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首页> 外文期刊>Journal of Geodesy >Benefits of combining GPS and GLONASS for measuring ocean tide loading displacement
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Benefits of combining GPS and GLONASS for measuring ocean tide loading displacement

机译:结合GPS和Glonass测量海洋潮装载位移的好处

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Abstract GPS has been used to estimate ocean tide loading (OTL) height displacement amplitudes to accuracies of within 0.5 mm at the M2 frequency, but such estimation has been problematic at luni-solar K2 and K1 frequencies because they coincide with the GPS orbital period and revisit period, leading to repeating multipath and satellite orbit errors. We therefore investigate the potential of using the GLONASS constellation (with orbital period 11.26 h and true site revisit period of 8 sidereal days distinct from K2 and K1) for OTL displacement estimation, analysing 3–7 years of GPS and GLONASS data from 49 globally distributed stations. Using the PANDA software in kinematic precise point positioning mode with float ambiguities, we demonstrate that GLONASS can estimate OTL height displacement at the M2, N2, O1 and Q1 lunar frequencies with similar accuracy to GPS: 95th percentile agreements of 0.6–1.3 mm between estimated and FES2014b ocean tide model displacements. At the K2 and K1 luni-solar frequencies, 95th percentile agreements between GPS estimates and model values of 3.9–4.4 mm improved to 2.0–2.8 mm using GLONASS-only solutions. A combined GPS+GLONASS float solution improves accuracy of the lunar OTL constituents and P1 (but not significantly for K1 or K2) compared with a single-constellation solution and results in hourly-to-weekly spectral noise very similar to a GPS ambiguity-fixed solution, but without needing uncalibrated phase delay information. GLONASS estimates are more accurate at higher compared with lower latitudes because of improved satellite visibility, although this can be countered by using a lower elevation cut-off angle.
机译:摘要GPS已被用于估计海潮加载(OTL)高度位移幅度,以在M2频率0.5mm内的精度振缩,但是这种估计在Luni-Solar K2和K1频率上存在问题,因为它们与GPS轨道周期一致重新审视期,导致重复多路径和卫星轨道错误。因此,我们调查使用Glonass星座的可能性(带有轨道周期11.26 H和8个恒星天的Revitial Revisit期间,与K2和K1不同的8个恒星天)进行OTL位移估计,从全球分布的49个分析了3-7岁的GPS和Glonass数据站。使用Panda软件以浮动含糊不限于浮动的精确点定位模式,我们证明Glonass可以在M2,N2,O1和Q1月球频率下估计具有与GPS类似的准确度的OTL高度位移:估计之间的95百分位数0.6-1.3mm。和FES2014B海潮模型位移。在K2和K1 Luni-Solar频率下,GPS估计之间的第95个百分位协议和3.9-4.4 mm的模型值,使用Glonass的解决方案提高到2.0-2.8 mm。与单星座溶液相比,组合的GPS + Glonass浮法溶液提高了月球OTL成分和P1(但不显着的K1或K2)的精度,并导致每小时到每周谱噪声非常相似的GPS模糊性固定解决方案,但不需要未校准的相位延迟信息。由于改进的卫星可视性,Glonass估计与较低的纬度相比更准确,尽管这可以通过使用较低的升降角度来抵消这一点。

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