip to space. A team at Goddard, including Walsh, built the instrument (then called STORM) to test technology to detect low-energy X-rays over a wide field of view. In 2012, STORM launched into space on a sounding rocket, collected X-ray images, and then fell back to Earth.

It ended up in a display case at Goddard, where it sat for a decade. When NASA put out a call for CLPS projects that could be done quickly and with a limited budget, Walsh thought of the instrument and the potential for what it could see from the lunar surface.

“We’d break the glass — not literally — but remove it, restore it, and refurbish it, and that would allow us to look back and get this global picture that we’ve never had before,” he said. Some old optics and other components were replaced, but the instrument was overall in good shape and is now ready to fly again. “There’s a lot of really rich science we can get from this.”

Under the CLPS model, NASA is investing in commercial delivery services to the Moon to enable industry growth and support long-term lunar exploration. As a primary customer for CLPS deliveries, NASA aims to be one of many customers on future flights. NASA Goddard is a lead science collaborator on LEXI. NASA’s Marshall Space Flight Center in Huntsville, Alabama, manages the development of seven of the 10 CLPS payloads carried on Firefly’s Blue Ghost lunar lander, including LEXI.

Learn more about CLPS and Artemis at:
https://www.nasa.gov/clps

By Kate Ramsayer
NASA’s Goddard Space Flight Center, Greenbelt, Md.

NASA’s Parker Solar Probe Makes History With Closest Pass to Sun

27 December 2024 at 12:02
5 Min Read

NASA’s Parker Solar Probe Makes History With Closest Pass to Sun

An illustration showing the Parker Solar Probe spacecraft — a flat shield facing the Sun, with instruments and antennae on the other side, near the Sun, which has solar material ejecting off of it.
An artist’s concept showing Parker Solar Probe.
Credits:
NASA/APL

Operations teams have confirmed NASA’s mission to “touch” the Sun survived its record-breaking closest approach to the solar surface on Dec. 24, 2024.

Breaking its previous record by flying just 3.8 million miles above the surface of the Sun, NASA’s Parker Solar Probe hurtled through the solar atmosphere at a blazing 430,000 miles per hour — faster than any human-made object has ever moved. A beacon tone received late on Dec. 26 confirmed the spacecraft had made it through the encounter safely and is operating normally.

This pass, the first of more to come at this distance, allows the spacecraft to conduct unrivaled scientific measurements with the potential to change our understanding of the Sun.

Flying this close to the Sun is a historic moment in humanity’s first mission to a star.

Nicky fox

Nicky fox

NASA Associate Administrator, Science Mission Directorate

“Flying this close to the Sun is a historic moment in humanity’s first mission to a star,” said Nicky Fox, who leads the Science Mission Directorate at NASA Headquarters in Washington. “By studying the Sun up close, we can better understand its impacts throughout our solar system, including on the technology we use daily on Earth and in space, as well as learn about the workings of stars across the universe to aid in our search for habitable worlds beyond our home planet.”

NASA’s Parker Solar Probe survived its record-breaking closest approach to the solar surface on Dec. 24, 2024. Breaking its previous record by flying just 3.8 million miles above the surface of the Sun, the spacecraft hurtled through the solar atmosphere at a blazing 430,000 miles per hour — faster than any human-made object has ever moved.
Credits: NASA

This video can be freely shared and downloaded at https://svs.gsfc.nasa.gov/14741.

Parker Solar Probe has spent the last six years setting up for this moment. Launched in 2018, the spacecraft used seven flybys of Venus to gravitationally direct it ever closer to the Sun. With its last Venus flyby on Nov. 6, 2024, the spacecraft reached its optimal orbit. This oval-shaped orbit brings the spacecraft an ideal distance from the Sun every three months — close enough to study our Sun’s mysterious processes but not too close to become overwhelmed by the Sun’s heat and damaging radiation. The spacecraft will remain in this orbit for the remainder of its primary mission.

“Parker Solar Probe is braving one of the most extreme environments in space and exceeding all expectations,” said Nour Rawafi, the project scientist for Parker Solar Probe at the Johns Hopkins Applied Physics Laboratory (APL), which designed, built, and operates the spacecraft from its campus in Laurel, Maryland. “This mission is ushering a new golden era of space exploration, bringing us closer than ever to unlocking the Sun’s deepest and most enduring mysteries.”

Close to the Sun, the spacecraft relies on a carbon foam shield to protect it from the extreme heat in the upper solar atmosphere called the corona, which can exceed 1 million degrees Fahrenheit. The shield was designed to reach temperatures of 2,600 degrees Fahrenheit — hot enough to melt steel — while keeping the instruments behind it shaded at a comfortable room temperature. In the hot but low-density corona, the spacecraft’s shield is expected to warm to 1,800 degrees Fahrenheit.

A red infographic shows a spacecraft at key distances on its journey through the Sun’s atmosphere. A dot showing the location of the first passage into the corona on Apr. 2021 is shown at 8.13 million miles from the Sun and another at 3.83 million miles shows the closest final approach on Dec. 2024. A separate inset diagram at the bottom shows the locations of key discoveries with the Earth at one end 93 million miles away from the Sun at the other end. Two dots showing the discovery of switchbacks in the solar wind in 2019 (14.7 million miles from the Sun) and the discovery of a switchback origin in 2021 (8.12 million miles from the Sun) are shown.
The spacecraft’s record close distance of 3.8 million miles may sound far, but on cosmic scales it’s incredibly close. If the solar system was scaled down with the distance between the Sun and Earth the length of a football field, Parker Solar Probe would be just four yards from the end zone — close enough to pass within the tenuous outer atmosphere of the Sun known as the corona.
NASA/APL

“It’s monumental to be able to get a spacecraft this close to the Sun,” said John Wirzburger, the Parker Solar Probe mission systems engineer at APL. “This is a challenge the space science community has wanted to tackle since 1958 and had spent decades advancing the technology to make it possible.”

By flying through the solar corona, Parker Solar Probe can take measurements that help scientists better understand how the region gets so hot, trace the origin of the solar wind (a constant flow of material escaping the Sun), and discover how energetic particles are accelerated to half the speed of light.

“The data is so important for the science community because it gives us another vantage point,” said Kelly Korreck, a program scientist at NASA Headquarters and heliophysicist who worked on one of the mission’s instruments. “By getting firsthand accounts of what’s happening in the solar atmosphere, Parker Solar Probe has revolutionized our understanding of the Sun.”

Previous passes have already aided scientists’ understanding of the Sun. When the spacecraft first passed into the solar atmosphere in 2021, it found the outer boundary of the corona is wrinkled with spikes and valleys, contrary to what was expected. Parker Solar Probe also pinpointed the origin of important zig-zag-shaped structures in the solar wind, called switchbacks, at the visible surface of the Sun — the photosphere.

Since that initial pass into the Sun, the spacecraft has been spending more time in the corona, where most of the critical physical processes occur.

Illustration of the Parker Solar Probe near the Sun, showing a glowing, fiery orange and yellow solar surface with a grid-like texture representing the Sun's outer atmosphere. The spacecraft appears small, glowing white, and is positioned near the upper right corner, surrounded by the intense solar environment.
This conceptual image shows Parker Solar Probe about to enter the solar corona.
NASA/Johns Hopkins APL/Ben Smith

“We now understand the solar wind and its acceleration away from the Sun,” said Adam Szabo, the Parker Solar Probe mission scientist at NASA’s Goddard Space Flight Center in Greenbelt, Maryland. “This close approach will give us more data to understand how it’s accelerated closer in.”

Parker Solar Probe has also made discoveries across the inner solar system. Observations showed how giant solar explosions called coronal mass ejections vacuum up dust as they sweep across the solar system, and other observations revealed unexpected findings about solar energetic particles. Flybys of Venus have documented the planet’s natural radio emissions from its atmosphere, as well as the first complete image of its orbital dust ring.

So far, the spacecraft has only transmitted that it’s safe, but soon it will be in a location that will allow it to downlink the data it collected on this latest solar pass.

The data that will come down from the spacecraft will be fresh information about a place that we, as humanity, have never been.

Joe Westlake

Joe Westlake

Heliophysics Division Director, NASA Headquarters

“The data that will come down from the spacecraft will be fresh information about a place that we, as humanity, have never been,” said Joe Westlake, the director of the Heliophysics Division at NASA Headquarters. “It’s an amazing accomplishment.”

The spacecraft’s next planned close solar passes come on March 22, 2025, and June 19, 2025.

By Mara Johnson-Groh
NASA’s Goddard Space Flight Center, Greenbelt, Md.

Media Contact: Sarah Frazier

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