Optimization of Meteorological Correction Formula of Total Station
LIU Xiaodong1,MIAO Dongjing2,YAO Yan1,WANG Changyun3,WANG Deli2, LI Lianfu2,LIU Yang2,CAI Jinhui1,LI Jianshuang2
1. Collage of Metrology & Measurement Engineering, China Jiliang University, Hangzhou, Zhejiang 310018, China
2. National Institute of Metrology, Beijing 100029, China
3. Weifang Metrology and Testing Institute, Weifang, Shandong 261061, China
Abstract:To improve the long-distance distance measurement accuracy of the total station, an optimization method for the meteorological correction formula of the total station is proposed. After analyzing the meteorological correction formula, it was found that there is some error and there is room for optimization. In order to reduce the residual error caused by the correction formula and minimize the sum of residual errors as the optimization objective, the adjustment of meteorological formula coefficients is transformed into an optimization problem. By utilizing a dense array of environmental parameter sensors deployed on the long baseline in the field, real-time recording of environmental parameters during long-term continuous ranging of the total station is carried out for easy retrieval; Using ranging data to construct optimization functions, different combinations of meteorological transformation formula coefficients are optimized, adjusted and validated. The experimental data analysis results show that after optimization, the mean ranging error can be reduced by 99.8%, and the standard deviation of error can be reduced by 81.2%; To verify the effectiveness of the proposed method, the optimized coefficient correction formula is applied to distance compensation in other measurement time periods. The results show that the residual error is also effectively reduced, with an optimization amplitude of over 37%. The optimization of meteorological correction formula coefficients is an effective method to significantly reduce field ranging errors.
SANG J. Research on some problems of field baseline in China [J]. Bulletin of Surveying and Mapping, 2012(3): 48-52.
[2]
陈杨. 基于绝对测距的野外基线溯源关键技术的研究 [D]. 杭州: 中国计量大学, 2018.
CHEN Y, LI J S, MIAO D J, et al. Research on an Automatic Measurement System for Field Baseline Environmental Parameters Based on Sensor Arrays [J]. Acta Metrologica Sinica, 2018, 39(4): 455-460.
FU Z A, ZHU J, SUN F F, et al. Discussion on length baseline traceability [J]. Journal of Surveying and Mapping Science and Technology, 2011, 28(3):157-160.
LIU X D, MIAO D J, ZHANG J Y, et al. Development of automatic measurement system for 1.2km standard baseline environmental parameters [J]. Acta Metrologica Sinica, 2020, 41(8): 897-902.
[8]
InternationalUnion of Geodesy and Geophysics. Resolutions adopted by the XIIIth General Assembly[EB/OL]. Berkeley, 1963. https://iugg.org/publications/resolutions/.
ZHANG Y L, GAO H T, WANG H, et al. Approach to the measurement accuracy of laser wavelength in air [J]. Optical Test, Measurement and Equipment, 2015,9677: 967729.
YAO H, CHEN S Y. Meteorological Correction Formula for Total Station and the Influence of Meteorological Element Measurement Precision on Distance [J]. Surveying and Mapping Bulletin, 2008(4): 14-16.
GU Y Q, MIAO E L, YAN F, et al. Influence of special temperature distribution on high accuracy interferometric metrology [J]. Optical Test and Measurement Technology and Equipment, 2010,9656: 765647.
[7]
POLLINGER F, MEYER T, BEYER J, et al. The upgraded PTB 600m baseline: a high-accuracy reference for the calibration and the development of long distance measurement devices [J]. Measurement Science and Technology, 2012, 23(9): 094018.
CHEN Y S. Discussion on the measurement uncertainty of relative humidity measured by wet and dry bulb method [J]. Equipment Environmental Engineering, 2005, 2(1): 65-69.
MIN S B, YAN L P, CUI J J, et al. Design and Implementation of a High Precision Air Refractive Index Measurement System [J]. Acta Metrologica Sinica, 2020, 41(11): 1332-1338.
CHEN J Y, HU J G. A review of the 22nd IUGG General Conference of the International Union of Geodesy and Geophysics towards the 21st Century [J]. Bulletin of Surveying and Mapping, 1999(11): 34-37.