Application of a New Formula for Angular Velocity of Rotation to the Planetoid Haumea

IF 0.7 4区 物理与天体物理 Q3 ASTRONOMY & ASTROPHYSICS
B. P. Kondratyev
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Abstract

The study has been aimed to test a new formula for the \({{\Omega }}\) angular velocity of rotation of inhomogeneous equilibrium figures using the model of a unique rapidly rotating trans-Neptunian dwarf planet Haumea. The three-axis two-component model of Haumea consists of an ellipsoidal rocky core and a thick confocal ice shell. The parameters of this model have been determined from a system of eight algebraic equations that take into account the complete kinematic-photometric information about the planetoid. Using the methods of potential theory, the components of the internal and external gravitational energy of the model on which this \({{\Omega }}\) depends have been found. For this purpose, a refined expression for the gravitational energy of a homogeneous confocal shell and a formula for the mutual energy of the core and the shell have been used. It has been found that in order to be consistent with the observed rotation period of Haumea of \({{\tau }_{{{\text{rot}}}}} = {{3}^{{\text{h}}}}{\text{.915}}{\text{,}}\) this model must be considered as a polytrope with the index of \(n \approx 0.{\text{984}}\). This result has confirmed the relevance of the developed method for studying inhomogeneous equilibrium figures.

Abstract Image

将新的旋转角速度公式应用于行星妊神星
这项研究的目的是利用一个独特的快速旋转的海王星外矮行星妊神星的模型来测试一个新的公式,该公式可以计算非均匀平衡图形的旋转角速度\({{\Omega }}\)。妊神星的三轴双分量模型由椭球状岩石核和厚共聚焦冰壳组成。该模型的参数是由八个代数方程组成的系统确定的,这些方程考虑了行星的完整运动学-光度信息。利用势理论的方法,已经发现了这个\({{\Omega }}\)所依赖的模型的内部和外部引力能的组成部分。为此,采用了均匀共焦壳的引力能的精炼表达式和核壳互能的公式。研究发现,为了与观测到的\({{\tau }_{{{\text{rot}}}}} = {{3}^{{\text{h}}}}{\text{.915}}{\text{,}}\)妊神星的自转周期一致,该模型必须考虑为一个指数为\(n \approx 0.{\text{984}}\)的多相体。这一结果证实了所建立的研究非均匀平衡图的方法的适用性。
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来源期刊
Astronomy Reports
Astronomy Reports 地学天文-天文与天体物理
CiteScore
1.40
自引率
20.00%
发文量
57
审稿时长
6-12 weeks
期刊介绍: Astronomy Reports is an international peer reviewed journal that publishes original papers on astronomical topics, including theoretical and observational astrophysics, physics of the Sun, planetary astrophysics, radio astronomy, stellar astronomy, celestial mechanics, and astronomy methods and instrumentation.
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