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関連する概念動画

Kepler's First Law of Planetary Motion01:10

Kepler's First Law of Planetary Motion

In the early 17th century, German astronomer and mathematician Johannes Kepler postulated three laws for the motion of planets in the solar system. He formulated his first two laws based on the observations of his forebears, Nikolaus Copernicus and Tycho Brahe.
Polish astronomer Nikolaus Copernicus put forth a theory that stated a heliocentric model for the solar system. According to this heliocentric theory, all the planets, including Earth, orbit the Sun in circular orbits.
On the other hand,...
Kepler's Second Law of Planetary Motion01:29

Kepler's Second Law of Planetary Motion

In the early 17th century, German astronomer and mathematician Johannes Kepler postulated three laws for the motion of planets in the solar system. His first law states that all planets orbit the Sun in an elliptical orbit, with the Sun at one of the ellipse's foci. Therefore, the distance of a planet from the Sun varies throughout its revolution around the Sun.
While in an elliptical orbit, the total energy of the planet is conserved. Therefore, the planet slows down when it is at apogee and...
Kepler's Third Law of Planetary Motion01:18

Kepler's Third Law of Planetary Motion

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...
Schwarzschild Radius and Event Horizon01:21

Schwarzschild Radius and Event Horizon

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 velocity with the...
Non-uniform Circular Motion01:22

Non-uniform Circular Motion

In uniform circular motion, the particle executing circular motion has a constant speed, and the circle is at a fixed radius. However, not all circular motion occurs at a constant speed. A particle can travel in a circle and speed up or slow down, showing an acceleration in the direction of motion. In that case, the motion is called non-uniform circular motion, and an additional acceleration is introduced, which is in the direction tangential to the circle. 
For example, such accelerations...
Electric Field of a Charged Disk01:23

Electric Field of a Charged Disk

The simplest case of a surface charge distribution is the uniformly charged disk. Calculating its electric field also helps us calculate the electric field of a large plane of charge.
The system's symmetry is in the cylindrical directions across the plane of the charge. As a result, the electric fields created by various surface charge elements nullify each other in the direction parallel to the surface. Thereby, the resulting electric field is perpendicular to the plane. Since the disk is...

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関連する実験動画

Updated: Jul 12, 2026

Scattering And Absorption of Light in Planetary Regoliths
11:34

Scattering And Absorption of Light in Planetary Regoliths

Published on: July 1, 2019

ベータ・ピクトリスの周りを回る円盤.

B A Smith, R J Terrile

    Science (New York, N.Y.)
    |December 21, 1984
    PubMed
    まとめ

    天文学者は,ベータ・ピクトリスの周りの大きな環状円盤を観測し,400AU以上の範囲に広がった. このディスクディスクは,

    科学分野:

    • 天文学と天体物理学について
    • 惑星科学は惑星科学である.

    背景:

    • 恒星周円盤は,光学観測を用いてベータ・ピクトリス星周辺で検出されました.
    • ディスクの初期検出は,赤外線天文衛星 (IRAS) を使用して行われました.
    • この円盤は,これまで測定されたものよりもはるかに遠くまで広がり,400以上の天文単位 (AU) に達しています.

    研究 の 目的:

    • ベータ・ピクトリスの周りの円盤を光学的に特徴づけるために.
    • ベータピクトリスディスクの物理的性質と範囲を理解するために.
    • 円盤の構造が惑星形成に及ぼす影響を調査する.

    主な方法:

    • ベータ・ピクトリスの周りの円盤の光学観測.
    • 質量密度を推論するために,放射距離とともに表面の明るさの変化を分析する.
    • 光学観測とIRASの以前の赤外線データとの比較.

    主要な成果:

    • ベータ・ピクトリスの円盤は,ほぼ端から観測され,コプラナー軌道にある固体粒子で構成されています.
    • 円盤の質量密度は半径のおよそ3乗で減少する.
    • 円盤の平らな構造は,惑星形成プロセスとの関連を示唆しています.

    さらに関連する動画

    Bringing the Visible Universe into Focus with Robo-AO
    10:35

    Bringing the Visible Universe into Focus with Robo-AO

    Published on: February 12, 2013

    Surface Mapping of Earth-like Exoplanets using Single Point Light Curves
    06:48

    Surface Mapping of Earth-like Exoplanets using Single Point Light Curves

    Published on: May 10, 2020

    関連する実験動画

    Last Updated: Jul 12, 2026

    Scattering And Absorption of Light in Planetary Regoliths
    11:34

    Scattering And Absorption of Light in Planetary Regoliths

    Published on: July 1, 2019

    Bringing the Visible Universe into Focus with Robo-AO
    10:35

    Bringing the Visible Universe into Focus with Robo-AO

    Published on: February 12, 2013

    Surface Mapping of Earth-like Exoplanets using Single Point Light Curves
    06:48

    Surface Mapping of Earth-like Exoplanets using Single Point Light Curves

    Published on: May 10, 2020

    結論:

    • ベータ・ピクトリスの周りの環状円盤は,進行中のまたは最近の惑星形成と関連している可能性が高い.
    • この惑星系は比較的若いと考えられ,惑星形成の仮説を支持している.
    • 観測された円盤構造は,惑星系発達の初期段階についての洞察を提供します.