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Detection of Black Holes01:10

Detection of Black Holes

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Although black holes were theoretically postulated in the 1920s, they remained outside the domain of observational astronomy until the 1970s.
Their closest cousins are neutron stars, which are composed almost entirely of neutrons packed against each other, making them extremely dense. A neutron star has the same mass as the Sun but its diameter is only a few kilometers. Therefore, the escape velocity from their surface is close to the speed of light.
Not until the 1960s, when the first neutron...
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Schwarzschild Radius and Event Horizon01:21

Schwarzschild Radius and Event Horizon

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No object with a finite mass can travel faster than the speed of light in a vacuum. This fact has an interesting consequence in the domain of extremely high gravitational fields.
The minimum speed required to launch a projectile from the surface of an object to which it is gravitationally bound so that it eventually escapes the object’s gravitational field is called the escape velocity. The escape velocity is independent of the mass of the object. Merging the idea of escape...
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Space-Time Curvature and the General Theory of Relativity01:17

Space-Time Curvature and the General Theory of Relativity

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In 1905, Albert Einstein published his special theory of relativity. According to this theory, no matter in the universe can attain a speed greater than the speed of light in a vacuum, which thus serves as the speed limit of the universe.
This has been verified in many experiments. However, space and time are no longer absolute. Two observers moving relative to one another do not agree on the length of objects or the passage of time. The mechanics of objects based on Newton's laws of...
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Gravitation Between Spherically Symmetric Masses01:14

Gravitation Between Spherically Symmetric Masses

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The gravitational potential energy between two spherically symmetric bodies can be calculated from the masses and the distance between the bodies, assuming that the center of mass is concentrated at the respective centers of the bodies.
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The Principle of Superposition and the Gravitational Field01:17

The Principle of Superposition and the Gravitational Field

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The principle of superposition applies to gravitational forces of objects that are sufficiently far apart. It states that the net gravitational force on a point object is the vector sum of the gravitational forces on it due to various objects. The principle helps calculate the force by listing the individual forces and then vectorially summing them up. However, it should be noted that the principle of superposition is not always apparent. In the presence of a second force, the first force could...
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Radiation: Applications01:17

Radiation: Applications

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The average temperature of Earth is the subject of much current discussion. Earth is in radiative contact with both the Sun and dark space; it receives almost all its energy from the radiation of the Sun and reflects some of it into outer space. Dark space is very cold, about 3 K, so Earth radiates energy into it. For instance, heat transfer occurs from soil and grasses, the rate of which can be so rapid that frost can occur on clear summer evenings, even in warm latitudes.
The average...
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Updated: Aug 6, 2025

Demonstration of a Hyperlens-integrated Microscope and Super-resolution Imaging
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Los agujeros negros de cerca

Ramesh Narayan1,2, Eliot Quataert3

  • 1Center for Astrophysics, Harvard & Smithsonian, Cambridge, MA, USA. rnarayan@cfa.harvard.edu.

Nature
|March 23, 2023
PubMed
Resumen

Las nuevas observaciones astrofísicas de agujeros negros confirman la acreción de gas a alta temperatura y la curvatura de la luz cerca de los horizontes de eventos, validando la relatividad general de Einstein. Las futuras investigaciones pondrán a prueba la gravedad y explorarán el papel de los agujeros negros en la alimentación de los fenómenos astronómicos.

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Área de la Ciencia:

  • La astrofísica
  • Relatividad general
  • Física de los agujeros negros

Sus antecedentes:

  • Las imágenes directas de los horizontes de eventos de los agujeros negros marcan una nueva era en astrofísica.
  • Las observaciones confirman las teorías de acreción de gas sobrecalentado en los agujeros negros.

Objetivo del estudio:

  • Para confirmar ideas de larga data sobre la física de los agujeros negros.
  • Para probar la teoría de la relatividad general de Einstein usando datos de observación.
  • Para obtener información sobre el papel de los agujeros negros en los fenómenos astronómicos.

Principales métodos:

  • Utilizando técnicas de observación avanzadas para obtener imágenes del entorno cerca de los horizontes de eventos de los agujeros negros.
  • Analizando el comportamiento del gas sobrecalentado que se acumula en los agujeros negros.
  • Medir las deflexiones de los rayos de luz en campos gravitacionales fuertes.

Principales resultados:

  • Confirmado que el gas cerca de los agujeros negros alcanza temperaturas cientos de veces mayores que el núcleo del Sol.
  • Observaron grandes deflexiones de luz cerca de los agujeros negros, creando una sombra oscura consistente con las predicciones de la relatividad general.
  • Proporcionó evidencia visual directa de los fenómenos predichos por la teoría de Einstein.

Conclusiones:

  • Observaciones recientes han validado las predicciones clave de la relatividad general con respecto a los agujeros negros.
  • El campo está preparado para avances significativos en la comprensión de la gravedad y la astrofísica de los agujeros negros.
  • Los agujeros negros están confirmados como motores centrales que impulsan diversos eventos astronómicos.