Close Menu
    Facebook X (Twitter) Instagram
    SciTechDaily
    • Biology
    • Chemistry
    • Earth
    • Health
    • Physics
    • Science
    • Space
    • Technology
    Facebook X (Twitter) Pinterest YouTube RSS
    SciTechDaily
    Home»Space»Astronomers Discover Closest High-Mass Stellar Objects Ever Measured
    Space

    Astronomers Discover Closest High-Mass Stellar Objects Ever Measured

    By Anna Harrison, University of LeedsMarch 11, 2019No Comments5 Mins Read
    Facebook Twitter Pinterest Telegram LinkedIn WhatsApp Email Reddit
    Share
    Facebook Twitter LinkedIn Pinterest Telegram Email Reddit
    Astronomers Discover Massive Twin Star
    Binary star formation through disk fragmentation starts with a young star surrounded by a rotating disk of gas and dust. The disk fragments, with a second star forming within the disk, surrounded by its own disk. The two stars form an orbiting pair. Credit: B. Saxton, NRAO/AUI/NSF

    Astronomers have discovered a binary star system with the closest high-mass young stellar objects ever measured, providing a valuable “laboratory” to test theories on high-mass binary star formation.

    An international team led by the University of Leeds has determined the distance between the massive young star PDS 27 and its orbiting stellar companion to be just 30 astronomical units away, or 4.5 billion km.

    That is roughly the distance between our Sun and Neptune, making them the stellar companions with the closest proximity ever determined for young high-mass stars in a binary system – a star system with two stars in orbit around a center of mass.

    An exciting discovery

    Study lead author, Dr. Evgenia Koumpia, from the School of Physics and Astronomy at Leeds, said: “This is a very exciting discovery, observing and simulating massive binaries at the early stages of their formation is one of the main struggles of modern astronomy.

    “With PDS 27 and its companion we have now found the closest, most massive young stellar objects in binaries resolved to date.

    “There is a shortage of known young massive binary systems in charted space. High mass stars have comparatively short lifespans, burning out and exploding as supernovae in only a few million years, making them difficult to spot. This limits our ability to test the theories on how these stars form.”

    Astronomers Discover Massive Twin Star PDS 27
    2MASS observations (background image) revealed a highly reddened source back in 2003 indicating the massive young nature of PDS 27. PIONIER on VLTI provides 2,000 times higher angular resolution making it possible to resolve PDS 27 as a binary system for the first time in 2019. Evgenia Koumpia, University of Leeds

    Close stellar companions

    As part of their study, the team has also identified a companion object for another young massive star referred to as PDS 37. The analysis revealed a distance between PDS 37 and its companion to be between 42 to 54 astronomical units –comparable to the distance between the Sun and Pluto.

    While further apart than PDS 27 and its companion, it is still a significant discovery given the need for confirmed massive young stellar binaries in astronomical research.

    Dr. Koumpia continued: “How these binary systems form is quite a controversial question with several theories having been put forward. Observational studies of binaries in their early stages are crucial to verifying the theories of their formation.

    “PDS 27 and PDS 37 are rare and important laboratories that can help inform and test the theories on the formation of high mass binaries.”

    PDS 27 is at least 10 times more massive than our Sun, Dr. Koumpia explained, and about 8,000 light years away. To determine the presence of stellar companions for PDS 27 and PDS 37, the team used the highest spatial resolution provided by the PIONIER instrument on the European Southern Observatory’s Very Large Telescope Interferometer (VLTI), pictured at top.

    This instrument combines light beams from four telescopes, each of which is 8.2 meters across, and mimics a single telescope with a diameter of 130 meters. The resulting high spatial resolving power allowed the team to resolve such close binary systems despite their huge distance from us and their close proximity to each other.

    Study co-author Professor Rene Oudmaijer, also from the School of Physics and Astronomy at Leeds, said: “The next big question – which we have tended to avoid so far because of observational difficulties – is why so many of these massive stars are in binary systems?”

    “It has become increasingly clear to astronomers that massive stars are almost never born alone, with at least one sibling for company. But the reasons why that is the case are still rather murky.

    “Massive stars exert significant influence on their cosmic environment. Their stellar winds, energy and the supernova explosions they generate in turn can impact the formation of other stars and galaxies. The evolution and fate of high-mass stars is quite complex but previous studies have shown that they can be influenced to a large degree by their binary properties.

    “The discovery of massive young binary stars provides a crucial step forward in being able to answer many of the questions we still have about these stellar objects. These discoveries were only possible thanks to the exquisite resolving power provided by the PIONIER instrument on the VLTI.”

    Reference: “Resolving the MYSO binaries PDS 27 and PDS 37 with VLTI/PIONIER” by E. Koumpia1, K. M. Ababakr, W. J. de Wit, R. D. Oudmaijer, A. Caratti o Garatti, P. Boley, H. Linz, S. Kraus, J. S. Vink and J.-B. Le Bouquin, 20 February 2019, A&A.
    DOI: 10.1051/0004-6361/201834624

    Never miss a breakthrough: Join the SciTechDaily newsletter.
    Follow us on Google and Google News.

    Astronomy Astrophysics Cosmology University of Leeds
    Share. Facebook Twitter Pinterest LinkedIn Email Reddit

    Related Articles

    Astronomers Discover Unexpected Companion Around A Young Star

    The Brightest Flare Ever Observed From Sagittarius A*

    12 Billion-Year Old Supernova Discovered by Astronomers

    Dark Matter Filament in Galaxy Supercluster Directly Measured

    Calculations Show the Ideal Time to Study the Cosmos

    Lyman-Alpha Blobs are Some of the Largest Individual Objects in the Observable Universe

    Links Between Core Collapse Supernovae and Star Formation Established

    The Bolshoi Simulation: Boxing the Universe

    Baryon Oscillation Spectroscopic Survey Measures the Universe’s Expansion and Dark Energy

    Leave A Reply Cancel Reply

    • Facebook
    • Twitter
    • Pinterest
    • YouTube

    Don't Miss a Discovery

    Subscribe for the Latest in Science & Tech!

    Trending News

    These Toads Are Surviving a Deadly Fungus – Scientists May Finally Know Why

    These Brain Cells May Explain Why We Eventually Have To Sleep

    Tomatoes Contain an Invisible Ingredient With Surprising Effects on Liver Health

    World’s First Heat-Powered Cooling System Turns Waste Heat Into Cold

    Antarctica Gained a Record 695 Billion Tons of Ice in Just Two Years

    Don’t Miss: A Brilliant Venus and Glowing Harvest Moon Light Up the Sky

    New Twist on the Einstein Problem Reveals Unexpected Physics

    JWST Captures Stunning Evidence of How Supermassive Black Holes Feed

    Follow SciTechDaily
    • Facebook
    • Twitter
    • YouTube
    • Pinterest
    • Newsletter
    • RSS
    SciTech News
    • Biology News
    • Chemistry News
    • Earth News
    • Health News
    • Physics News
    • Science News
    • Space News
    • Technology News
    Recent Posts
    • Most People Don’t Know This Popular Food Is Linked to Prostate Cancer Risk
    • Earth May Not Be a Cosmic Fluke, New Simulations Suggest
    • Astronomers Watch a Dead Star’s Remains Dissolve Into Space
    • Lava-Covered Planets Are Defying a Key Rule of Planetary Science
    • Scientists Find a New Way To Stop Aggressive Breast Cancer From Spreading
    Copyright © 1998 - 2026 SciTechDaily. All Rights Reserved.
    • Science News
    • About
    • Contact
    • Editorial Board
    • Privacy Policy
    • Terms of Use

    Type above and press Enter to search. Press Esc to cancel.