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Slices of theoretical astrophysics: Solar system dynamics and relativistic explosions.

机译:理论天体物理学的一部分:太阳系动力学和相对论爆炸。

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This thesis presents studies in two distinct areas of theoretical astrophysics: dynamics of planetary systems and relativistic fluid flows from shocks emerging from stellar envelopes. The first pertains to the early solar system, planet formation, and extrasolar planets; the second is related to extreme explosions like gamma-ray bursts and supernovae.;We present two investigations of the dynamics and population evolution of solar system bodies. First, we explore the dynamics of mean-motion resonances for a test particle in a highly eccentric long-period orbit in the restricted circular planar three-body problem---a scenario relevant to the scattered Kuiper belt and the formation of the Oort cloud. We find infinitely many analogues to the Lagrange points; an explanation for the presence of asymmetric librations in particular mean-motion resonances; and a criterion for the onset of chaos at large semimajor axes.;Second, we study the size distribution of Kuiper belt objects (KBOs), which is observed to be a broken power law. We apply a simple mass conservation argument to the KBO collisional cascade to get the power-law slope for KBOs below the break in the distribution; our result agrees well with observations if KBOs are held together by self-gravity rather than material strength. We then explain the location and time evolution of the break.;We also present investigations of the flow that results when a relativistic shock propagates through and breaks out of a stellar envelope with a polytropic density profile. This work informs predictions of the speed of and energy carried by the relativistic ejecta in supernovae and perhaps in gamma-ray bursts. We find the asymptotic solution for the flow as the shock reaches the star's edge and find a new self-similar solution for the flow of hot fluid after breakout. Since the post-breakout flow acclerates by converting thermal energy into bulk kinetic energy, the fluid eventually cools to nonrelativistic temperatures. We derive a second new self-similar solution that includes the cooling portions of the flow. This second solution gives an exact relation between the terminal Lorentz factor of each fluid element and the Lorentz factor it acquired upon being shocked before breakout.
机译:本文介绍了理论天体物理学的两个不同领域的研究:行星系统的动力学和恒星包壳中产生的冲击所产生的相对论性流体流动。第一个与早期的太阳系,行星形成和太阳系外行星有关。第二个与极端爆炸有关,例如伽马射线爆发和超新星爆炸。我们对太阳系物体的动力学和人口演化进行了两项研究。首先,我们在受限圆平面三体问题中探索高偏心长周期轨道上测试粒子的平均运动共振动力学-与散布的柯伊伯带和奥尔特云形成有关的情况。我们找到了无限多个拉格朗日点的类似物。解释特别是平均运动共振中存在不对称的释放;其次,我们研究了柯伊伯带状天体(KBOs)的大小分布,这被认为是一个破坏的幂律。我们将简单的质量守恒定律应用于KBO碰撞级联,以使KBO的幂律斜率低于分布的折线。如果KBO是通过自重而不是材料强度结合在一起的,则我们的结果与观察结果非常吻合。然后,我们解释了断裂的位置和时间演化。我们还对相对论激波传播并突破具有多向性密度分布的恒星包壳所产生的流动进行了研究。这项工作可以预测相对论性射流在超新星以及伽马射线爆发中的速度和能量。当冲击到达恒星边缘时,我们找到了流动的渐近解,并为爆发后的热流体流动找到了一种新的自相似解。由于突破后的流动通过将热能转换为体动能而得以加速,因此流体最终冷却至非相对论温度。我们得出了第二个新的自相似解,其中包括流的冷却部分。第二种解决方案给出了每个流体元件的终端洛伦兹因子和在破裂前受到冲击后获得的洛伦兹因子之间的精确关系。

著录项

  • 作者

    Pan, Margaret.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Physics Astronomy and Astrophysics.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 95 p.
  • 总页数 95
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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