• 제목/요약/키워드: Tropospheric effect

검색결과 32건 처리시간 0.028초

기준국 간 대류권 지연 변칙이 네트워크 RTK에 미치는 영향 (Effect of Tropospheric Delay Irregularity in Network RTK Environment)

  • 한영훈;고재영;신미영;조득재
    • 한국정보통신학회논문지
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    • 제19권11호
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    • pp.2569-2575
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    • 2015
  • 네트워크 RTK는 네트워크를 형성하는 다수의 기준국의 보정정보를 사용자 위치에 맞게 보간하여 사용함으로써 기준국과 사용자 간 기저선 거리 증가에 따른 공간이격 오차를 최소화 한다. 하지만 대류권 지연은 기상의 함수로 국지적인 기상변화를 원인으로 사용자와 네트워크 내 기준국 간 대류권 지연에 비선형 특성을 발생시킬 수 있으며, 이는 네트워크 RTK 성능을 저하시킬 수 있다. 따라서 본 논문에서는 태풍이 있던 날의 데이터를 기반으로 대류권 지연 변칙 사례를 모델링하고, 이를 이용하여 기준국 간 기상차이가 기준국에서 생성하는 보정정보에 미치는 영향을 분석한다. 또한, 기준국 간 대류권 지연의 비선형성이 네트워크 RTK 사용자에게 미치는 영향을 분석한다.

대류권 지연이 이중차분법을 이용한 GPS 측위에 미치는 영향 (Impact of Tropospheric Delays on the GPS Positioning with Double-difference Observables)

  • 홍창기
    • 한국측량학회지
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    • 제31권5호
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    • pp.421-427
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    • 2013
  • 일반적으로 GPS 데이터를 이용하여 단기선 처리를 하는 경우 대류권 지연 효과는 이중차분법에 의해 충분히 제거된다고 가정을 한다. 따라서 조정계산 모델식에서 대류권 지연 효과에 대한 미지수를 설정하지 않아도 되기 때문에 계산이 용이하다는 장점과 각종 오차요인의 제거로 인해 상대적으로 높은 측위정확도의 확보가 가능하다. 즉, 변위 모니터링 등 정밀측위가 요구되는 응용분야에서는 단기선 처리를 기반으로 하는 경우가 일반적이다. 하지만 기준국과 이동국의 높이 차이가 존재하는 경우 이중차분법을 사용하더라도 대류권 지연 효과가 충분히 제거되지 않기 때문에 측위정확도의 저하를 가져올 수 있다. 본 연구에서는 대류권 지연 효과가 기선의 방향에 따라 측위정확도에 미치는 영향을 분석하였다. 이를 위해 대류권 지연 효과가 포함된 GPS 관측값을 시뮬레이션(simulation)을 통해 생성한 후 이중차분법을 이용한 단기선 처리로 이동국의 좌표를 계산하였다. 계산된 이동국의 좌표잔차의 분석을 통해 기선 방향에 따른 대류권 지연 영향을 분석하였다. 분석 결과, 기준국과 이동국의 높이 차이가 증가함에 따라 좌표잔차에 편이가 발생하는 것으로 나타났으며 기선의 길이가 1m 증가함에 따라 0.07cm의 편이량이 계산되었다. 따라서 정밀측위를 위해서는 단기선일지라도 수직방향의 기선에 대해서는 대류권 지연 효과에 대한 충분한 고려가 있어야 한다.

Tropospheric Data of KASI GNSS Network (2001-2014) Based on the CODE's 2nd Reprocessing Product

  • Roh, Kyoung-Min;Park, Han-Earl;Choi, Byung-Kyu
    • Journal of Positioning, Navigation, and Timing
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    • 제9권3호
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    • pp.229-236
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    • 2020
  • The trend of water vapor contents in atmosphere is one of key elements for studying climate change. The tropospheric products, i.e., ZTD values achieved through GPS data processing can retrieve the amount of water vapor with higher temporal and spatial resolution than any other instruments. In this study, the tropospheric products of KASINET for a time period from 2001 to 2014 are reprocessed using PPP strategy and the products from the CODE's 2nd reprocessing campaign. For consistency with reprocessing activities of other networks like EPN, the VMF1 mapping function and non-tidal loading effect due to atmospheric pressure are applied in the process. The reprocessing results are investigated through comparing with the CODE's 2nd reprocessing products by including some IGS stations in the process and also calculating weekly coordinate repeatability to see the quality of the processing. After removing outliers based on the variation of averaged formal error, all processed stations have similar variations of formal error about 2 mm which is lower than that of the IGS final product. Comparison results with the CODE's 2nd reprocessing products show that the overall mean difference is found to be -0.28±5.54 mm which is similar level of the previous studies. Finally, the ZTD trends of all KASINET stations are calculated and the averaged trend is achieved as 0.19 mm/yr. However, the trend of each month shows different amounts and directions from -1.26 mm/yr in May to 1.18 mm/yr in August. In conclusion, the reprocessed tropospheric product and applied strategy of this study has enough quality as one of reliable solution for a reference product for Korean Peninsula which is needed to use GPSbased tropospheric product for climate change research.

THE EFFECT OF SURFACE METEOROLOGICAL MEASUREMENTS ON GPS HEIGHT DETERMINATION

  • Huang, Yu-Wen;Wang, Chuan-Sheng;Liou, Yuei-An;Yeh, Ta-Kang
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2006년도 Proceedings of ISRS 2006 PORSEC Volume II
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    • pp.748-751
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    • 2006
  • Positioning accuracy by the Global Positioning System (GPS) is of great concern in a variety of research tasks. It is limited due to error sources such as ionospheric effect, orbital uncertainty, antenna phase center variation, signal multipath, and tropospheric influence. In this study, the tropospheric influence, primarily due to water vapour inhomogeneity, on GPS positioning height is investigated. The data collected by the GPS receivers along with co-located surface meteorological instruments in 2003 are utilized. The GPS receivers are established as continuously operating reference stations by the Ministry of the Interior (MOI), Central Weather Bureau (CWB), and Industrial Technology Research Institute (ITRI) of Taiwan, and International GNSS Service (IGS). The total number of GPS receivers is 21. The surface meteorological measurements include temperature, pressure, and humidity. They are introduced to GPS data processing with 24 troposphere parameters for the station heights, which are compared with those obtained without a priori knowledge of surface meteorological measurements. The results suggest that surface meteorological measurements have an expected impact on the GPS height. The daily correction maximum with the meteorological effect may be as large as 9.3 mm for the cases of concern.

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DETERMINATION OF GPS HEIGHT WITH INCORPORATION OF USING SURFACE METEOROLOGICAL MEASUREMENTS

  • Wang, Chuan-Sheng;Liou, Yuei-An;Yeh, Ta-Kang
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2008년도 International Symposium on Remote Sensing
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    • pp.313-316
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    • 2008
  • Although the positioning accuracy of the Global Positioning System (GPS) has been studied extensively and used widely, it is still limited due to errors from sources such as the ionospheric effect, orbital uncertainty, antenna phase center variation, signal multipath and tropospheric influence. This investigation addresses the tropospheric effect on GPS height determination. Data obtained from GPS receivers and co-located surface meteorological instruments in 2003 are adopted in this study. The Ministry of the Interior (MOl), Taiwan, established these GPS receivers as continuous operating reference stations. Two different approaches, parameter estimation and external correction, are utilized to correct the zenith tropospheric delay (ZTD) by applying the surface meteorological measurements (SMM) data. Yet, incorrect pressure measurement leads to very poor accuracy. The GPS height can be affected by a few meters, and the root-mean-square (rms) of the daily solution ranges from a few millimeters to centimeters, no matter what the approach adopted. The effect is least obvious when using SMM data for the parameter estimation approach, but the constant corrections of the GPS height occur more often at higher altitudes. As for the external correction approach, the Saastamoinen model with SMM data makes the repeatability of the GPS height maintained at few centimeters, while the rms of the daily solution displays an improvement of about 2-3 mm.

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라이다 시스템을 이용한 하층 대류권 오존농도 측정 (Ozone Monitoring in the Lower Tropospheric Atmosphere by LIDAR System)

  • 최성철;차형기;김덕현;김영상
    • 한국대기환경학회지
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    • 제17권5호
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    • pp.385-393
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    • 2001
  • We have developed a Differential Absortion LIDAR (DIAL) method for the measurement of lower tropospheric ozone concentration. We used two laser beams from quadrupled Nd:YAG (266 nm) for the resonance wavelength and dye lasers (299.5 nm) for non -resonance wavelength. Aerosol extinction coefficients in the lower troposphere was computed by both Klett and Slope methods. To correct the SIN (Signal -Induced Noise) effect caused by photo detector, we subtracted a new-fitted baseline on the background part of a LIDAR signal, after the subtraction of the DC level. This is because SIN can be treated as an exponentially decaying tail. Using theme results, ozone profiles were obtained approximately 2km at daytime and 3km at nighttime. We compared the results derided by the Slope method with those measured by UV spectrometer. The computed results are in mostly good agreement with experimental results. In the measurement of the vertical layer, we observed the variation of the ozone profiles around the top mixed layer.

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Feasibility Study on Tropospheric Attenuation Effect of Ku/V Band Signal for Korean Satellite Navigation System

  • Park, Jungkeun;Lee, Young Jae;Choi, Moonseok;Jang, Jae-Gyu;Sung, Sangkyung
    • International Journal of Aeronautical and Space Sciences
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    • 제17권1호
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    • pp.80-88
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    • 2016
  • For next generation global navigation satellite systems, new carrier frequencies in Ku/V band are expected to emerge as a promising alternative to the current frequency windows in L band as they get severely congestive. In the case of higher frequency bands, signal attenuation phenomenon through the atmosphere is significantly different from the L band signal propagation. In this paper, a fundamental investigation is carried out to explore the Ku/V band as a candidate frequency band for a new global satellite navigation carrier signal, wherein specific attention is given to the effects of the dominant attenuation factors through the tropospheric propagation path. For a specific application, a candidate orbit preliminarily designed for the Korean regional satellite navigation system is adapted. Simulation results summarize that the Ku band can provide a promising satellite navigation implementation considering the present satellite's power budget, while the V band still requires technical advances in satellite transceiver system implementations.

동아시아지역의 CMAQ 대류권 오존 모의에 화학적 측면 경계조건이 미치는 효과 (The Effect of the Chemical Lateral Boundary Conditions on CMAQ Simulations of Tropospheric Ozone for East Asia)

  • 홍성철;이재범;최진영;문경정;이현주;홍유덕;이석조;송창근
    • 한국대기환경학회지
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    • 제28권5호
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    • pp.581-594
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    • 2012
  • The goal of this study is to investigate the effects of the chemical lateral boundary conditions (CLBCs) on Community Multi-scale Air Quality (CMAQ) simulations of tropospheric ozone for East Asia. We developed linking tool to produce CLBCs of CMAQ from Goddard Earth Observing System-Chemistry (GEOS-Chem) as a global chemistry model. We examined two CLBCs: the fixed CLBC in CMAQ (CLBC-CMAQ) and the CLBC from GEOS-Chem (CLBC-GEOS). The ozone fields by CMAQ simulation with these two CLBCs were compared to Tropospheric Emission Spectrometer (TES) satellite data, ozonesonde and surface measurements for May and August in 2008. The results with CLBC-GOES showed a better tropospheric ozone prediction than that with CLBC-CMAQ. The CLBC-GEOS simulation led to the increase in tropospheric ozone concentrations throughout the model domain, due to be influenced high ozone concentrations of upper troposphere and near inflow western and northern boundaries. Statistical evaluations also showed that the CLBC-GEOS case had better results of both the index of Agreement (IOA) and mean normalized bias. In the case of IOA, the CLBC-GEOS simulation was improved about 0.3 compared to CLBC-CMAQ due to the better predictions for high ozone concentrations in upper troposphere.

A STUDY OF TROPOSPHERIC EFFECT ON HIGH PRECISION GPS HEIGHT DETERMINATION

  • Wang, Chuan-Sheng;Liou, Yuei-An
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2007년도 Proceedings of ISRS 2007
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    • pp.382-385
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    • 2007
  • Constantly enhancing positioning accuracy by the Global Positioning System (GPS) technique is of great importance, but challenging, especially after the GPS positioning technique has been improved considerably during the past two decades. The associated main error sources have been reduced substantially, if not eliminated. Troposhpeic influence with its highly temporal and spatial variability appears to be one of the major error sources. It is hence an increased interest among GPS researchers to reduce the tropospheric influence or delay. Two techniques have been commonly implemented to correct the tropospheric impact. The first technique, known as parameter estimation, characterizes the path delay with empirical models and the parameters of interest are determined from the GPS measurements. The second strategy, termed as external correction, involves independent path delay measurements. The present study is an integration of both techniques in which the parameter estimation as well as external correction are used to correct the path delay for $110{\sim}210$ km range baselines. Twenty-four parameters have been obtained in 24 hours solution by setting the cutoff angle at 3 and 15 degrees for parameter estimation strategy. Measurements from meteorological instruments and water vapor radiometer (WVR) are applied in the GPS data processing, separately, as an external strategy of present research work. Interesting results have been found, indicating more stable repeatability in baseline when the external correction strategy is applied especially with the inclusion of WVR observations. The offset of an order of 1 cm is found in the baselines determined by the two strategies. On the other hand, parameter estimation exhibits more stable in terms of GPS height repeatability. The offset in the GPS height determined by the two strategies is on the order of few centimeters.

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GACOS 모델 대기 위상 지연 보정을 활용한 SBAS-InSAR 기술 기반 울산광역시 지반 침하 탐지 (Urban Subsidence Monitoring in Ulsan City Using GACOS Based Tropospheric Delay Corrected Time-series SBAS-InSAR Technique)

  • 수레시크리쉬난;김덕진;이정훈;송주영;김준우
    • 대한원격탐사학회지
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    • 제38권6_1호
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    • pp.1081-1089
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    • 2022
  • 본 연구는 시계열 Small Baseline Subset (SBAS)-InSAR 기법을 이용하여 울산시의 지반 침하를 조사하였으며, 79개의 Sentinel-1 SAR 영상과 385개의 간섭도 영상(interferogram)을 사용하여 2015년 5월부터 2021년 12월 울산광역시의 지상 변위(surface displacement)를 추정하였다. 지반 침하율은 북구와 남구 삼산동 2지역에서 연 3.44 cm, 1.68 cm로 계측되었다. 또한 Generic Atmospheric Correction Online Service (GACOS)로 생성한 Zenith Total Delay (ZTD) 지도를 활용하여 unwrapping된 간섭도 위상에서 대기 지연(tropospheric delay)의 영향을 제거할 수 있는 가능성을 평가하였으며, GACOS ZTD 보정 전후의 SBAS-InSAR 지상 변위 측정의 차이가 연 1 mm 미만임을 발견하였다.