Constrained evolution of Hamiltonian phase space distributions in the presence of natural: non-conservative forces

Oliver Boodram, Daniel Scheeres
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Abstract

Confidence regions for spacecraft state can be constructed in phase space which encapsulate some region where there is a likelihood for the state to reside. These regions can be treated as phase space distributions or structures. Structures, such as surfaces or volumes, are constrained to preserve specific properties as they evolve in phase space under Hamiltonian dynamics. Thus, spacecraft uncertainty is then constrained by Hamiltonian flow which can provide insight into state determination. This work examines the modified constraints in the presence of non-conservative forces which relate to both probabilistic and geometric properties of the evolving uncertainty structure. The modified constraints are then derived for a Two-Body and drag environment and are shown to be valid after comparison with alternative methods. Applying the modified constraints, the constrained evolution of the confidence region is then tied to a simple physical explanation for the changing knowledge in our spacecraft state, in the atmospheric drag environment and Poynting–Robertson drag environment.

Abstract Image

存在自然:非守恒力时哈密顿相空间分布的受限演化
可以在相空间中构建航天器状态的置信区域,这些置信区域囊括了状态有可能存在的某些区域。这些区域可被视为相空间分布或结构。结构(如表面或体积)在哈密尔顿动力学作用下在相空间中演化时,受限于保持特定属性。因此,航天器的不确定性就受到哈密顿流的约束,这可以为状态确定提供洞察力。这项工作研究了在存在非守恒力的情况下的修正约束,这些非守恒力与不断演化的不确定性结构的概率和几何属性有关。修改后的约束条件适用于双体和阻力环境,并在与其他方法比较后证明是有效的。应用修改后的约束条件,置信区域的约束演化与航天器状态、大气阻力环境和波因廷-罗伯逊阻力环境中不断变化的知识的简单物理解释相联系。
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