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THE TRANS-NEPTUNIAN OBJECTS

机译:Trans-Neptunian对象

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Trans-neptunian objects (TNOs) are believed to be pristine remnants of planets formation, providing constrains on the early stages of the solar system evolution. The knowledge of this population composition and dynamics provides constrains on the formation processes of the early solar nebula, as well as formation processes of other planetary systems around young stars. Nonetheless, because of their great heliocentric distance, and their resulting faintness, all studies are very challenging. More than a thousand objects have been detected though, and or-bits have been determined for most of them. The resulting dynamical structure is complex and not fully understood: we divide the trans-neptunian region into the Kuiper Belt –itself divided into resonant objects and the classical belt–, the scattered disk and detached objects. TNOs physical properties remain poorly known, but we can get constrains on their size, shape, mass, albedo, density or color using dif-ferent observational methods. Composition is the most difficult prop-erty to access though. Only few spectra are available, and they show nevertheless features due to the presence of diverses ices. All those properties result from the competition of several processes that will be discussed. The more we learn about TNOs, the more the picture seems com-plicated. Ultimately, extremely large telescopes, new satellites such as Herschel and space missions like New Horizons will be of great help, since a better understanding of their properties and evolution is critical to improve solar and extra-solar systems formation models.
机译:逆线对象(TNOS)被认为是行星形成的原始残余,在太阳系进化的早期阶段提供约束。这种人口组成和动力学的知识提供了早期太阳能星云的形成过程的约束,以及年轻恒星周围其他行星系统的形成过程。尽管如此,由于他们的高管距离,并导致晕眩,所有研究都非常具有挑战性。不过,已检测到多于千项,并且为大多数人确定了或比特。由此产生的动态结构复杂,不完全理解:我们将跨境区域分成Kuiper皮带 - 亲本分为谐振物体和经典带 - 散射盘和分离物体。 TNOS物理性质仍然已知难以清晰,但我们可以使用不同的观测方法在其尺寸,形状,质量,反玻璃,密度或颜色上得到限制。构图是最困难的支柱。只有很少的光谱都有,而且由于存在多样化的冰而缺乏特征。所有这些属性都是由讨论的若干进程的竞争来源的。我们越了解TNO,图片似乎越多。最终,极大的望远镜,诸如赫歇尔和太空任务等新卫星,如新的视野将具有很大的帮助,因为更好地了解他们的性质和演变对于改善太阳能和超太阳系形成模型至关重要。

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