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Lagrangian Trajectory Modeling of Lunar Dust Particles

机译:月尘颗粒的拉格朗日轨迹建模

摘要

Apollo landing videos shot from inside the right LEM window, provide a quantitative measure of the characteristics and dynamics of the ejecta spray of lunar regolith particles beneath the Lander during the final 10 [m] or so of descent. Photogrammetry analysis gives an estimate of the thickness of the dust layer and angle of trajectory. In addition, Apollo landing video analysis divulges valuable information on the regolith ejecta interactions with lunar surface topography. For example, dense dust streaks are seen to originate at the outer rims of craters within a critical radius of the Lander during descent. The primary intent of this work was to develop a mathematical model and software implementation for the trajectory simulation of lunar dust particles acted on by gas jets originating from the nozzle of a lunar Lander, where the particle sizes typically range from 10 micron to 500 micron. The high temperature, supersonic jet of gas that is exhausted from a rocket engine can propel dust, soil, gravel, as well as small rocks to high velocities. The lunar vacuum allows ejected particles to travel great distances unimpeded, and in the case of smaller particles, escape velocities may be reached. The particle size distributions and kinetic energies of ejected particles can lead to damage to the landing spacecraft or to other hardware that has previously been deployed in the vicinity. Thus the primary motivation behind this work is to seek a better understanding for the purpose of modeling and predicting the behavior of regolith dust particle trajectories during powered rocket descent and ascent.
机译:从右LEM窗口内部拍摄的阿波罗着陆视频,提供了在最后10 [m]左右下降过程中对登陆器下方月球重石颗粒喷射的特征和动力学的定量测量。摄影测量分析可以估算出尘埃层的厚度和轨迹角。此外,阿波罗着陆视频分析还泄露了有关与月球表面地形发生的巨石弹射相互作用的宝贵信息。例如,在下降过程中,可以看到密集的尘埃条纹起源于着陆器临界半径内的弹坑外缘。这项工作的主要目的是开发一种数学模型和软件实现,以对源自月球着陆器喷嘴的气体喷射所作用的月尘颗粒的轨迹进行仿真,其粒径通常在10微米至500微米之间。从火箭发动机排出的高温,超音速气体喷射可将灰尘,土壤,砾石以及小石头推向高速。月球真空使射出的粒子畅通无阻地传播很长的距离,如果粒子较小,则可以达到逃逸速度。粒径分布和喷射出的动能会导致对着陆航天器或先前已部署在附近的其他硬件造成损坏。因此,这项工作的主要动机是寻求更好的理解,以便建模和预测动力火箭下降和上升过程中灰泥尘埃颗粒轨迹的行为。

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