Blue Compact Dwarf Galaxy: Low Metallicity and Rapid Star Formation in Web Image

Astronomers using NASA/ESA/CSA’s James Webb Space Telescope have discovered a typical extremely metal-poor, star-forming, blue, compact dwarf galaxy in the constellation Ursa Major, I. Zwicki 18 (abbreviated). I took a stunning image of I Zw 18).



This web image shows I Zwicky 18, a blue, compact dwarf galaxy about 59 million light-years away in the constellation Ursa Major. I Zwicky 18’s nearby companion galaxy can be seen at the bottom of the image. This companion star may be interacting with the dwarf galaxy and may have triggered the galaxy’s recent star formation. Image credits: NASA / ESA / CSA / Webb / Hirschauer other.

I Zw 18 It is located approximately 59 million light years away in the constellation Ursa Major.

This galaxy, also known as Mrk 116, LEDA 27182, and UGCA 166, discovered It was discovered in the 1930s by Swiss astronomer Fritz Zwicky.

At only 3,000 light years in diameter, it is much smaller than our own Milky Way galaxy.

I Zw 18 has experienced several bursts of star formation and has two large starburst regions at its center.

The wispy brown filaments surrounding the central starburst region are bubbles of gas heated by stellar winds and intense ultraviolet light emitted by hot, young stars.

“Metal-poor star-forming dwarf galaxies in the local universe are close analogs of high-redshift dwarf galaxies,” said Dr. Alec Hirschauer of the Space Telescope Science Institute and colleagues.

“Because the history of enrichment of a particular system tracks the accumulation of heavy elements through successive generations of stellar nucleosynthesis, low-abundance galaxies are likely to be more likely to be affected by a common phenomenon in the early Universe, including the global epoch of peak star formation. It mimics the astrophysical conditions where most of the cosmic star formation and chemical enrichment is expected to have taken place.”

“Thus, at the lowest metallicities, we may be able to approximate the star-forming environment of the time just after the Big Bang.”

“I Zw 18 is one of the most metal-poor systems known, with a measured gas-phase oxygen abundance of only about 3% of solar power production,” the researchers said. added.

“At a distance of 59 million light-years and with global star formation rate values ​​measured at 0.13 to 0.17 solar masses per year, this laboratory is designed to support young stars in an environment similar to the one in which they were discovered. It’s an ideal laboratory for studying both the demographics and the demographics of stars that evolved in the very early days of the universe.”

Dr. Hirschauer and his co-authors used Webb to study the life cycle of I Zw 18 dust.

“Until now, it was thought that the first generation of stars began forming only recently, but the NASA/ESA Hubble Space Telescope found “The dimmer and older red stars in the galaxy suggest that their formation began at least 1 billion years ago, and possibly 10 billion years ago,” the researchers said.

“Therefore, this galaxy may have formed at the same time as most other galaxies.”

“New observations by Webb reveal the detection of a set of dust-covered evolved star candidates. They also provide details about Zw 18’s two main star-forming regions. To do.”

“Webb’s new data suggests that major bursts of star formation in these regions occurred at different times.”

“The strongest starburst activity is now thought to have occurred more recently in the northwestern lobe of the galaxy compared to the southeastern lobe.”

“This is based on the relative abundance of young and old stars found in each lobe.”

of findings will be published in astronomy magazine.

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Alec S. Hirschauer other. 2024. Imaging I Zw 18 with JWST: I. Strategy and first results for dusty stellar populations. A.J., in press. arXiv: 2403.06980

Source: www.sci.news

New Middle Cretaceous paleoclimate insights from dinosaur footprints in the Nanushuk Formation

Paleontologists investigated dinosaur footprints and large assemblages of fossilized plants. Nanushuk FormationIt extends over much of the northern slope of central and western Alaska, varying in thickness from 1,500 to 250 m (4,921 to 820 ft) from west to northeast.

Theropod dinosaur footprints in the Nanushuk Formation, Alaska, USA. Note the sinusoidal shape of the metatoe impression. Scale bar – 10 cm.Image credit: Fiorillo other., doi: 10.3390/geosciences14020036.

“For the past 20 years, Alaska has been working on projects that integrate sedimentology, dinosaur paleontology, and paleoclimate indicators,” said Paul McCarthy, a professor at the University of Alaska Fairbanks.

“We've been studying the other three formations, Denali, the North Slope, and southwestern Alaska, and they're about 70 million years old.”

“This new one is in strata that are about 90 million to 100 million years old.”

“What we were interested in looking at rocks from this age is that this is about the same time that people thought the Bering Land Bridge connecting Asia and North America began.”

“We want to know who was using it, how they were using it, and what the circumstances were.”

“The mid-Cretaceous period was the hottest period of the Cretaceous period.”

“The Nanushuk Formation gives us a snapshot of what high-latitude ecosystems look like on a warm Earth.”

The Nanushuk Formation dates from the mid-Cretaceous period, approximately 94 to 113 million years ago, at the beginning of the Bering Land Bridge.

The field survey was conducted between 2015 and 2017, focusing on the Cork Basin, a circular geological feature of the formation.

The basin is located at the base of the Delong Mountains along the Kukpouluk River, approximately 100 km (60 miles) south of Point Rey and 32 km (20 miles) inland from the Chukchi Sea.

In the area, paleontologists found about 75 fossilized footprints and other traces of dinosaurs believed to have lived along rivers and deltas.

“This place had so many dinosaur footprints. One site stands out,” said Dr. Anthony Fiorillo, a researcher at the New Mexico Museum of Natural History and Science.

“We eventually realized that we were walking over an ancient landscape for at least 400 yards (366 meters).”

“In that landscape, we found large upright trees with smaller trees between them, with leaves on the ground. There were footprints on the ground, and there was fossilized feces.”

“We found numerous fossilized tree stumps about 60 centimeters (2 feet) in diameter. It felt like we were walking through a forest that was millions of years old.”

Although the Nanushuk Formation includes rocks of marine and non-marine characteristics and composition, the new study focuses primarily on non-marine sediments exposed along the upper Kukpouluk River.

“One of the things we did in our paper was look at the relative frequencies of different types of dinosaurs,” Dr. Fiorillo said.

“What was interesting to us was that bipedal plant-eating animals were clearly the most common.”

Two-legged plant-eating animals accounted for 59% of all footprints discovered. 17% were four-legged plant-eating dinosaurs, 15% were birds, and 9% were non-avian, mainly carnivorous bipedal dinosaurs.

“One of the interesting things is the relative frequency of bird tracks,” Dr. Fiorillo said.

Carbon isotope analysis of wood samples revealed that the area received approximately 70 inches (178 cm) of rainfall per year.

This record of increased precipitation during the Mid-Cretaceous provides new data supporting global precipitation patterns associated with the Mid-Cretaceous. Cretaceous thermal maximum.

The Cretaceous thermal maximum was a long-term trend about 90 million years ago, during which average global temperatures were significantly higher than today.

“Temperatures were much warmer than today, and perhaps more interestingly, we had a lot of rain,” Dr. Fiorillo said.

a paper Survey results are published in a magazine earth science.

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Anthony R. Fiorillo other. 2024. New dinosaur ichthyological, sedimentological, and geochemical data from the Nanushuk Formation of Alaska's North Slope, a Cretaceous high-latitude terrestrial greenhouse ecosystem. earth science 14(2):36; doi: 10.3390/geosciences14020036

Source: www.sci.news

Unusual rainfall leads to temporary lake formation in extremely arid Death Valley

View from a kayak on Death Valley Temporary Lake, February 9, 2024

Michael Kohler/NPS

Heavy rain has fallen in California in recent weeks, resulting in the remarkable formation of a rare temporary lake in Death Valley, the driest place in the United States.

Record levels of rain have flooded California over the past month. Numerous atmospheric river storms (narrow bands of highly concentrated moisture in the air) worsen wet conditions, putting up to 37 million people at risk of flooding.

Heavy rainfall also hit Death Valley National Park along the California-Nevada border. In fact, it rained so much that the park's Badwater Basin, normally a dry salt flat, temporarily turned into a shallow lake.

At 86 meters below sea level, the basin is the lowest point in North America and was home to an ancient body of water that researchers named Lake Manly tens of thousands of years ago.

Over the past few decades, the lake has been backfilled several times. In August 2023, rains associated with Hurricane Hillary formed a lake 11.3 kilometers long and 0.6 meters deep, which shrank in the following months. Well, it has been replenished once again. The current maximum length of the lake is nearly 10 kilometers and the depth is approximately 0.3 meters.

Last year, Death Valley National Park Closed for several weeks after Hurricane Hillary This is because flooding damaged the road network and limited opportunities for visitors to explore the temporary lake. This time, the park opened and the re-emergence of Lake Manly attracted tourists, including swimmers and kayakers.

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Source: www.newscientist.com

The Formation and Potential Destruction of the Himalayas by Earth’s Tectonic Plates

Deep underground in the heart of Asia, two giant plates are colliding with each other. Violent, slow-motion collisions between the geological plates are continuously shaping the towering Himalayas. However, newly discovered research suggests that this ongoing tectonic collision is also dividing Tibet in half.

A group of Chinese and American scientists conducted a study of underground seismic waves from earthquakes in and around Tibet and analyzed the geochemical composition of gases in surface hot springs. They found evidence that the Indian plate may be behaving unexpectedly as it collides with the Eurasian plate.

This research, which has not yet undergone peer review, was presented at the American Geophysical Union’s annual meeting in December. The scientists theorize that as the Indian plate continues its thrust beneath the Eurasian plate, it may be splitting apart beneath Tibet, separating the eastern and western halves of the slab. This fissure could have significant implications for the stability of the region, increasing the risk of earthquakes and other hazards.

The findings of the study provide an interesting and plausible explanation for the dynamic activity in this region, according to Barbara Romanowitz, a professor at the University of California, Berkeley. She also suggests that this potential split in the Indian plate may create a zone of weakness that could lead to large earthquakes.

The study proposes that the lithospheric mantle, one of the hard parts of the Earth’s crust, are sloughing off, leaving the crust behind, causing controversy within the scientific community as to how the collision of the Indian and Eurasian plates would occur or what it would mean for the Earth.

The region where this collision is occurring is unique and serves as a natural laboratory for scientists to understand the process of continental collision in real time. It is compared to a game of hide-and-seek, providing a brief snapshot of a particular process of continental collision.

Source: www.nbcnews.com

Unexpected star formation driven by dwarf galaxies discovered

A University of Michigan astronomer, Sally Ooi, led a study on the star-forming regions of the host galaxy NGC 2366, a typical dwarf irregular galaxy. This study was credited to the Observatorio de Calar Alto, J. van Eymeren (AIRUB, ATNF), and Á.R. López Sánchez. As it turns out, dwarf galaxies such as NGC 2366 experience a delay in expelling gas, which allows for the star-forming regions to hold onto gas and dust longer, promoting the formation and development of more stars. This delays the onset of strong superwinds by 10 million years, resulting in more active star formation. This discovery was published in the Astrophysical Journal.

This delay offers astronomers a unique opportunity to study a scenario similar to the dawn of the universe, when ultraviolet light begins to ionize hydrogen, changing the universe from opaque to transparent. By observing low-metallicity dwarf galaxies with large amounts of ultraviolet radiation, scientists can gain insight into these early stages of the universe. The use of new technology from the Hubble Space Telescope allows researchers to observe the light of triple ionized carbon in these galaxies. This observational evidence supports the delayed onset of strong superwinds and a greater amount of ultraviolet radiation in these galaxies.

Thanks to these discoveries, scientists may gain a better understanding of the nature of galaxies seen at the dawn of the universe. This information could be important for the upcoming James Webb Space Telescope. The study was published in the Astrophysical Journal and the Astrophysics Journal Letter. The research team involved in these studies included Michelle C. Jecmen, MS Oey, Amit N. Sawant, Ashkviz Danekar, Sergiy Silic, Linda J. Smith, Jens Melinder, Klaus Reiter, Matthew Hayes, Anne E. Jascott, Daniela Calzetti, Yu-Hua Chu, and Bethan L. James. Ultimately, these findings provide valuable insight into the formation and development of stars in low-metallicity dwarf galaxies.

Source: scitechdaily.com

Astronomers make breakthrough discovery in planet formation, conflicting with theoretical predictions

Recent observations of the young star DG Taurus reveal a smooth protoplanetary disk in which no planets have yet formed, suggesting that it is on the brink of this process. The findings show unexpected dust grain growth patterns and provide new insights into the early stages of planet formation. Credit: SciTechDaily.com

Astronomers have become very good at finding signs of planet formation around stars. However, to fully understand planet formation, it is important to examine cases where this process has not yet begun.

Looking for something and not finding it can sometimes be even more difficult than finding it, but new detailed observations of the young star DG Taurus reveal that the planet is a smooth protoplanet with no signs of planet formation. It was shown that it has a system disk. This lack of detected planet formation may indicate that DG Taurus is on the eve of planet formation.

Image of radio radiation intensity from a disk near DG Taurus observed with ALMA. Rings have not yet formed within the disk, suggesting that planets are about to form.Credit: ALMA (ESO/National Astronomical Observatory/NRAO), S. Obashi et al.

Protoplanetary disk and planet growth

Planets form around protostars, which are young stars that are still forming, in disks of gas and dust known as protoplanetary disks. Planets grow so slowly that it is impossible to observe their evolution in situ. Therefore, astronomers observe many protostars at slightly different stages of planet formation to build theoretical understanding.

This time, an international research team led by Satoshi Ohashi of the National Astronomical Observatory of Japan (NAOJ) has developed the Atacama Large Millimeter/Submillimeter Array (alma telescope) will conduct high-resolution observations of the protoplanetary disk surrounding the relatively young protostar DG Taurus, located 410 light-years away in the direction of Taurus. The researchers found that DG Taurus has a smooth protoplanetary disk and no rings that would indicate planet formation. This led the research team to believe that the DG Taurus system could begin forming planets in the future.

Unexpected discoveries and future research

The researchers found that during this pre-planetary stage, dust particles are within 40 astronomical units (about twice the size of Earth’s orbit). Uranus The radius of the central protostar is still small, but beyond this radius the dust particles begin to grow, which is the first step in planet formation. This goes against the theoretical expectation that planet formation begins inside the disk.

These results provide surprising new information about dust distribution and other conditions at the beginning of planet formation. Studying more examples in the future will further deepen our understanding of planet formation.

Reference: “Dust concentration and particle growth in the smooth disk of a DG tau protostar revealed by ALMA triple-band frequency observations” Satoshi Ohashi, Munetake Momose, Akiraka Kataoka, Aya Higuchi E, Takashi Tsukagoshi, Takahiro Ueda, Claudio Codella, Linda Podio, Tomoyuki Hanawa, Nami Sakai, Hiroshi Kobayashi, Satoshi Okuzumi, Hidekazu Tanaka, August 28, 2023, of astrophysical journal.
DOI: 10.3847/1538-4357/ace9b9

This research was funded by the Japan Society for the Promotion of Science, the German Foundation, and the European Union.

Source: scitechdaily.com