コメントへの返信 "相互作用しない低質量ブラックホール-巨大星双星系"
Todd A Thompson1,2, Christopher S Kochanek3,2, Krzysztof Z Stanek3,2
1Department of Astronomy, The Ohio State University, Columbus, OH 43210, USA. thompson.1847@osu.edu.
まとめ
赤い巨星の伴侶は ブラックホールで 二重星系ではありません この発見は 恒星の進化と 二重星系における コンパクトな物体の形成の理解に影響を与えます
科学分野:
- 天体物理学
- 星の天文学
- コンパクトオブジェクト
背景:
- 2MASS J05215658+4359220系には,見えない伴星と赤い巨星があります.
- 以前の解釈では 伴星が二重星系である可能性が示唆されていました
研究 の 目的:
- 2MASS J05215658+4359220 システムの見えない伴侶の性質を再評価する
- 伴い物体の質量と組成を 決定する
主な方法:
- 2MASS J05215658+4359220システムの既存の観測データの分析
- 恒星の質量とシステムの構成をモデル化する.
主要な成果:
- 約1. 7の太陽の質量の赤い巨人を強く支持しています
- この質量は 見えない同伴者が 太陽の質量5.3倍の質量を持つブラックホールであることを示唆しています
結論:
- 2MASS J05215658+4359220の赤い巨人の仲間はおそらくブラックホールです
- この結論は 三重星系に関する以前の仮説に 異議を唱えるものです
関連する概念動画
Reduced Mass Coordinates: Isolated Two-body Problem
2.2K
In classical mechanics, the two-body problem is one of the fundamental problems describing the motion of two interacting bodies under gravity or any other central force. When considering the motion of two bodies, one of the most important concepts is the reduced mass coordinates, a quantity that allows the two-body problem to be solved like a single-body problem. In these circumstances, it is assumed that a single body with reduced mass revolves around another body fixed in a position with an...
2.2K
Detection of Black Holes
2.5K
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...
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...
2.5K
Gravitation Between Spherically Symmetric Masses
1.2K
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.
1.2K
Schwarzschild Radius and Event Horizon
2.5K
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...
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...
2.5K
Second Order systems II
318
In an underdamped second-order system, where the damping ratio ζ is between 0 and 1, a unit-step input results in a transfer function that, when transformed using the inverse Laplace method, reveals the output response. The output exhibits a damped sinusoidal oscillation, and the difference between the input and output is termed the error signal. This error signal also demonstrates damped oscillatory behavior. Eventually, as the system reaches a steady state, the error diminishes to zero.
318
Kepler's Third Law of Planetary Motion
4.1K
In the early 17th century, German astronomer and mathematician Johannes Kepler postulated three laws for the motion of planets in the solar system. In 1909, he formulated his first two laws based on the observations of his forebears, Nikolaus Copernicus and Tycho Brahe. However, in 1918, he published his third law of planetary motion, which gives a precise mathematical relationship between a planet's average distance from the Sun and the amount of time it takes to revolve around the Sun. It...
4.1K


