首页> 外文期刊>Remote Sensing >Real-Time Tropospheric Delays Retrieved from Multi-GNSS Observations and IGS Real-Time Product Streams
【24h】

Real-Time Tropospheric Delays Retrieved from Multi-GNSS Observations and IGS Real-Time Product Streams

机译:从多GNSS观测和IGS实时产品流中获取的实时对流层延迟

获取原文
           

摘要

The multi-constellation Global Navigation Satellite Systems (GNSS) offers promising potential for the retrieval of real-time (RT) atmospheric parameters to support time-critical meteorological applications, such as nowcasting or regional short-term forecasts. In this study, we processed GNSS data from the globally distributed Multi-GNSS Experiment (MGEX) network of about 30 ground stations by using the precise point positioning (PPP) technique for retrieving RT multi-GNSS tropospheric delays. RT satellite orbit and clock product streams from the International GNSS Service (IGS) were used. Meanwhile, we assessed the quality of clock and orbit products provided by different IGS RT services, called CLK01, CLK81, CLK92, GFZC2, and GFZD2, respectively. Using the RT orbit and clock products, the performances of the RT zenith total delays (ZTD) retrieved from single-system as well as from multi-GNSS combined observations were evaluated by comparing with the U.S. Naval Observatory (USNO) final troposphere products. With the addition of multi-GNSS observations, RT ZTD estimates with higher accuracy and enhanced reliability compared to the single-system solution can be obtained. Compared with the Global Positioning System (GPS)-only solution, the improvements in the initialization time of ZTD estimates are about 5.8% and 8.1% with the dual-system and the four-system combinations, respectively. The RT ZTD estimates retrieved with the GFZC2 products outperform those derived from the other IGS-RT products. In the GFZC2 solution, the accuracy of about 5.05 mm for the RT estimated ZTD can be achieved with fixing station coordinates. The results also confirm that the accuracy improvement (about 22.2%) can be achieved for the real-time estimated ZTDs by using multi-GNSS observables, compared to the GPS-only solution. In the multi-GNSS solution, the accuracy of real-time retrieved ZTDs can be improved by a factor of up to 2.7 in the fixing coordinate mode, compared with that in the kinematic mode.
机译:多星座全球导航卫星系统(GNSS)为实时(RT)大气参数的检索提供有希望的潜力,以支持时间紧迫的气象应用,例如临近预报或区域短期预报。在这项研究中,我们通过使用精确点定位(PPP)技术检索RT多GNSS对流层延迟,处理了大约30个地面站的全球分布式Multi-GNSS实验(MGEX)网络中的GNSS数据。使用了来自国际GNSS服务(IGS)的RT卫星轨道和时钟产品流。同时,我们评估了不同IGS RT服务提供的时钟和轨道产品的质量,分别称为CLK01,CLK81,CLK92,GFZC2和GFZD2。使用RT轨道和时钟产品,通过与美国海军天文台(USNO)对流层最终产品进行比较,评估了从单系统以及从多个GNSS组合观测中获得的RT天顶总延迟(ZTD)的性能。与单系统解决方案相比,通过添加多个GNSS观测值,可以获得具有更高准确性和增强可靠性的RT ZTD估计。与仅使用全球定位系统(GPS)的解决方案相比,使用双系统和四系统组合时,ZTD估算的初始化时间分别减少了约5.8%和8.1%。用GFZC2产品检索到的RT ZTD估算值优于从其他IGS-RT产品获得的估算值。在GFZC2解决方案中,RT估计的ZTD的精度约为5.05 mm,而固定站的坐标则可以实现。结果还证实,与纯GPS解决方案相比,通过使用多个GNSS观测值,实时估计的ZTD可以实现精度提高(约22.2%)。在多GNSS解决方案中,与运动学模式相比,在固定坐标模式下,实时检索到的ZTD的精度可以提高2.7倍。

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