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Deployment dynamics of space tether systems.

机译:空间系绳系统的部署动态。

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The purpose of this research is to model and understand the deployment dynamics of space systems with long and short tethers. This research is divided into two parts; in the first part, a model for short and medium length tether systems is developed and simulated by solving equations of motion. A detailed parametric study is conducted after identifying important parameters affecting the deployment and studying the effect of each parameter on the deployment performance. Certain tools are developed to assist mission planners in predicting the deployment performance of a space tether system for a given set of parameters. The second part of the research is motivated by Space Elevator (SE) dynamics. SE is a futuristic and highly challenging technology based on the idea of connecting Earth and Space by an approximately 100, 000 km long tether. The tether used for the SE would be deployed from Geostationary Orbit (GEO). With this motivation, the short tether analysis from the previous section is extended to the analysis of long tethers. A model for long tether deployment is developed and governing equations of motions are formulated. Critical parameters are identified and problems involved in SE deployment are investigated. Tether mass is initially included in the model, but it is found that the mass of the tether has very little effect on the overall qualitative dynamics of the system. Hence, for further analysis, a massless tether model is adopted. Upon simulating the system, it is found that long tethers can be highly unstable during deployment and can crash onto the Earth. However, a considerable fraction of the tether can be deployed successfully without any external control mechanism before the instability manifests itself. Hence, alternate SE designs with shorter tether deployment requirements may be a possibility.
机译:这项研究的目的是建模和理解带有长和短系链的空间系统的部署动态。这项研究分为两个部分:在第一部分中,通过求解运动方程,开发并模拟了短和中长度系绳系统的模型。在确定影响部署的重要参数并研究每个参数对部署性能的影响之后,将进行详细的参数研究。开发了某些工具来协助任务计划人员针对给定的参数集预测空间链系统的部署性能。研究的第二部分是由空间电梯(SE)动力学推动的。 SE是一种未来主义且极富挑战性的技术,其思想是通过约100,000 km长的系绳将地球与太空连接起来。用于SE的系绳将从对地静止轨道(GEO)部署。在这种动机下,上一节中的短系绳分析扩展到了长系绳分析。建立了长系绳部署模型,并制定了运动控制方程。确定关键参数并调查SE部署中涉及的问题。系链质量最初包含在模型中,但是发现系链质量对系统的整体定性动力学影响很小。因此,为进一步分析,采用了无质量系链模型。在对系统进行仿真时,发现长系绳在部署期间可能非常不稳定,并可能撞到地球上。但是,在不稳定出现之前,无需任何外部控制机制即可成功部署大部分系绳。因此,可能会有更短的系绳部署要求的替代SE设计。

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