论文标题
库珀带物体(486958)arrokoth的表面动力学,平衡点和单个裂片
Surface Dynamics, Equilibrium Points and Individual Lobes of the Kuiper Belt Object (486958) Arrokoth
论文作者
论文摘要
New Horizons空间探针引导了最原始和遥远的物体之一的第一个近距离飞行,该物体是太阳系的形成,即接触二进制Kuiper Belt对象(486958)ARROKOTH,该物体由两个祖细胞组成,由两个祖细胞组成,散发出象征性的Ultima和Thule。在当前的工作中,我们详细研究了Arrokoth的表面,以识别平衡点的位置,并探索每个叶的单个动态特征。我们假设Arrokoth的不规则形状是均匀的Polyhedra接触二元。我们通过计算其不规则的二进制地理电位来研究其数量,例如几何高度,几何高度,抹平性,椭圆度和零功率曲线来探索其动态特征。也通过零速度曲线探索了Arrokoth Hill的稳定性。由于其高度不规则的形状,ARROKOTH的外部平衡点没有径向对称性。我们甚至确定了有关其形状和自旋速率的平衡点:即四个不稳定的外部平衡点和三个内部平衡点,其中两个点是线性稳定的,具有不稳定的中心点,与其质心略有偏移。此外,大小的小裂片每个都有五个平衡点,与ARROKOTH中的拓扑结构不同。我们的结果还表明,由于旋转期较高,Arrokoth裂片的赤道区域是一个不稳定的区域,而其极性位置是表面颗粒的稳定静止位点。最后,零功率曲线指示无质量颗粒会体验到增强和退缩的轨道能量周围的位置。
The New Horizons space probe led the first close flyby of one of the most primordial and distant objects left over from the formation of the solar system, the contact binary Kuiper Belt object (486958) Arrokoth, which is composed of two progenitors, the lobes nicknamed Ultima and Thule. In the current work, we investigated Arrokoth's surface in detail to identify the location of equilibrium points and also explore each lobe's individual dynamic features. We assume Arrokoth's irregular shape as a homogeneous polyhedra contact binary. We numerically explore its dynamic characteristics by computing its irregular binary geopotential to study its quantities, such as geometric height, oblateness, ellipticity, and zero-power curves. The stability of Arrokoth Hill was also explored through zero-velocity curves. Arrokoth's external equilibrium points have no radial symmetry due to its highly irregular shape. We identified even equilibrium points concerning its shape and spin rate: i.e., four unstable external equilibrium points and three inner equilibrium points, where two points are linearly stable, with an unstable central point that has a slight offset from its centroid. Moreover, the large and small lobes each have five equilibrium points with different topological structures from those found in Arrokoth. Our results also indicate that the equatorial region of Arrokoth's lobes is an unstable area due to the high rotation period, while its polar locations are stable resting sites for surface particles. Finally, the zero-power curves indicate the locations around Arrokoth where massless particles experience enhancing and receding orbital energy.