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<rss version="2.0"><channel><title>Scientists May Have Detected The First Signature of a Black Hole's Event Horizon — Live Feed</title><link>https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon</link><atom:link xmlns:atom="http://www.w3.org/2005/Atom" href="https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon/rss.xml" rel="self" type="application/rss+xml"/><description>Continuously updated, source-cited coverage.</description>
<item><title>Scientists May Detect First Signature of Black Hole's Event Horizon</title><link>https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon</link><guid isPermaLink="false">https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon#u41707</guid><pubDate>Thu, 13 Aug 2026 07:25:13 +0000</pubDate><description>Researchers are studying gravitational-wave fingerprints from newborn black holes to test gravity under extreme conditions. Recent data from the James Webb Space Telescope and Euclid mission highlight compact red sources and ancient quasars&amp;#039; roles in early universe development. Some observations challenge the concept of black holes as bottomless pits.Why it mattersThese findings aim to distinguish general relativity from other relativistic theories. The study of black holes and their event horizons is crucial for understanding the universe&amp;#039;s evolution and the laws of physics under ex</description></item>
<item><title>Astronomers Analyze Event Horizons and Ancient Black Hole Growth</title><link>https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon</link><guid isPermaLink="false">https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon#u33455</guid><pubDate>Thu, 06 Aug 2026 01:35:39 +0000</pubDate><description>Scientists are studying gravitational-wave fingerprints from a newborn black hole event horizon to test gravity under extreme conditions. Recent data from the James Webb Space Telescope and Euclid mission highlight the role of compact red sources and ancient quasars in early universe development. Some observations challenge the concept of black holes as bottomless pits, as one instance showed a black hole ejecting dense gas after its primary feeding period ended. These findings aim to distinguish general relativity from other relativistic theories.Why it mattersUnderstanding event horizons all</description></item>
<item><title>Black Hole Event Horizon Signatures and Gravitational Tests</title><link>https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon</link><guid isPermaLink="false">https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon#u25762</guid><pubDate>Wed, 29 Jul 2026 06:36:34 +0000</pubDate><description>Astronomers have identified gravitational-wave fingerprints from a newborn black hole&amp;#039;s event horizon. A fast-moving star near Sagittarius A* may now allow scientists to test gravity under extreme conditions. This could help distinguish general relativity from other relativistic theories.What's confirmed:Sag A* is the supermassive black hole at the center of the Milky Way.General relativity predicts effects that Newton&amp;#039;s law of universal gravitation does not, including gravitational waves.Still unconfirmed:A recently identified star near the Milky Way&amp;#039;s central black hole is mov</description></item>
<item><title>Researchers Detect First Event Horizon Signatures of a Black Hole</title><link>https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon</link><guid isPermaLink="false">https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon#u24833</guid><pubDate>Sat, 04 Jul 2026 17:05:39 +0000</pubDate><description>Scientists identified gravitational-wave fingerprints from the event horizon of a newborn black hole. The data came from the collision of two black holes. This allows astronomers to extract information previously inaccessible from the edge of a black hole.What's confirmed:Researchers identified gravitational-wave fingerprints from the event horizon of a newborn black hole.The discovery followed the collision of two black holes.The event produced gravitational waves.Still unconfirmed:Signal GW250114 is the loudest gravitational wave ever recorded.The signal was recorded in January 2025.Australi</description></item>
<item><title>Scientists Detect First Signatures of Black Hole Event Horizon</title><link>https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon</link><guid isPermaLink="false">https://www.live-feeds.com/feed/scientists-may-have-detected-the-first-signature-of-a-black-hole-s-event-horizon#u16682</guid><pubDate>Mon, 29 Jun 2026 01:01:32 +0000</pubDate><description>Researchers have identified gravitational-wave fingerprints from the event horizon of a newborn black hole. The discovery follows the collision of two black holes, producing a direct wave that reveals the properties of the merger remnant. This provides a new method to measure frame-dragging effects in black-hole ergospheres.What's confirmed:Researchers detected gravitational-wave fingerprints of a black hole event horizon.The discovery was made by studying gravitational waves created by the collision of two black holes.The event horizon is the boundary from which nothing, including light, can </description></item>
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