首页> 外文会议>ISPRS Congress >APPLICATION OF VISION METROLOGY TO IN-ORBIT MEASUREMENT OF LARGE REFLECTOR ONBOARD COMMUNICATION SATELLITE FOR NEXT GENERATION MOBILE SATELLITE COMMUNICATION
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APPLICATION OF VISION METROLOGY TO IN-ORBIT MEASUREMENT OF LARGE REFLECTOR ONBOARD COMMUNICATION SATELLITE FOR NEXT GENERATION MOBILE SATELLITE COMMUNICATION

机译:视觉计量在下一代移动卫星通信中的大型反射器轨道通信卫星在轨道测量中的应用

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Satellite for next generation mobile satellite communication service with small personal terminal requires onboard antenna with very large aperture reflector larger than twenty meters diameter because small personal terminal with lower power consumption in ground base requires the large onboard reflector with high antenna gain. But, large deployable antenna will deform in orbit because the antenna is not a solid dish but the flexible structure with fine cable and mesh supported by truss. Deformation of reflector shape deteriorate the antenna performance and quality and stability of communication service. However, in case of digital beam forming antenna with phased array can modify the antenna beam performance due to adjustment of excitation amplitude and excitation phase. If we can measure the reflector shape precisely in orbit, beam pattern and antenna performance can be compensated with the updated excitation amplitude and excitation phase parameters optimized for the reflector shape measured every moment. Softbank Corporation and National Institute of Information and Communications Technology has started the project "R&D on dynamic beam control technique for next generation mobile communication satellite" as a contracted research project sponsored by Ministry of Internal Affairs and Communication of Japan. In this topic, one of the problem in vision metrology application is a strong constraints on geometry for camera arrangement on satellite bus with very limited space. On satellite in orbit, we cannot take many images from many different directions as ordinary vision metrology measurement and the available area for camera positioning is quite limited. Feasibility of vision metrology application and general methodology to apply to future mobile satellite communication satellite is to be found. Our approach is as follows: 1) Development of prototyping simulator to evaluate the expected precision for network design in zero order and first order 2) Trial measurement for large structure with similar dimension with large deployable reflector to confirm the validity of the network design and instrumentation. In this report, the overview of this R&D project and the results of feasibility study of network design based on simulations on vision metrology and beam pattern compensation of antenna with very large reflector in orbit is discussed. The feasibility of assumed network design for vision metrology and satisfaction of accuracy requirements are discussed. The feasibility of beam pattern compensation by using accurately measured reflector shape is confirmed with antenna pattern simulation for deformed parabola reflector. If reflector surface of communication satellite can be measured routinely in orbit, the antenna pattern can be compensated and maintain the high performance every moment.
机译:下一代移动卫星通信服务具有小型个人终端的卫星需要船上天线,具有大于20米的孔径反射器,直径大于20米的小型电源终端,需要较低的电源消耗,需要具有高天线的大型车载反射器。但是,大型可部署天线将在轨道中变形,因为天线不是实心盘,而是具有精细电缆的柔性结构和桁架支撑的电缆。反射器形状的变形劣化了通信服务的天线性能和质量和稳定性。然而,在具有相位阵列的数字束形成天线的情况下,可以由于激发幅度和激励阶段的调节而改变天线波束性能。如果我们可以在轨道上精确地测量反射器形状,可以用针对每时刻测量的反射器形状优化的更新的激励幅度和激励相位参数来补偿光束图案和天线性能。 SoftBank Corporation和国家信息和通信技术研究所开始了项目“R&D对下一代移动通信卫星的动态梁控制技术”作为由日本内部和沟通部赞助的合同研究项目。在本主题中,视觉计量应用中的问题之一是对具有非常有限的空间的卫星公共汽车上的相机布置的几何结构是一个强大的限制。在轨道上的卫星上,我们不能从许多不同方向上采取许多图像,因为普通视觉计量测量和相机定位的可用区域非常有限。视觉计量应用和一般方法适用于未来移动卫星通信卫星的可行性。我们的方法如下:1)开发原型设计模拟器以评估网络设计的预期精度,以零阶和一阶2)对大型结构的试验测量,具有大型可展开反射器的类似尺寸,以确认网络设计和仪器的有效性。在本报告中,讨论了该研发项目的概述以及基于轨道中的天线的视觉计量和光束图案补偿的基于轨道模拟的网络设计的可行性研究。讨论了视觉计量和准确要求满意度的假​​设网络设计的可行性。通过使用精确测量的反射器形状,通过用于变形抛物线反射器的天线图案模拟来确认光束图案补偿的可行性。如果通信卫星的反射器表面可以在轨道上常规测量,则可以补偿天线图案并保持每时每刻的高性能。

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