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Atmospheric Rotational Effects on Mars Based on the NASA Ames General Circulation Model: Angular Momentum Approach

机译:基于NASA Ames一般环流模型的大气旋转对火星的影响:角动量法

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摘要

The objective of the investigation is to determine the motion of the rotational axis of Mars as a result of mass variations in the atmosphere and condensation and sublimation of CO2 ice on the polar caps. A planet experiences this type of motion if it has an atmosphere, which is changing its mass distribution with respect to the solid body of the planet and/or it is asymmetrically changing the amount of ice at the polar caps. The physical principle involved is the conservation of angular momentum, one can get a feeling for it by sitting on a well oiled swivel chair holding a rotating wheel on a horizontal direction and then changing the rotation axis of the wheel to a vertical direction. The person holding the wheel and the chair would begin to rotate in opposite direction to the rotation of the wheel. The motions of Mars atmosphere and the ice caps variations are obtained from a mathematical model developed at the NASA Ames Research Center. The model produces outputs for a time span of one Martian year, which is equivalent to 687 Earth days. The results indicate that Mars axis of rotation moves in a spiral with respect to a reference point on the surface of the planet. It can move as far away as 35.3 cm from the initial location as a result of both mass variations in the atmosphere and asymmetric ice variations at the polar caps. Furthermore the pole performs close to two revolutions around the reference point during a Martian year. This motion is a combination of two motions, one produced by the atmospheric mass variations and another due to the variations in the ice caps. The motion due to the atmospheric variations is a spiral performing about two and a half revolutions around the reference point during which the pole can move as far as 40.9 cm. The motion due to variations in the ice caps is a spiral performing almost three revolutions during which the pole can move as far as 32.8 cm.
机译:研究的目的是确定火星旋转轴的运动,这是由于大气质量变化以及极帽上的CO2冰凝结和升华的结果。如果行星具有大气,它将经历这种类型的运动,大气将改变其相对于行星实体的质量分布,并且/或者将非对称地更改极地盖处的冰量。涉及的物理原理是角动量的守恒,人们可以坐在油浸良好的转椅上,使其在水平方向上保持旋转的轮子,然后将轮子的旋转轴更改为垂直方向,从而对此产生感觉。握住轮子和椅子的人将开始以与轮子的旋转相反的方向旋转。火星大气层的运动和冰盖变化是从NASA Ames研究中心开发的数学模型获得的。该模型产生的火星时间跨度为一年,相当于687个地球日。结果表明,火星旋转轴相对于行星表面上的参考点呈螺旋形运动。由于大气中的质量变化和极地帽上冰的不对称变化,它可以从初始位置移开35.3 cm。此外,在火星年期间,极点围绕参考点进行了近两次旋转。该运动是两种运动的组合,一种运动是由大气质量变化产生的,另一种是由于冰盖的变化而产生的。由于大气变化而产生的运动是围绕参考点执行大约两圈半的螺旋运动,在此期间,磁极可以移动到40.9厘米。由于冰盖的变化而产生的运动是一个螺旋,它执行了将近3圈的旋转,在此期间,磁极可以移动32.8厘米。

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