原行星盘中的尘埃陷的模型和观测预测
1Mullard Space Science Laboratory, University College London, Holmbury St Mary, Dorking, RH5 6NT Surrey UK.
概括
原行星盘模拟表明,低尘埃碎片速度和低粘度对于在光滑盘中长时间保持尘埃至关重要. 压力陷显著提高尘埃保持和结构形成,即使在更高的碎片速度.
科学领域:
- 天文学和天体物理学
- 行星科学 行星科学
背景情况:
- 原行星盘对于行星的形成至关重要.
- 了解这些磁盘中的尘埃演变是理解行星形成过程的关键.
研究的目的:
- 研究尘埃演变参数 (磁盘粘度,碎片速度,临界气体磁盘半径) 对尘埃保留和捕获的影响.
- 分析压力凸起对尘埃动态和可观测特征的影响.
主要方法:
- 利用结合辐射转移模拟的计算模型.
- 模拟的原行星盘,有或没有压力凸起.
- 产生了 (亚) 毫米波长尘埃连续辐射的合成图像.
主要成果:
- 在光滑磁盘中,在Myr时间尺度上显著的尘埃保留需要低碎片速度 (1 m/s) 和低粘度 (α=10−3).
- 压力陷显著增加尘埃质量 (数量级),并产生可观测的结构,特别是在更高的碎片速度 (5-10 m/s).
- 粘度显著塑造可观测的特征:低α产生利的内壁,而高α产生围绕尘埃环的肩膀.
结论:
- 尘埃演变参数表现出强烈的退化,使得观测解变得具有挑战性.
- 从观测中推断出的尘埃盘大小可能不会直接反映模型大小或压力碰撞位置.
- 多波长,高分辨率的观测对于揭示原行星盘中行星和行星胚胎形成的复杂过程至关重要.
相关概念视频
Kepler's First Law of Planetary Motion
5.3K
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,...
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,...
5.3K
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
Kepler's Third Law of Planetary Motion
4.2K
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...
4.2K
Kepler's Second Law of Planetary Motion
5.1K
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...
While in an elliptical orbit, the total energy of the planet is conserved. Therefore, the planet slows down when it is at apogee and...
5.1K
First Law: Particles in Two-dimensional Equilibrium
13.9K
Recall that a particle in equilibrium is one for which the external forces are balanced. Static equilibrium involves objects at rest, and dynamic equilibrium involves objects in motion without acceleration; but it is important to remember that these conditions are relative. For instance, an object may be at rest when viewed from one frame of reference, but that same object would appear to be in motion when viewed by someone moving at a constant velocity.
Newton's first law tells us about...
Newton's first law tells us about...
13.9K
Reduced Mass Coordinates: Isolated Two-body Problem
2.3K
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...
2.3K


