Jove
Visualize
联系我们
JoVE
x logofacebook logolinkedin logoyoutube logo
关于 JoVE
概览领导团队博客JoVE 帮助中心
作者
出版流程编辑委员会范围与政策同行评审常见问题投稿
图书馆员
用户评价订阅访问资源图书馆顾问委员会常见问题
研究
JoVE JournalMethods CollectionsJoVE Encyclopedia of Experiments存档
教育
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab Manual教师资源中心教师网站
使用条款与条件
隐私政策
政策

相关概念视频

Acceleration due to Gravity on Other Planets01:24

Acceleration due to Gravity on Other Planets

The gravitational acceleration of an object near the Earth's surface is called the acceleration due to gravity. It can be measured by conducting simple experiments on Earth. However, such an experiment is impossible to conduct on the surface of other planets.
Astronomical observations are thus used to measure the acceleration due to gravity on other planets. This can be determined by observing the effect of a planet's gravity on objects close to it. The crucial factor that helps in this...
Circular Orbits and Critical Velocity for Satellites01:16

Circular Orbits and Critical Velocity for Satellites

The Moon orbits around the Earth. In turn, the Earth (and other planets) orbit the Sun. The space directly above our atmosphere is filled with artificial satellites in orbit. One can examine the circular orbit, the simplest kind of orbit, to understand the relationship between the speed and the period of planets and satellites with respect to their positions and the bodies that they orbit.
Nicolaus Copernicus (1473-1543) first suggested that the Earth and all other planets orbit the Sun in...
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...

您也可能阅读

相关文章

通过共同作者、期刊和引用图与本文相关的文章。

排序
Same author

Statistical Combination of ATLAS Run 2 Searches for Charginos and Neutralinos at the LHC.

Physical review letters·2024
Same author

Combination of Measurements of the Top Quark Mass from Data Collected by the ATLAS and CMS Experiments at sqrt[s]=7 and 8 TeV.

Physical review letters·2024
Same author

Combination of Searches for Resonant Higgs Boson Pair Production Using pp Collisions at sqrt[s]=13  TeV with the ATLAS Detector.

Physical review letters·2024
Same author

Search for Nearly Mass-Degenerate Higgsinos Using Low-Momentum Mildly Displaced Tracks in pp Collisions at sqrt[s]=13  TeV with the ATLAS Detector.

Physical review letters·2024
Same author

Azimuthal Angle Correlations of Muons Produced via Heavy-Flavor Decays in 5.02 TeV Pb+Pb and pp Collisions with the ATLAS Detector.

Physical review letters·2024
Same author

Study of High-Transverse-Momentum Higgs Boson Production in Association with a Vector Boson in the qqbb Final State with the ATLAS Detector.

Physical review letters·2024

相关实验视频

Updated: Jul 21, 2026

Scattering And Absorption of Light in Planetary Regoliths
11:34

Scattering And Absorption of Light in Planetary Regoliths

Published on: July 1, 2019

在太阳系外巨行星周围可居住的卫星.

D M Williams1, J F Kasting, R A Wade

  • 1Department of Astronomy and Astrophysics, The Pennsylvania State University, University Park 16802, USA. dwilliams@astro.psu.edu

Nature
|January 16, 1997
PubMed
概括

围绕气体巨星轨道的岩石卫星可以支持生命,如果在恒星的可居住区内. 这些外卫星需要足够的质量和磁场来维持支持生命的大气.

科学领域:

  • 外行星科学是外行星的科学.
  • 天体生物学 天体生物学
  • 行星地质学 行星地质学

背景情况:

  • 已发现许多大质量行星物体,包括气态巨星和棕色矮星,围绕主序恒星运行.
  • 这些物体的质量至少是木星的一半,由于缺乏固体或液体表面,它们通常被认为不适合生命.

研究的目的:

  • 调查围绕大质量系外行星或棕色矮星运行的岩石卫星的潜在可居住性.
  • 确定这些外卫星可以支持生命的条件,特别是液态水的存在.

主要方法:

  • 对系外行星系统动态和轨道力学进行理论分析.
  • 模拟外卫星大气保留和磁场要求的模型.

主要成果:

  • 在恒星可居住区内绕着巨大的伴星运行的岩石卫星可能存在液态水.
  • 外卫星16 Cygni B b和47 Ursae Majoris b被确定为满足轨道标准的潜在候选者.
  • 外星卫星的质量必须超过0.12地球质量才能保持相当大的大气层,并拥有强大的磁场来保护它.

结论:

  • 围绕气体巨星或棕矮星运行可居住的外卫星的可能性需要进一步调查.
关键词:
美国宇航局的学科是外生态学.非NASA中心的中心.

更多相关视频

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

Simulating Imaging of Large Scale Radio Arrays on the Lunar Surface
06:14

Simulating Imaging of Large Scale Radio Arrays on the Lunar Surface

Published on: July 30, 2020

相关实验视频

Last Updated: Jul 21, 2026

Scattering And Absorption of Light in Planetary Regoliths
11:34

Scattering And Absorption of Light in Planetary Regoliths

Published on: July 1, 2019

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

Simulating Imaging of Large Scale Radio Arrays on the Lunar Surface
06:14

Simulating Imaging of Large Scale Radio Arrays on the Lunar Surface

Published on: July 30, 2020

  • 未来的研究应该专注于检测和描述具有可居住性必要属性的外卫星.
  • 发现可居住的外卫星将大大扩大对外星生命的搜索.