首页> 外文期刊>Remote Sensing >Precise Onboard Real-Time Orbit Determination with a Low-Cost Single-Frequency GPS/BDS Receiver
【24h】

Precise Onboard Real-Time Orbit Determination with a Low-Cost Single-Frequency GPS/BDS Receiver

机译:低成本单频GPS / BDS接收机进行精确的机载实时轨道确定

获取原文
           

摘要

The low-cost single-frequency GNSS receiver is one of the most economical and affordable tools for the onboard real-time navigation of numerous remote sensing small/micro satellites. We concentrate on the algorithm and experiments of onboard real-time orbit determination (RTOD) based on a single-frequency GPS/BDS receiver. Through various experiments of processing the real single-frequency GPS/BDS measurements from the Yaogan-30 (YG30) series and FengYun-3C (FY3C) satellites of China, some critical aspects of the onboard RTOD are investigated, such as the optimal force models setting, the effect of different measurements, and the impact of GPS/BDS fusion. The results demonstrate that a gravity model truncated to 55 × 55 order/degree for YG30 and 45 × 45 for FY3C and compensated with an optimal stochastic modeling of empirical accelerations, which minimize the onboard computational load and only result in a slight loss of orbit accuracy, is sufficient to obtain high-precision real-time orbit results. Under the optimal force models, the real-time orbit accuracy of 0.4–0.7 m for position and 0.4–0.7 mm/s for velocity is achievable with the carrier-phase-based solution, while an inferior real-time orbit accuracy of 0.8–1.6 m for position and 0.9–1.7 mm/s for velocity is achieved with the pseudo-range-based solution. Furthermore, although the GPS/BDS fusion only makes little change to the orbit accuracy, it increases the number of visible GNSS satellites significantly, and thus enhances the geometric distribution of GNSS satellites that help suppress the local orbit errors and improves the reliability and availability of the onboard RTOD, especially in some anomalous arcs where only a few GPS satellites are trackable.
机译:低成本的单频GNSS接收器是对众多遥感小/微卫星进行机载实时导航的最经济,最实惠的工具之一。我们专注于基于单频GPS / BDS接收机的机载实时轨道确定(RTOD)的算法和实验。通过对来自中国姚干30(YG30)系列和风云3C(FY3C)卫星的实际单频GPS / BDS测量结果进行处理的各种实验,研究了机载RTOD的一些关键方面,例如最优力模型设置,不同测量的影响以及GPS / BDS融合的影响。结果表明,重力模型对于YG30截断为55×55阶/度,对于FY3C截断为45×45,并用经验加速度的最佳随机模型进行了补偿,这最小化了机载计算负荷,仅导致略微降低了轨道精度,足以获得高精度的实时轨道结果。在最佳力模型下,基于载波相位的解决方案可实现的位置实时轨道精度为0.4-0.7 m,速度的实时轨道精度为0.4-0.7 mm / s,而实时轨道精度则为0.8-使用基于伪距的解决方案可实现1.6 m的位置和0.9–1.7 mm / s的速度。此外,尽管GPS / BDS融合对轨道精度的影响很小,但它显着增加了可见GNSS卫星的数量,从而增强了GNSS卫星的几何分布,有助于抑制局部轨道误差,并提高了卫星的可靠性和可用性。机载RTOD,尤其是在某些弧形弧段中,只有少数GPS卫星是可追踪的。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号