Condensed Matter and Materials Division, Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, California 94550, USA.
Nat Commun. 2011 Feb 22;2:203. doi: 10.1038/ncomms1198.
The unusual magnetic fields of the planets Uranus and Neptune represent important observables for constraining and developing deep interior models. Models suggests that the unusual non-dipolar and non-axial magnetic fields of these planets originate from a thin convective and conducting shell of material around a stably stratified fluid core. Here, we present an experimental and computational study of the physical properties of a fluid representative of the interior of Uranus and Neptune. Our electrical conductivity results confirm that the core cannot be well mixed if it is to generate non-axisymmetric magnetic fields. The molecular dynamics simulations highlight the importance of chemistry on the properties of this complex mixture, including the formation of large clusters of carbon and nitrogen and a possible mechanism for a compositional gradient, which may lead to a stably stratified core.
天王星和海王星的异常磁场是约束和发展内部深层模型的重要观测对象。模型表明,这些行星异常的非偶极和非轴向磁场源自于一个稳定分层流核周围的薄对流和传导物质壳。在这里,我们对天王星和海王星内部的流体代表进行了实验和计算研究。我们的电导率结果证实,如果核心要产生非轴对称磁场,就不能很好地混合。分子动力学模拟强调了化学对这种复杂混合物性质的重要性,包括碳和氮的大团簇的形成以及可能的成分梯度机制,这可能导致稳定分层的核心。