{"title":"Time transfer via different GNSS systems","authors":"K. Liang","doi":"10.23919/URSIAP-RASC.2019.8738763","DOIUrl":null,"url":null,"abstract":"GNSS time transfer is the most popular method for time transfer with good accuracy and precision on ultra long distance over the world. In TAI generation, time transfer by GPS (Global Positioning System) and GLONASS (GLObal NAvigation Satellite System), especially GPS, have been employed regularly for remote comparison links between PTB and other TAI laboratories. At present, BeiDou navigation satellite system (BDS) and Galileo system are developing fast. Time transfer via BDS and Galileo are becoming the important redundant comparison links and having the potential combination of multiple GNSS(Global Navigation Satellite System) links come true. A new multi-GNSS version of GNSS time transfer receiver NIM-TF-GNSS-3, has been under development by NIM (National Institute of Metrology, Beijing, China) since 2016. It is the third generation of GNSS time transfer receiver developed by NIM following NIM-TF-GNSS-1 [1] and NIM-TF-GNSS-2 [2]. The receiver provides the code and carrier phase measurements from BDS, GPS, GLONASS and Galileo for precise time transfer. The receiver can generate measurement data of both single frequency and dual frequencies in CGGTTS (CCTF Group on GNSS Time Transfer Standards) V2E, RINEX (Receiver Independent Exchange Format) V3 files. The experiments of time transfer via different GNSS systems on multiple links have been implemented for the evaluation on the long-term stability and accuracy. The combination method of multiple GNSS measurements for time transfer has been studied and discussed.","PeriodicalId":344386,"journal":{"name":"2019 URSI Asia-Pacific Radio Science Conference (AP-RASC)","volume":"1 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2019-03-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"2019 URSI Asia-Pacific Radio Science Conference (AP-RASC)","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.23919/URSIAP-RASC.2019.8738763","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
GNSS time transfer is the most popular method for time transfer with good accuracy and precision on ultra long distance over the world. In TAI generation, time transfer by GPS (Global Positioning System) and GLONASS (GLObal NAvigation Satellite System), especially GPS, have been employed regularly for remote comparison links between PTB and other TAI laboratories. At present, BeiDou navigation satellite system (BDS) and Galileo system are developing fast. Time transfer via BDS and Galileo are becoming the important redundant comparison links and having the potential combination of multiple GNSS(Global Navigation Satellite System) links come true. A new multi-GNSS version of GNSS time transfer receiver NIM-TF-GNSS-3, has been under development by NIM (National Institute of Metrology, Beijing, China) since 2016. It is the third generation of GNSS time transfer receiver developed by NIM following NIM-TF-GNSS-1 [1] and NIM-TF-GNSS-2 [2]. The receiver provides the code and carrier phase measurements from BDS, GPS, GLONASS and Galileo for precise time transfer. The receiver can generate measurement data of both single frequency and dual frequencies in CGGTTS (CCTF Group on GNSS Time Transfer Standards) V2E, RINEX (Receiver Independent Exchange Format) V3 files. The experiments of time transfer via different GNSS systems on multiple links have been implemented for the evaluation on the long-term stability and accuracy. The combination method of multiple GNSS measurements for time transfer has been studied and discussed.
全球导航卫星系统(GNSS)时移是目前世界上最流行的超长距离时移方法,具有较好的精度和精度。在TAI代中,定期使用GPS(全球定位系统)和GLONASS(全球导航卫星系统)的时间传输,特别是GPS,作为PTB与其他TAI实验室之间的远程比较链接。目前,北斗卫星导航系统和伽利略卫星导航系统发展迅速。北斗系统和伽利略系统的时间传输正在成为重要的冗余比较链路,并有可能实现多个全球卫星导航系统(GNSS)链路的组合。自2016年以来,NIM(中国北京国家计量研究所)一直在开发新的多GNSS版本的GNSS时间传输接收器NIM- tf -GNSS-3。它是NIM继NIM- tf -GNSS-1[1]和NIM- tf -GNSS-2[2]之后研制的第三代GNSS时间传输接收机。接收机提供来自BDS、GPS、GLONASS和Galileo的编码和载波相位测量,用于精确的时间传输。接收机可以生成CGGTTS (CCTF Group on GNSS Time Transfer Standards) V2E、RINEX (receiver Independent Exchange Format) V3文件格式的单频和双频测量数据。通过不同GNSS系统在多链路上的时间传递实验,对其长期稳定性和精度进行了评价。研究和讨论了多路GNSS测量时间传递的组合方法。