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Modeling, simulation, and characterization of space debris in low-Earth orbit.

机译:低地球轨道上的空间碎片的建模,仿真和表征。

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摘要

Every space launch increases the overall amount of space debris. Satellites have limited awareness of nearby objects that might pose a collision hazard. Astrometric, radiometric, and thermal models for the study of space debris in low-Earth orbit have been developed. This modeled approach proposes analysis methods that provide increased Local Area Awareness for satellites in low-Earth and geostationary orbit. Local Area Awareness is defined as the ability to detect, characterize, and extract useful information regarding resident space objects as they move through the space environment surrounding a spacecraft.;The study of space debris is of critical importance to all space-faring nations. Characterization efforts are proposed using long-wave infrared sensors for space-based observations of debris objects in low-Earth orbit. Long-wave infrared sensors are commercially available and do not require solar illumination to be observed, as their received signal is temperature dependent. The characterization of debris objects through means of passive imaging techniques allows for further studies into the origination, specifications, and future trajectory of debris objects. Conclusions are made regarding the aforementioned thermal analysis as a function of debris orbit, geometry, orientation with respect to time, and material properties. Development of a thermal model permits the characterization of debris objects based upon their received long-wave infrared signals. Information regarding the material type, size, and tumble-rate of the observed debris objects are extracted. This investigation proposes the utilization of long-wave infrared radiometric models of typical debris to develop techniques for the detection and characterization of debris objects via signal analysis of unresolved imagery.;Knowledge regarding the orbital type and semi-major axis of the observed debris object are extracted via astrometric analysis. This knowledge may aid in the constraint of the admissible region for the initial orbit determination process. The resultant orbital information is then fused with the radiometric characterization analysis enabling further characterization efforts of the observed debris object. This fused analysis, yielding orbital, material, and thermal properties, significantly increases a satellite's Local Area Awareness via an intimate understanding of the debris environment surrounding the spacecraft.
机译:每次太空发射都会增加太空碎片的总量。卫星对可能造成碰撞危险的附近物体的意识有限。已经开发出了用于研究低地球轨道空间碎片的占星,辐射和热学模型。这种建模方法提出了一种分析方法,可以为低地球和地球静止轨道的卫星提供增强的局域感知能力。区域意识被定义​​为能够检测,表征和提取有关常驻空间物体通过航天器周围空间环境移动时的有用信息的能力。研究空间碎片对所有航天国家都至关重要。提出了使用长波红外传感器对低地球轨道上的碎片物体进行空基观测的表征工作。长波红外传感器在市场上可以买到,并且不需要观察太阳光,因为它们的接收信号取决于温度。通过被动成像技术对碎片对象进行表征可以进一步研究碎片对象的起源,规格和将来的轨迹。根据上述热分析得出结论,该分析是碎片轨道,几何形状,相对于时间的方向以及材料特性的函数。通过热模型的开发,可以根据碎片对象接收到的长波红外信号对其进行表征。提取有关所观察到的碎片对象的材料类型,大小和翻转速率的信息。这项研究提出利用典型碎片的长波红外辐射测量模型来开发通过未解析图像的信号分析来检测和表征碎片对象的技术。;关于所观察到的碎片对象的轨道类型和半长轴的知识是通过天体分析提取。该知识可以帮助限制初始轨道确定过程的可允许区域。然后将得到的轨道信息与辐射特征分析融合在一起,从而可以对观察到的碎片对象进行进一步的特征化工作。通过对航天器周围碎片环境的深入了解,这种融合的分析产生了轨道,材料和热特性,从而大大提高了卫星的局域感知能力。

著录项

  • 作者

    McCall, Paul David.;

  • 作者单位

    Florida International University.;

  • 授予单位 Florida International University.;
  • 学科 Engineering Electronics and Electrical.;Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 166 p.
  • 总页数 166
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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