• Title/Summary/Keyword: 천리안 2B

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Study on the Advanced S-band Telecommand and Telemetry Formats for the Geostationary Orbit Satellites Operation (정지궤도위성 운영을 위한 향상된 S-band 원격명령어 및 원격측정데이터 포맷에 대한 연구)

  • Lee, Nayoung;Shin, Hyun-Kyu;Cheon, Yee-Jin;Choi, Jae-Dong
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.49 no.5
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    • pp.417-424
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    • 2021
  • The S-band telemetry and telecommand formats for geostationary orbit satellites should have sufficient reliability, since they transmit massive satellite health data and receive the mission commands in the 36,000km of the geostationary orbit. Also, they have to efficiently manage the large quantity of satellite health data under the limited data transmission rate. Cheollian-2A and 2B satellites were developed by Korea Aerospace Research Institute and launched at 2018 and 2020, respectively. Their missions are to conduct continuously the mission of Cheollian-1, which was the first geostationary orbit satellite of Korea. Therefore, the fundamental S-band data format design for Cheollian-2A and 2B should meet the requirements of Cheollian-1. Meanwhile the latest remote data processing techniques for these newest geostationary orbit satellites should be implemented. In this paper, the advanced S-band space data formats and management methods are proposed for more efficient data transmission, reception and operation with the limited data rate of the geostationary orbit satellites. The implemented results in the flight software of Cheollian-2A and 2B are described in detail.

Improvement of GOCI-II Ground System for Monitoring of Level-1 Data Quality (천리안 해양위성 2호 Level-1 영상의 품질관리를 위한 지상국 시스템 개선)

  • Sun-Ju Lee;Kum-Hui Oh;Gm-Sil Kang;Woo-Chang Choi;Jong-Kuk Choi;Jae-Hyun Ahn
    • Korean Journal of Remote Sensing
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    • v.39 no.6_2
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    • pp.1529-1539
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    • 2023
  • The data from Geostationary Ocean Color Imager-II (GOCI-II), which observes the color of the sea to monitor marine environments, undergoes various correction processes in the ground station system, producing data from Raw to Level-2 (L2). Quality issues arising at each processing stage accumulate step by step, leading to an amplification of errors in the satellite data. To address this, improvements were made to the GOCI-II ground station system to measure potential optical quality and geolocation accuracy errors in the Level-1A/B (L1A/B) data. A newly established Radiometric and Geometric Performance Assessment Module (RGPAM) now measures five optical quality factors and four geolocation accuracy factors in near real-time. Testing with GOCI-II data has shown that RGPAM's functions, including data processing, display and download of measurement results, work well. The performance metrics obtained through RGPAM are expected to serve as foundational data for real-time radiometric correction model enhancements, assessment of L1 data quality consistency, and the development of reprocessing strategies to address identified issues related to the GOCI-II detector's sensitivity degradation.

정지궤도 위성의 충돌방지를 위한 회피기동

  • Lee, Byeong-Seon;Hwang, Yu-Ra;Baek, Myeong-Jin;Kim, Bang-Yeop
    • The Bulletin of The Korean Astronomical Society
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    • v.37 no.2
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    • pp.161.1-161.1
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    • 2012
  • 지구 정지궤도는 위성통신, 지구관측 그리고 우주과학을 위해 매우 귀중하고 제한된 자원으로 인식된다. 이에 따라 Inter-Agency Space Debris Coordination Committee (IADC)에서는 정지궤도에서 수명이 종료되는 위성에 대해서 정지궤도에 영향을 미치지 않도록 더 높은 고도로 폐기기동을 수행하도록 권고하고 있다. 그렇지만 여러 가지 사정으로 정상적인 폐기기동을 수행하지 않은 위성들이 많이 있으며 이와 같은 위성들은 정지궤도에서 운영되고 있는 위성에 접근하여 충돌위험을 야기하고 있다. 우리나라의 정지궤도 통신해양기상위성인 천리안은 2010년 6월 26일에 발사되어 동경 128.2도에서 성공적으로 운영되고 있다. 지난 2년 동안 천리안 위성의 궤도구간에 우주물체가 접근하여 충돌위험이 발생한 사례가 3 건이 있었으며 그 중 한 건인 러시아의 라두가 1-7 위성이 접근한 2011년 2월 7일에는 천리안 위성의 회피기동을 수행하였다. 다른 두 가지 사례는 2011년 6월 19일 러시아의 COSMOS 2379의 접근과 2012년 4월 6일 러시아의 SL-12 R/B(2)의 접근이다. 본 논문에서는 정지궤도 위성을 운영하고 있을 때 다른 우주물체가 접근하여 충돌위험이 발생했을 때 어떤 과정을 거쳐서 회피기동을 수행해야 하는가에 대한 문제를 다루고자 한다. 정지궤도 위성과 우주물체와의 거리차이를 최대화할 수 있는 회피기동 시각을 찾아내고 최근접 시각에 있어서 반경방향, 진행방향, 그리고 수직방향에서의 거리차이를 분석한다.

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Estimation for Ground Air Temperature Using GEO-KOMPSAT-2A and Deep Neural Network (심층신경망과 천리안위성 2A호를 활용한 지상기온 추정에 관한 연구)

  • Taeyoon Eom;Kwangnyun Kim;Yonghan Jo;Keunyong Song;Yunjeong Lee;Yun Gon Lee
    • Korean Journal of Remote Sensing
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    • v.39 no.2
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    • pp.207-221
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    • 2023
  • This study suggests deep neural network models for estimating air temperature with Level 1B (L1B) datasets of GEO-KOMPSAT-2A (GK-2A). The temperature at 1.5 m above the ground impact not only daily life but also weather warnings such as cold and heat waves. There are many studies to assume the air temperature from the land surface temperature (LST) retrieved from satellites because the air temperature has a strong relationship with the LST. However, an algorithm of the LST, Level 2 output of GK-2A, works only clear sky pixels. To overcome the cloud effects, we apply a deep neural network (DNN) model to assume the air temperature with L1B calibrated for radiometric and geometrics from raw satellite data and compare the model with a linear regression model between LST and air temperature. The root mean square errors (RMSE) of the air temperature for model outputs are used to evaluate the model. The number of 95 in-situ air temperature data was 2,496,634 and the ratio of datasets paired with LST and L1B show 42.1% and 98.4%. The training years are 2020 and 2021 and 2022 is used to validate. The DNN model is designed with an input layer taking 16 channels and four hidden fully connected layers to assume an air temperature. As a result of the model using 16 bands of L1B, the DNN with RMSE 2.22℃ showed great performance than the baseline model with RMSE 3.55℃ on clear sky conditions and the total RMSE including overcast samples was 3.33℃. It is suggested that the DNN is able to overcome cloud effects. However, it showed different characteristics in seasonal and hourly analysis and needed to append solar information as inputs to make a general DNN model because the summer and winter seasons showed a low coefficient of determinations with high standard deviations.

Development and validation of daily evapotranspiration based on COMS satellite and surface energy budget equation (천리안 위성 자료와 지표 에너지 수지식을 이용한 위성 일 증발산량 알고리즘 개발 및 검증)

  • Park, Na-Yeon;Kim, Youngmi;Shin, Jinho;Lyu, Sang Jin
    • Proceedings of the Korea Water Resources Association Conference
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    • 2016.05a
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    • pp.10-14
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    • 2016
  • 육상의 증발산량(evapotranspiration, ET)은 대기 중 수증기의 상변화를 통해 대기와 지표 사이의 물과 에너지 순환에 영향을 미치며, 강수량, 유출량과 함께 수자원에 영향을 미치는 주요 인자이다. 강수량과 유출량은 직접 관측이 가능한 반면, 증발산량은 숨어있는 잠열로서 관측하기 어렵다. 플럭스 타워나 라이지메타(Lysimeter) 등을 이용하여 증발산량을 직접 관측하고 있으나 이들 지상관측은 일부 지점(point)에서 제한적으로 이루어지고 있으며, 관측 지점의 수를 확대하게되면 관측 기기의 유지 보수 등의 많은 시간과 비용이 든다는 한계가 있다. 이러한 지상관측의 한계를 극복하고 넓은 영역의 증발산량 변화를 관측하기 위해 위성을 이용한 증발산량을 추정하는 연구가 활발히 진행되고 있다. 기상청 국가기상위성센터(National Meteorological Satellite Center, NMSC)에서는 우리나라 최초의 정지 기상 위성인 천리안 위성(Communication, Ocean and Meteorological Satellite, COMS) 자료를 지표 에너지 수지식(Surface Energy Budget Equation)에 적용하여 동아시아 지역의 지면과 식생 특성을 반영한 '일(daily) 증발산량 산출 알고리즘'을 개발하였다. 현열을 계산하기 위해 다양한 입력 변수가 사용되어지고 계산 과정이 복잡하기 때문에, 본 연구에서는 '반 경험적인 계수인 B 계수 모델'을 사용하여 현열 산출 기법을 단순화하였다. 본 알고리즘을 이용하여 2011년 4월부터 현재까지 동아시아(위도 $20{\sim}50^{\circ}N$, 경도 $100{\sim}145^{\circ}E$)의 해상도 1km의 일 증발산량을 산출하였고, 위성 증발산량의 검증을 위해 지면 특성이 다른 청미천(농경지), 설마천(혼효림) 지역의 플럭스 타워 증발산량 자료(유량조사사업단 제공)와 비교 분석하였다. 2011년 4월부터 2014년 12월까지 청미천 지역에서의 플럭스 타워 관측과 비교한 결과, 총 665개 자료에 대하여 RMSE는 2.82 mm/day, Bias는 2.56 mm/day의 결과를 보였다. 동일한 기간에 대하여 설마천 지역에서의 플럭스 타워 관측과 비교한 결과, 총 582개 자료에 대하여 RMSE는 1.92 mm/day, Bias는 1.45 mm/day의 결과를 보였다. 기상청 국가기상위성센터의 위성증발산량이 봄과 가을철에 다소 높게 산출되는 경향이 있었으나, 증발산량의 변화경향은 유사하게 나타났다. 이러한 결과를 바탕으로 동아시아 지역 위성 증발산량 변화를 감시하고 있으며 향후, 수문 및 기후 분야에서 가뭄 모니터링 등의 연구에도 활용할 수 있을 것이다.

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Current Status and Results of In-orbit Function, Radiometric Calibration and INR of GOCI-II (Geostationary Ocean Color Imager 2) on Geo-KOMPSAT-2B (정지궤도 해양관측위성(GOCI-II)의 궤도 성능, 복사보정, 영상기하보정 결과 및 상태)

  • Yong, Sang-Soon;Kang, Gm-Sil;Huh, Sungsik;Cha, Sung-Yong
    • Korean Journal of Remote Sensing
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    • v.37 no.5_2
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    • pp.1235-1243
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    • 2021
  • Geostationary Ocean Color Imager 2 (GOCI-II) on Geo-KOMPSAT-2 (GK2B)satellite was developed as a mission successor of GOCI on COMS which had been operated for around 10 years since launch in 2010 to observe and monitor ocean color around Korean peninsula. GOCI-II on GK2B was successfully launched in February of 2020 to continue for detection, monitoring, quantification, and prediction of short/long term changes of coastal ocean environment for marine science research and application purpose. GOCI-II had already finished IAC and IOT including early in-orbit calibration and had been handed over to NOSC (National Ocean Satellite Center) in KHOA (Korea Hydrographic and Oceanographic Agency). Radiometric calibration was periodically conducted using on-board solar calibration system in GOCI-II. The final calibrated gain and offset were applied and validated during IOT. And three video parameter sets for one day and 12 video parameter sets for a year was selected and transferred to NOSC for normal operation. Star measurement-based INR (Image Navigation and Registration) navigation filtering and landmark measurement-based image geometric correction were applied to meet the all INR requirements. The GOCI2 INR software was validated through INR IOT. In this paper, status and results of IOT, radiometric calibration and INR of GOCI-II are analysed and described.

Efficient Satellite Solar Array Drive Assembly Operation to Compensate Equation of Time (균시차 보상을 위한 효율적인 위성 태양전지판구동기 운용)

  • Park, Keun Joo;Park, Young-Woong
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.47 no.12
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    • pp.890-896
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    • 2019
  • Due to the eccentricity of the Earth's orbit around the Sun and the obliquity of the Earth rotation axis against ecliptic frame, the apparent solar time differs from the mean solar time. Since the solar array of a GEO satellite makes a turn in mean solar day, the Sun pointing error of solar array is introduced over the year due to the equation of time. In this paper, efficient methods of compensating the equation of time to keep the solar array pointing the Sun are presented and verified with realistic simulation.

GOCI-II Based Low Sea Surface Salinity and Hourly Variation by Typhoon Hinnamnor (GOCI-II 기반 저염분수 산출과 태풍 힌남노에 의한 시간별 염분 변화)

  • So-Hyun Kim;Dae-Won Kim;Young-Heon Jo
    • Korean Journal of Remote Sensing
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    • v.39 no.6_2
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    • pp.1605-1613
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    • 2023
  • The physical properties of the ocean interior are determined by temperature and salinity. To observe them, we rely on satellite observations for broad regions of oceans. However, the satellite for salinity measurement, Soil Moisture Active Passive (SMAP), has low temporal and spatial resolutions; thus, more is needed to resolve the fast-changing coastal environment. To overcome these limitations, the algorithm to use the Geostationary Ocean Color Imager-II (GOCI-II) of the Geo-Kompsat-2B (GK-2B) was developed as the inputs for a Multi-layer Perceptron Neural Network (MPNN). The result shows that coefficient of determination (R2), root mean square error (RMSE), and relative root mean square error (RRMSE) between GOCI-II based sea surface salinity (SSS) (GOCI-II SSS) and SMAP was 0.94, 0.58 psu, and 1.87%, respectively. Furthermore, the spatial variation of GOCI-II SSS was also very uniform, with over 0.8 of R2 and less than 1 psu of RMSE. In addition, GOCI-II SSS was also compared with SSS of Ieodo Ocean Research Station (I-ORS), suggesting that the result was slightly low, which was further analyzed for the following reasons. We further illustrated the valuable information of high spatial and temporal variation of GOCI-II SSS to analyze SSS variation by the 11th typhoon, Hinnamnor, in 2022. We used the mean and standard deviation (STD) of one day of GOCI-II SSS, revealing the high spatial and temporal changes. Thus, this study will shed light on the research for monitoring the highly changing marine environment.

A Preliminary Analysis on the Radiometric Difference Across the Level 1B Slot Images of GOCI-II (GOCI-II Level 1B 분할영상 간의 복사 편차에 대한 초기 분석)

  • Kim, Wonkook;Lim, Taehong;Ahn, Jae-hyun;Choi, Jong-kuk
    • Korean Journal of Remote Sensing
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    • v.37 no.5_2
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    • pp.1269-1279
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    • 2021
  • Geostationary Ocean Color Imager II (GOCI-II), which are now operated successfully since its launch in 2020, acquires local area images with 12 Level 1B slot images that are sequentially acquired in a 3×4 grid pattern. The boundary areas between the adjacent slots are prone to discontinuity in radiance, which becomes even more clear in the following Level 2 data, and this warrants the precise analysis and correction before the distribution. This study evaluates the relative radiometric biases between the adjacent slots images, by exploiting the overlapped areas across the images. Although it is ideal to derive the statistics from humongous images, this preliminary analysis uses just the scenes acquired at a specific time to understand its general behavior in terms of bias and variance in radiance. Level 1B images of February 21st, 2021 (UTC03 = noon in local time) were selected for the analysis based on the cloud cover, and the radiance statistics were calculated only with the ocean pixels. The results showed that the relative bias is 0~1% in all bands but Band 1 (380 nm), while Band 1 exhibited a larger bias (1~2%). Except for the Band 1 in slot pairs aligned North-South, biases in all direction and in all bands turned out to have biases in the opposite direction that the sun elevation would have caused.

Introduction on the Products and the Quality Management Plans for GOCI-II (천리안 해양위성 2호 산출물 및 품질관리 계획)

  • Lee, Sun-Ju;Lee, Kyeong-Sang;Han, Tae Hyun;Moon, Jeong-Eon;Bae, Sujung;Choi, Jong-kuk
    • Korean Journal of Remote Sensing
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    • v.37 no.5_2
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    • pp.1245-1257
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    • 2021
  • GOCI-II, succeeding the mission of GOCI, was launched in February 2020 and has been in regular operation since October 2020. Korea Institute of Ocean Science and Technology (KIOST) processes and produces in real time Level-1B and 26 Level-2 outputs, which then are provided by Korea Hydrographic and Oceanographic Agency (KHOA). We introduced current status of regular GOCI-II operation and showed future improvement. Basic GOCI-II products including chlorophyll-a, total suspended materials, and colored dissolved organic matter concentration, are induced by OC4 and YOC algorithms, which were described in detail. For the full disk (FD), imaging schedule was established considering solar zenith angle and sun glint during the in-orbital test, but improved by further considering satellite zenith angle. The number of slots satisfying the condition 'Best Ocean' significantly increased from 15 to 78. GOCI-II calibration requirements were presented based on that by European Space Agency (ESA) and candidate fixed locations for calibrating local observation area were. The quality management of FD uses research ships and overseas bases of KIOST, but it is necessary to establish an international calibration/validation network. These results are expected to enhance the understanding of users for output processing and help establish detailed plans for future quality management tasks.