Thursday, December 14, 2023

Space News: Giant asteroid passes close to Earth, potential danger averted

 

Giant asteroid passes close to Earth, potential danger averted


A massive asteroid, approximately 1 kilometer in diameter, approached within 5.5 million kilometers of Earth.


Wednesday, December 13, 2023

Defense News: WATCH: IDF Commando Brigade receives logistical resupply via parachutes

 

WATCH: IDF Commando Brigade receives logistical resupply via parachutes


About seven tons of logistical support were dropped from the air to supply hundreds of fighters of the commando formation (Division 98) in Khan Yunis with the first operational airdrop since the Second Lebanon War


By Ami Rojkes Dombe, Israel Defense, 11/12/2023

https://www.israeldefense.co.il/en/node/60580

            Lt.Col. Ami, Logistics Officer, 98th Division. Photo: IDF Spokesperson's Unit


In the last few days, a logistical resupply was carried out that included approximately seven tons of logistical supplies to hundreds of commando fighters currently fighting in the Khan Yunis sector. In a joint operation with the Technology and Logistics Division and the aerial supply unit, this was carried out using an Air Force "Shimshon" type aircraft of Squadron 103.

                                                                 IAF C-130 Hercules of Squadron 103

The advanced operational system used enables the parachuting of equipment, which adapts and precisely navigates to reach its target - the Israeli ground forces. This is the first operational use of this system and the first operational airdrop carried out since the Second Lebanon War.

One of the 98th Division's unique operational capabilities is its capacity to maintain its independence when it is impossible to send supplies by ground. All division members practiced using the system together to achieve accurate parachute delivery capability.

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Sunday, December 10, 2023

Defense News: Israeli Navy Launches First Shaldag MK5 Vessel

 

Israeli Navy Launches First Shaldag MK5 Vessel


This is the first ship out of four purchased from Israel shipyards worth about NIS100 million for the Navy for coastal defense purposes


By Eyal Boguslavsky, Israel Defense,10/12/2023

https://www.israeldefense.co.il/en/node/60550


Israel Shipyards announced last week the launch of the first Shaldag MK5 patrol ship for the Israeli Navy for coastal defense purposes.

In July 2021, the Israeli MInistry of Defense announced that it would purchase four Shaldag MK5 vessels for the Navy at an estimated value of NIS 100 million. 

Israel Shipyards' Shaldag MK5 fast patrol vessels are sold to various navies around the world. Just in the last few days, it was reported that 2 ships had arrived in the Philippines for the local navy. These are the fifth and sixth ships from a deal for the supply of 8 vessels with a value of approximately $195 million.

At the end of 2020, the shipyards transferred one Shaldag MK5 ship to the Senegalese Navy as part of a deal to supply 3 Shaldag MK2 ships and one Shaldag MK5 ship. There is a single report from 2014 that says that Azerbaijan also purchased 6 Shaldag MK5 ships from Israel Shipyards.



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Wednesday, December 6, 2023

Protecting power grids from space weather

Dec. 5, 2023, by Rachel Fritts, American Geophysical Union

Extreme space weather events can cause problems for power grids without proper mitigation.

Activity from the sun, such as solar flares, can cause fluctuations in Earth's geomagnetic field that send electrical currents flowing through power grids. These geomagnetically induced currents (GICs) can cause problems ranging from temporary voltage instability to widespread blackouts to reduced life spans for transformers. It is therefore important to develop effective mitigation strategies that protect against GIC-induced power disruptions while maintaining power to consumers.

Suggested solutions have included installing equipment such as capacitors to block GICs and making changes to network configurations. Mac Manus and a research team worked with the energy company Transpower New Zealand Ltd. to test four mitigation strategies that could be used throughout the North and South Islands of New Zealand. The team did this by running simulations of nine extreme space weather event scenarios—based on some of the country's worst recorded storms—and modeling potential mitigation responses.

The findings are published in the journal Space Weather.

Transpower's former mitigation model was shown to be solid but optimized for the South Island but was less effective elsewhere. Another tested option significantly reduced the risk of GIC-caused damage, but it involved disconnecting 121 (~30%) of the country's high-voltage transmission lines, increasing the overall risk of network failure.

Working with Transpower, the researchers found that the mitigation strategy that best balanced effectiveness and practicality reduced the effects of GICs by 16% with a targeted disconnection of just 24 lines. Transpower has adopted this as the new operational procedure to manage space weather events.

In addition, the group determined that installing capacitor blocking devices on 14 specific transformers could reduce GICs by another 16%. Transpower is considering implementing this as well. The paper's findings demonstrate the benefits of researchers working with industry partners to mitigate space weather impacts. The paper also provides techniques that could be applied in other regions of the world.


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Defense News: Hundreds of Emtan "Ramon" Pistols Sold to Peruvian Police

 

Hundreds of Emtan "Ramon" Pistols Sold to Peruvian Police



540 Ramon pistols in 9x19 mm caliber, worth about half a million dollars, will be handed over to the police


By Eyal Boguslavsky, Israel Defense, 4/12/2023


Photo courtesy Emtan

Emtan, an Israeli small arms manufacturer, is deepening its penetration into the South American market. According to Army Recognition, the Joint Command of the Armed Forces of Peru signed a $472.5 contract with the company to supply 540 9x19 Ramon pistols for its National Police.

This past summer. the Ecuadorian Police purchased 1,752 MZ-4P assault rifles and 30 MZ10 sniper rifles, in a $4.5 million deal. 

"Etman also supplies thousands of firearms to countries in Latin America under many contracts with government agencies and we will continue to offer high-quality weapons to government agencies around the world."

Concerning the specific contract for the Ramon pistols in Peru, the company said that "a delegation of officers and soldiers from the Peruvian army came to Emtan to perform pre-acceptance exams based on the NATO AC225 standard.  


                                                                               Picture source: Emtan Karmiel Ltd

Ramon

Polymer Frame Striker Pistol

 

SPECIFICATIONS

Commando

CALIBER

9x19 NATO

BARREL LENGTH

102mm/4.02''

RIFLING

1:10 Right Twist

TOTAL LENGTH

Max 184mm

TOTAL WIDTH

Max 33mm

TOTAL HEIGHT

Max 130mm

WEIGHT WITHOUT MAGAZINE

Max 630gr

SIGHTS

Steel/Steel with tritium inserts‭ ‬

MAGAZINE CAPACITY

15Rd or 17Rd

MAGAZINE RELEASE

Reversible

LOADED CHAMBER INDICATOR

Yes

COMPENSATOR

Optional

THREADED BARREL FOR SILENCERS

Optional




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Tuesday, December 5, 2023

Reimagining the Cosmos: New Theory Unites Einstein’s Gravity With Quantum Mechanics

By U. COLLEGE LONDON Dec. 4, 2023


A new theory challenges the foundations of modern physics by suggesting that spacetime is classical, not quantum. This theory predicts larger spacetime fluctuations, impacting object weights. Proposed experiments, like measuring a 1kg mass for weight fluctuations, aim to test this groundbreaking concept, potentially revolutionizing our understanding of gravity and spacetime.

A radical theory that consistently unifies gravity and quantum mechanics while preserving Einstein’s classical concept of spacetime is announced today in two papers published simultaneously by UCL (University College London) physicists.

Modern physics is founded upon two pillars: quantum theory on the one hand, which governs the smallest particles in the universe, and Einstein’s theory of general relativity on the other, which explains gravity through the bending of spacetime. But these two theories are in contradiction with each other and a reconciliation has remained elusive for over a century.

Challenging the Status Quo: A New Theoretical Approach

The prevailing assumption has been that Einstein’s theory of gravity must be modified, or “quantized,” in order to fit within quantum theory. This is the approach of two leading candidates for a quantum theory of gravity, string theory and loop quantum gravity.

But a new theory, developed by Professor Jonathan Oppenheim (UCL Physics & Astronomy) and laid out in a new paper in Physical Review X (PRX), challenges that consensus and takes an alternative approach by suggesting that spacetime may be classical – that is, not governed by quantum theory at all.

The image depicts an experiment in which heavy particles (illustrated as the moon), cause an interference pattern (a quantum effect), while also bending spacetime. The hanging pendulums depict the measurement of spacetime. The actual experiment is typically performed using Carbon-60, one of the largest known molecules. The UCL calculation indicates that the experiment should also be performed using higher-density atoms such as gold. The other two images represent the two experiments proposed by the UCL group, both of which constrain any theory where spacetime is treated classically. One is the weighing of a mass, the other is an interference experiment. 
Credit: Isaac Young

Instead of modifying spacetime, the theory – dubbed a “postquantum theory of classical gravity” – modifies quantum theory and predicts an intrinsic breakdown in predictability that is mediated by spacetime itself. This results in random and violent fluctuations in spacetime that are larger than envisaged under quantum theory, rendering the apparent weight of objects unpredictable if measured precisely enough.

Experimental Tests and Theoretical Implications

A second paper, published simultaneously in Nature Communications and led by Professor Oppenheim’s former PhD students, looks at some of the consequences of the theory, and proposes an experiment to test it: to measure a mass very precisely to see if its weight appears to fluctuate over time.

For example, the International Bureau of Weights and Measures in France routinely weighs a 1kg mass which used to be the 1kg standard. If the fluctuations in measurements of this 1kg mass are smaller than required for mathematical consistency, the theory can be ruled out.

The weighing of a mass — an experiment proposed by the UCL group that constrains any theory where spacetime is treated classically. 
Credit: Isaac Young

The outcome of the experiment, or other evidence emerging that would confirm the quantum vs classical nature of spacetime, is the subject of a 5000:1 odds bet between Professor Oppenheim and Professor Carlo Rovelli and Dr. Geoff Penington – leading proponents of quantum loop gravity and string theory respectively.
UCL Research Group’s Five-Year Study

For the past five years, the UCL research group has been stress-testing the theory, and exploring its consequences.

Professor Oppenheim said: “Quantum theory and Einstein’s theory of general relativity are mathematically incompatible with each other, so it’s important to understand how this contradiction is resolved. Should spacetime be quantized, or should we modify quantum theory, or is it something else entirely? Now that we have a consistent fundamental theory in which spacetime does not get quantized, it’s anybody’s guess.”

Co-author Zach Weller-Davies, who as a PhD student at UCL helped develop the experimental proposal and made key contributions to the theory itself, said: “This discovery challenges our understanding of the fundamental nature of gravity but also offers avenues to probe its potential quantum nature.

“We have shown that if spacetime doesn’t have a quantum nature, then there must be random fluctuations in the curvature of spacetime which have a particular signature that can be verified experimentally.

“In both quantum gravity and classical gravity, spacetime must be undergoing violent and random fluctuations all around us, but on a scale which we haven’t yet been able to detect. But if spacetime is classical, the fluctuations have to be larger than a certain scale, and this scale can be determined by another experiment where we test how long we can put a heavy atom in superposition* of being in two different locations.”

Contributions and Insights From Co-authors

Co-authors Dr. Carlo Sparaciari and Dr. Barbara Šoda, whose analytical and numerical calculations helped guide the project, expressed hope that these experiments could determine whether the pursuit of a quantum theory of gravity is the right approach.

Dr. Šoda (formerly UCL Physics & Astronomy, now at the Perimeter Institute of Theoretical Physics, Canada) said: “Because gravity is made manifest through the bending of space and time, we can think of the question in terms of whether the rate at which time flows has a quantum nature, or classical nature.

“And testing this is almost as simple as testing whether the weight of a mass is constant, or appears to fluctuate in a particular way.”

Dr. Sparaciari (UCL Physics & Astronomy) said: “While the experimental concept is simple, the weighing of the object needs to be carried out with extreme precision.

“But what I find exciting is that starting from very general assumptions, we can prove a clear relationship between two measurable quantities – the scale of the spacetime fluctuations, and how long objects like atoms or apples can be put in quantum superposition of two different locations. We can then determine these two quantities experimentally.”

Weller-Davies added: “A delicate interplay must exist if quantum particles such as atoms are able to bend classical spacetime. There must be a fundamental trade-off between the wave nature of atoms, and how large the random fluctuations in spacetime need to be.”

Broader Implications and Future Experiments

The proposal to test whether spacetime is classical by looking for random fluctuations in mass is complementary to another experimental proposal that aims to verify the quantum nature of spacetime by looking for something called “gravitationally mediated entanglement.”

Professor Sougato Bose (UCL Physics & Astronomy), who was not involved with the announcement today, but was among those to first propose the entanglement experiment, said: “Experiments to test the nature of spacetime will take a large-scale effort, but they’re of huge importance from the perspective of understanding the fundamental laws of nature. I believe these experiments are within reach – these things are difficult to predict, but perhaps we’ll know the answer within the next 20 years.”

The postquantum theory has implications beyond gravity. The infamous and problematic “measurement postulate” of quantum theory is not needed, since quantum superpositions necessarily localize through their interaction with classical spacetime.

The theory was motivated by Professor Oppenheim’s attempt to resolve the black hole information problem. According to standard quantum theory, an object going into a black hole should be radiated back out in some way as information cannot be destroyed, but this violates general relativity, which says you can never know about objects that cross the black hole’s event horizon. The new theory allows for information to be destroyed, due to a fundamental breakdown in predictability.

Background Information

Quantum Mechanics

All the matter in the universe obeys the laws of quantum theory, but we only really observe quantum behavior at the scale of atoms and molecules. Quantum theory tells us that particles obey Heisenberg’s uncertainty principle, and we can never know their position or velocity at the same time. In fact, they don’t even have a definite position or velocity until we measure them. Particles like electrons can behave more like waves and act almost as if they can be in many places at once (more precisely, physicists describe particles as being in a “superposition” of different locations).

Quantum theory governs everything from semiconductors which are ubiquitous in computer chips, to lasers, to superconductivity to radioactive decay. In contrast, we say that a system behaves classically if it has definite underlying properties. A cat appears to behave classically – it is either dead or alive, not both, nor in a superposition of being dead and alive. Why do cats behave classically, and small particles quantumly? We don’t know, but the postquantum theory doesn’t require the measurement postulate, because the classicality of spacetime infects quantum systems and causes them to localize.

Gravity

Newton’s theory of gravity, gave way to Einstein’s theory of general relativity (GR), which holds that gravity is not a force in the usual sense. Instead, heavy objects such as the sun, bend the fabric of spacetime in such a way that causes the earth to revolve around it. Spacetime is just a mathematical object consisting of the three dimensions of space, and time considered as a fourth dimension. General relativity predicted the formation of black holes and the big bang. It holds that time flows at different rates at different points in space, and the GPS in your smartphone needs to account for this in order to properly determine your location.

Historical Context

The framework presented by Oppenheim in PRX, and in a companion paper with Sparaciari, Šoda, and Weller-Davies, derives the most general consistent form of dynamics in which a quantum system interacts with a classical system. It then applies this framework to the case of general relativity coupled to quantum fields theory. It builds on earlier work and a community of physicists. An experiment to test the quantum nature of gravity via gravitationally mediated entanglement was proposed by Bose et. al. and by C. Marletto and V. Vadral. Two examples of consistent classical-quantum dynamics were discovered in the 90’s by Ph. Blanchard and A. Jadzyk, and by Lajos Diosi, and again by David Poulin around 2017. From a different perspective, in 2014 a model of Newtonian gravity coupled to quantum systems via a “measurement-and-feedback” approach, was presented by Diosi and Antoinne Tilloy in 2016, and by D Kafri, J. Taylor, and G. Milburn, in 2014. The idea that gravity might be somehow related to the collapse of the wavefunction, dates back to F. Karolyhazy (1966), L. Diosi (1987) and R. Penrose (1996). That classical-quantum couplings might explain localization of the wavefunction has been suggested by others including M. Hall and M. Reginatto, Diosi and Tilloy, and David Poulin. The idea that spacetime might be classical dates back to I. Sato (1950), and C. Moller (1962), but no consistent theory was found until now.


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Monday, December 4, 2023

Defense News: Indian Special Forces uses SmartShooter's SMASH X4 sight

 

Indian Special Forces uses SmartShooter's SMASH X4 sight


The Indian Navy procured in 2020-21 SMASH 2000 rifle sights, manufactured by SmartShooter, as protection against drone attacks


By Eyal Boguslavsky, Israel Defense,  3/12/2023


SMARTSHOOTER, an Israeli designer, developer, and manufacturer of fire control systems that increase small arms' accuracy, lethality, and situational awareness, reveals that its SMASH X4 sight used by the special forces of the 15 Corps of the Indian Army also known as the Chinar Corps.

15 Corps is presently located in Srinagar and is responsible for military operations in the Kashmir Valley. It has participated in all military conflicts with Pakistan and China to date.


The Indian Navy procured in 2020-21 SMASH 2000 rifle sights, manufactured by SmartShooter, as protection against drone attacks. The SMASH 2000 is a smart electro-optical rifle sight with a fire control computer. The sight significantly increases operational shooting accuracy and significantly improves the hit rate for a variety of stationary and mobile targets.

SMASH X4 combines an x4 magnifying optic scope with SMARTSHOOTER's SMASH unique fire control capabilities, thus providing extended detection, recognition & identification ranges for the shooter as well as extended lethality ranges. The SMASH X4 also includes an etched reticle to allow shooting without battery power.

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Sunday, December 3, 2023

Europe is working on a multi-purpose habitat for the moon

Dec. 1, 2023, by L. Tognetti, Universe Today

Image of the Multi-Purpose Habitat (MPH) being developed through a recent partnership between the Italian Space Agency and Thales Alenia Space. 
Credit: Thales Alenia Space

With NASA gearing up to send humans back to the moon in the next few years with the Artemis missions with the goal of establishing a permanent outpost at the lunar south pole, nations are making efforts to contribute to Artemis and a permanent presence on our nearest celestial neighbor.

Recently, the Italian Space Agency, formally known as Agenzia Spaziale Italiana (ASI), has taken steps to establish the first permanent outpost on the lunar surface, known simply as the Multi-Purpose Habitat (MPH). This endeavor was officially kicked by the ASI signing a contract with the French-based aerospace company, Thales Alenia Space, who specializes in space-based systems, including ground segments and satellites used for both Earth observation and space exploration.

"MPH will mark a historic milestone as the first Italian habitation module to operate on the lunar surface. This is a matter of great pride for our company, which has the unique technical and organizational skills to overcome challenges of this kind," Franco Fenoglio, who is the Manager of Human & Robotic Planetary Exploration Program at Thales Alenia Space, said in an official statement. Thales also announced the partnership on its X account, formerly known as Twitter.

Despite MPH being only a concept right now, the partnership between ASI and Thales Alenia Space comes after MPH's design passed NASA's Element Initiation Review just last month and with a Mission Concept Review (MCR) slated to be conducted sometime in the first quarter of 2024. The goal of MPH will be its compatibility with Artemis architecture for future lunar crewed missions.

The image provided by Thales Alenia Space of its MPH shows a very simple design comprised of a single cylinder complete with solar panels and a communications dish. However, this module will be required to protect astronauts from the harsh lunar environment, including intense cosmic radiation and the lunar surface's extreme temperature fluxes, as temperatures at the lunar equator can reach 121°C (250°F) during the day and -133°C (-208°F).

https://youtu.be/w9G1nz4UlyU?si=HTtmsz3CDya5wMWu

However, temperatures are especially important at the lunar south pole, which is the target landing site for the Artemis missions, as parts of these regions experience either constant sunlight or constant darkness. For example, data from NASA's Lunar Reconnaissance Orbiter has indicated that temperatures in the darkest craters at the poles are lower than -246°C (-410°F). Therefore, MPH's design and construction will have to account for these much lower temperatures, as well.

Founded in 2007, Thales Alenia Space has a long and rich history of space-based activities, as it is the second largest industrial participant in the International Space Station (ISS), with Boeing being the largest. This participation includes building several pressurized ISS modules such as Harmony, Tranquility, Columbus Laboratory Module, Leonardo, and the Cupola, the last of which is comprised of the large windows where the astronauts conduct Earth observations.

https://youtu.be/g9Ah6h7dHLo?si=MTLVXE7c4PPTZY4E

This most recent development for the MPH continues a long-standing partnership between ASI and NASA, as ASI has sent a total of seven astronauts to space starting with STS-46 in 1992 and most recently with SpaceX Crew-4 in 2022. Additionally, Italy became an official participant in the Artemis Accords, which they signed in 2020.


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Saturday, December 2, 2023

Defense News: CN ROMARM S.A and Elbit Systems to Cooperate on Establishment of Artillery Center of Excellence in Romania

 

CN ROMARM S.A and Elbit Systems to Cooperate on Establishment of Artillery Center of Excellence in Romania


The cooperation agreement includes the production of Elbit Systems’ 155mm ATMOS Advanced Mobile Howitzers


By Israel Defense, 30/11/2023

https://www.israeldefense.co.il/en/node/60461

The ATMOS Advanced Mobile Howitzer. Photo: Elbit Systems website

Elbit Systems Ltd. and CN ROMARM S.A, through its subsidiary S Uzina Automecanica Moreni S.A. (UAM), have announced a cooperation agreement between the two companies in the field of artillery production.

As part of the agreement, the parties will establish a Romanian Artillery Center, with the participation of additional local companies to enhance the domestic industrial base, generate additional employment opportunities, and establish a strong foundation for sovereign artillery production in Romania.

The cooperation agreement includes the production of Elbit Systems’ 155mm ATMOS Advanced Mobile Howitzers including the transfer of know-how for the manufacturing, production, assembly, and integration of the ATMOS howitzers. ROMARM and UAM will operate as the system integrator, with more than 50% of the total workshare. Moreni will also serve as a long-term local support and maintenance provider for the ATMOS Howitzers.

The partners are considering additional potential Romanian companies for participation in the center of excellence including ELMET International SRL, Bacau, a manufacturer of Electronic Cables and Mechanical subsystems; IOR Optics Company Bucharest, a producer of military and civilian-grade optics; Simultec SRL, a supplier of operational and tactical trainers and simulators for defense; Systematic, to supply and support the Tactical Communications Network, Fire Support software and C4I applications.

The success of this partnership should generate new employment opportunities in Romania, supported by the growing demand for 155mm Howitzers from the Romanian military and other NATO and EU countries.

The ATMOS Advanced Mobile Howitzer. Photo: Elbit Systems website

 “Elbit Systems, a global leader in artillery gun systems and heavy turrets, has proven its business model through its 25-year commitment to the Romanian market,” said Udi Vered, General Manager, Elbit Systems Land. “Our battle-proven solution can be further developed with ROMARM through UAM production capabilities and transform Romania into our artillery hub for the region. By working together with ROMARM, we aim to position ourselves as a strategic supplier not only to the Romanian Land Forces but also to the entire European market.”

Corneliu Vişoianu, General Manager, Uzina Automecanica Moreni S.A.(UAM): “UAM is a specialized company for designing, fabrication and maintenance of armored vehicles since 1958, with over 15000 vehicles delivered to Romanian Ministery of Defence, North of Africa or South East. As National Centre for Maintenance, UAM is looking at extending its list of products and new technologies in order to answer for the new challenges that the region is facing. In this respect, production of ATMOS Advanced Mobile Howitzers with ELBIT Systems is a great opportunity”.

Elbit Systems specializes in land and weapons systems house including the design, development, ‎manufacture, and integration of Artillery Howitzer Gun Systems, Mortar Systems, Remote-Controlled Weapon Systems (RCWS), manned and unmanned turrets, tanks, and combat vehicles upgrades and modernization as well as a comprehensive, high-performance array of precision ammunition, rocket solutions, and combat mobility, survivability and protection systems.

Elbit Systems has been working in Romania for decades, owning two local companies – ELMET, the largest defense exporter in Romania, and Simultec, Training and Simulators Company. 

Friday, December 1, 2023

Discovery of planet too big for its sun throws off solar system formation models

Nov. 30, 2023, by Pennsylvania State U.

An artistic rendering of the mass comparison of LHS 3154 system and our own Earth and sun. 
Credit: Penn State University

The discovery of a planet that is far too massive for its sun is calling into question what was previously understood about the formation of planets and their solar systems, according to Penn State researchers.

In a paper published in the journal Science, researchers report the discovery of a planet more than 13 times as massive as Earth orbiting the "ultracool" star LHS 3154, which itself is nine times less massive than the sun. The mass ratio of the newly found planet with its host star is more than 100 times higher than that of Earth and the sun.

The finding reveals the most massive known planet in a close orbit around an ultracool dwarf star, the least massive and coldest stars in the universe. The discovery goes against what current theories would predict for planet formation around small stars and marks the first time a planet with such high mass has been spotted orbiting such a low-mass star.

"This discovery really drives home the point of just how little we know about the universe," said Suvrath Mahadevan, the Verne M. Willaman Professor of Astronomy and Astrophysics at Penn State and co-author on the paper. "We wouldn't expect a planet this heavy around such a low-mass star to exist."

He explained that stars are formed from large clouds of gas and dust. After the star is formed, the gas and dust remain as disks of material orbiting the newborn star, which can eventually develop into planets.

https://youtu.be/OaRqswwLB8E?si=oERQzerIlX5RZ7kf
This video is an artistic representation of a newly discovered system, LHS 3154, which contains a planet far more massive for its sun than current models would predict. 
Credit: Abigail Hope Minnich

"The planet-forming disk around the low-mass star LHS 3154 is not expected to have enough solid mass to make this planet," Mahadevan said. "But it's out there, so now we need to reexamine our understanding of how planets and stars form."

The researchers spotted the oversized planet, named LHS 3154b, using an astronomical spectrograph built at Penn State by a team of scientists led by Mahadevan. The instrument, called the Habitable Zone Planet Finder or HPF, was designed to detect planets orbiting the coolest stars outside our solar system with the potential for having liquid water—a key ingredient for life—on their surfaces.

While such planets are very difficult to detect around stars like our sun, the low temperature of ultracool stars means that planets capable of having liquid water on their surface are much closer to their star relative to Earth and the sun. This shorter distance between these planets and their stars, combined with the low mass of the ultracool stars, results in a detectable signal announcing the presence of the planet, Mahadevan explained.

"Think about it like the star is a campfire. The more the fire cools down, the closer you'll need to get to that fire to stay warm," Mahadevan said. "The same is true for planets. If the star is colder, then a planet will need to be closer to that star if it is going to be warm enough to contain liquid water. If a planet has a close enough orbit to its ultracool star, we can detect it by seeing a very subtle change in the color of the star's spectra or light as it is tugged on by an orbiting planet."

Located at the Hobby-Eberly Telescope at the McDonald Observatory in Texas, the HPF provides some of the highest precision measurements to date of such infrared signals from nearby stars.

"Making the discovery with HPF was extra special, as it is a new instrument that we designed, developed and built from the ground-up for the purpose of looking at the uncharted planet population around the lowest mass stars," said Guðmundur Stefánsson, NASA Sagan Fellow in Astrophysics at Princeton University and lead author on the paper, who helped develop HPF and worked on the study as a graduate student at Penn State.

"Now we are reaping the rewards, learning new and unexpected aspects of this exciting population of planets orbiting some of the most nearby stars."

The instrument has already yielded critical information in the discovery and confirmation of new planets, Stefánsson explained, but the discovery of the planet LHS 3154b exceeded all expectations.

Artistic rendering of the possible view from LHS 3154b towards its low mass host star. Given its large mass, LHS 3154b probably has a Neptune-like composition. 
Credit: Penn State



"Based on current survey work with the HPF and other instruments, an object like the one we discovered is likely extremely rare, so detecting it has been really exciting," said Megan Delamer, astronomy graduate student at Penn State and co-author on the paper. "Our current theories of planet formation have trouble accounting for what we're seeing."

In the case of the massive planet discovered orbiting the star LHS 3154, the heavy planetary core inferred by the team's measurements would require a larger amount of solid material in the planet-forming disk than current models would predict, Delamer explained.

The finding also raises questions about prior understandings of the formation of stars, as the dust-mass and dust-to-gas ratio of the disk surrounding stars like LHS 3154—when they were young and newly formed—would need to be 10 times higher than what was observed in order to form a planet as massive as the one the team discovered.

"What we have discovered provides an extreme test case for all existing planet formation theories," Mahadevan said. "This is exactly what we built HPF to do, to discover how the most common stars in our galaxy form planets—and to find those planets."



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