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関連する概念動画

Free Jet01:14

Free Jet

Free jets describe the flow of liquid exiting a reservoir through an opening into the atmosphere without resistance. The velocity (v) of the liquid jet is derived using Bernoulli's principle and expressed as:
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...
Rocket Propulsion in Gravitational Field - II01:03

Rocket Propulsion in Gravitational Field - II

A rocket's velocity in the presence of a gravitational field is decreased by the amount of force exerted by Earth's gravitational field, which opposes the motion of the rocket. If we consider thrust, that is, the force exerted on a rocket by the exhaust gases, then a rocket's thrust is greater in outer space than in the atmosphere or on a launch pad. In fact, gases are easier to expel in a vacuum.
A rocket's acceleration depends on three major factors, consistent with the equation for the...
Rocket Propulsion in Gravitational Field - I01:20

Rocket Propulsion in Gravitational Field - I

Rockets range in size from small fireworks that ordinary people use to the enormous Saturn V that once propelled massive payloads toward the Moon. The propulsion of all rockets, jet engines, deflating balloons, and even squids and octopuses are explained by the same physical principle: Newton's third law of motion. The matter is forcefully ejected from a system, producing an equal and opposite reaction on what remains.
The motion of a rocket in space changes its velocity (and hence its...
Momentum And Radiation Pressure01:20

Momentum And Radiation Pressure

An object absorbing an electromagnetic wave would experience a force in the direction of propagation of the wave. This force occurs because electromagnetic waves contain and transport momentum. The force accounts for the wave's radiation pressure exerted on the object. Maxwell's prediction was confirmed in 1903 by Nichols and Hull by precisely measuring radiation pressures with a torsion balance. The measuring instrument had mirrors suspended from a fiber kept inside a glass container. Nichols...
Gravitation Between Spherically Symmetric Masses01:14

Gravitation Between Spherically Symmetric Masses

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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並び替え
Same author

Jets in extragalactic radio sources.

Science (New York, N.Y.)·1984
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関連する実験動画

Updated: Jul 12, 2026

Cryogenic Liquid Jets for High Repetition Rate Discovery Science
08:34

Cryogenic Liquid Jets for High Repetition Rate Discovery Science

Published on: May 9, 2020

天体物理ジェット.

D S DE Young

    Science (New York, N.Y.)
    |April 19, 1991
    PubMed
    まとめ

    天体物理学的なジェット,星や銀河からの広大な宇宙の流出は,巨大なサイズ変動を示しています. その性質を研究することで,銀河やクワザーの強力な中央エンジンの重要な洞察が得られます.

    科学分野:

    • 天体物理学 天体物理学
    • コスミック・ジェット 宇宙ジェット
    • 銀河の進化 銀河の進化 銀河の進化

    背景:

    • 天体物理ジェットは,恒星や銀河から発生した巨大な線形構造です.
    • 銀河のジェットは,銀河の100倍の大きさで,宇宙で最も大きな構造物の一つです.
    • 恒星のジェットは,イオン化されたガスで,秒速数百キロメートルで移動しています.

    研究 の 目的:

    • 銀河外ジェットの性質を定義する.
    • 銀河外ジェットの組成と速度を理解するために.
    • 銀河やクワザールにおける中央電源のモデルを制約する.

    主な方法:

    • 周囲の環境との相互作用によるジェット性質の分析.
    • 銀河外ジェット組成の特徴付け (相対性粒子,磁場,プラズマ).
    • 初期流出速度とエネルギーフルースの推定.

    主要な成果:

    • 銀河外ジェットには相対論的粒子,磁場,プラズマが含まれています.
    • 流出速度は相対論的であり,平均で毎秒数千キロメートル程度である.
    • エネルギーフロースは,1秒あたり10~46 ergsを超えることができます.

    さらに関連する動画

    Three-dimensional Particle Tracking Velocimetry for Turbulence Applications: Case of a Jet Flow
    13:02

    Three-dimensional Particle Tracking Velocimetry for Turbulence Applications: Case of a Jet Flow

    Published on: February 27, 2016

    Treating Surfaces with a Cold Atmospheric Pressure Plasma using the COST-Jet
    06:36

    Treating Surfaces with a Cold Atmospheric Pressure Plasma using the COST-Jet

    Published on: November 2, 2020

    関連する実験動画

    Last Updated: Jul 12, 2026

    Cryogenic Liquid Jets for High Repetition Rate Discovery Science
    08:34

    Cryogenic Liquid Jets for High Repetition Rate Discovery Science

    Published on: May 9, 2020

    Three-dimensional Particle Tracking Velocimetry for Turbulence Applications: Case of a Jet Flow
    13:02

    Three-dimensional Particle Tracking Velocimetry for Turbulence Applications: Case of a Jet Flow

    Published on: February 27, 2016

    Treating Surfaces with a Cold Atmospheric Pressure Plasma using the COST-Jet
    06:36

    Treating Surfaces with a Cold Atmospheric Pressure Plasma using the COST-Jet

    Published on: November 2, 2020

    結論:

    • 環境媒体の相互作用から派生するジェット性質が鍵となる.
    • これらの性質は,銀河系とクワザールのエネルギー源のモデルに不可欠な制約を提供します.
    • 天体物理ジェットの理解は,極端な宇宙現象の理解に不可欠です.