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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,...
What is Evolutionary History?02:35

What is Evolutionary History?

Scientists record evolutionary history by analyzing fossil, morphological, and genetic data. The fossil record documents the history of life on Earth and provides evidence for evolution. However, both fossil and living organisms offer evidence that outlines Earth’s evolutionary history.Phylogenetic trees illustrate the evolutionary relationships among these organisms. Scientists infer organisms’ common ancestry by evaluating shared morphological and genetic characteristics. Together, the fossil...
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...
Conservation of Angular Momentum: Application01:18

Conservation of Angular Momentum: Application

A system's total angular momentum remains constant if the net external torque acting on the system is zero. Examples of such systems include a freely spinning bicycle tire that slows over time due to torque arising from friction, or the slowing of Earth's rotation over millions of years due to frictional forces exerted on tidal deformations. However in the absence of a net external torque, the angular momentum remains conserved. The conservation of angular momentum principle requires a change...
Entropy Changes Accompanying Specific Processes01:21

Entropy Changes Accompanying Specific Processes

Entropy, a measure of disorder in a system, changes during phase transitions like freezing or boiling. At the transition temperature Ttrs, where two phases are in equilibrium, the phase transition is a reversible process. The entropy change can be calculated from a substance's enthalpy of transition using the equation ΔStrs = ΔtrsH /Ttrs.When a perfect gas expands isothermally from one volume to another, entropy increases logarithmically with volume. Conversely, isothermal compression results...
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...

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関連する実験動画

Updated: Jul 12, 2026

Laboratory Drop Towers for the Experimental Simulation of Dust-aggregate Collisions in the Early Solar System
09:44

Laboratory Drop Towers for the Experimental Simulation of Dust-aggregate Collisions in the Early Solar System

Published on: June 5, 2014

太陽系の混沌とした進化.

G J Sussman, J Wisdom

    Science (New York, N.Y.)
    |July 3, 1992
    PubMed
    まとめ

    太陽系 (太陽系) とは

    科学分野:

    • 惑星科学は惑星科学である.
    • 天体力学は天体力学である.
    • 天体力学 天体力学

    背景:

    • 惑星系の長期的なダイナミックな進化を理解することは,それらの安定性を評価するために極めて重要です.
    • 以前の研究では,太陽系における混沌とした行動の可能性が示唆されていたが,包括的な長期的数学的検証が欠けていた.

    研究 の 目的:

    • 惑星系全体の1億年にわたる進化を数値的に統合する.
    • 太陽系の進化の混沌とした性質を確認し,その時間尺度を定量化するために.
    • 木星のサブシステムと冥王星の動的振る舞いを調査する.

    主な方法:

    • 太陽系のすべての惑星の重力相互作用の数値集積.
    • 約1億年をカバーする長期シミュレーションです.
    • ダイナミック・スタビリティとディバージェンスの時間スケールの分析.

    主要な成果:

    • 太陽系全体の長期的な進化は混沌としていることが確認されています.
    • エクスポネンショナル・ディバージェンスの計算された時間スケールは,およそ400万年です.
    • 木星の惑星サブシステムは混沌としたダイナミクスを示し,特定のモデルバリエーションの下で準周期的運動の可能性があります.

    さらに関連する動画

    Simulation of the Planetary Interior Differentiation Processes in the Laboratory
    06:04

    Simulation of the Planetary Interior Differentiation Processes in the Laboratory

    Published on: November 15, 2013

    Scattering And Absorption of Light in Planetary Regoliths
    11:34

    Scattering And Absorption of Light in Planetary Regoliths

    Published on: July 1, 2019

    関連する実験動画

    Last Updated: Jul 12, 2026

    Laboratory Drop Towers for the Experimental Simulation of Dust-aggregate Collisions in the Early Solar System
    09:44

    Laboratory Drop Towers for the Experimental Simulation of Dust-aggregate Collisions in the Early Solar System

    Published on: June 5, 2014

    Simulation of the Planetary Interior Differentiation Processes in the Laboratory
    06:04

    Simulation of the Planetary Interior Differentiation Processes in the Laboratory

    Published on: November 15, 2013

    Scattering And Absorption of Light in Planetary Regoliths
    11:34

    Scattering And Absorption of Light in Planetary Regoliths

    Published on: July 1, 2019

  • 冥王星の軌道運動は,頑丈で独立して混沌としています.
  • 結論:

    • 太陽系の長期的な進化は本質的に混沌とし,惑星の位置が長期にわたって予測できないことを強調しています.
    • 混沌とした性質は,木星のサブシステムと冥王星にまで広がり,複雑な重力相互作用を強調しています.
    • これらの発見は,惑星系の安定性と太陽系の長期的運命を理解するための意味を持つ.