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        검색결과 18

        1.
        2018.04 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Minjin Kim, Myungshin Im, Jeong-Eun Lee, Sung-Joon Park, Bongkon Moon, Dae-Hee Lee, Won-Kee Park, Youngsoo Jo, Duk-Hang Lee, Kyeongyeon Ko, Il-Joong Kim, Youngsik Park, Yujin Yang, Jongwan Ko, Hyung Mok Lee, Hyunjin Shim, Goo-Hwan Shin, Jangsoo Chae, Toshio Matsumoto, NISS Team, SPHEREx Korean Consortium
        2.
        2017.10 구독 인증기관·개인회원 무료
        Bongkon Moon, Kyeongyeon Ko, Duk-Hang Lee, Woong-seob Jeong, Sung-Joon Park, Dae-Hee Lee, Jeonghyun Pyo, Won-Kee Park, Il-Joong Kim, Youngsik Park, Mingyu Kim, Ukwon Nam, Minjin Kim, Jongwan Ko, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae, Toshio Matsumoto
        3.
        2017.10 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Bongkon Moon, Sung-Joon Park, Dae-Hee Lee, Jeonghyun Pyo, Won-Kee Park, Il-Joong Kim, Youngsik Park, Kyeongyeon Ko, Mingyu Kim, Minjin Kim, Jongwan Ko, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae, Toshio Matsumoto
        4.
        2017.04 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Bongkon Moon, Sung-Joon Park, Dae-Hee Lee, Jeonghyun Pyo, Won-Kee Park, Il-Joong Kim, Youngsik Park, Duk-Hang Lee, Kyeongyeon Ko, Mingyu Kim, Ukwon Nam, Minjin Kim, Jongwan Ko, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae, Toshio Matsumoto
        5.
        2016.10 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Sung-Joon Park, Bongkon Moon, Dae-Hee Lee, Jeonghyun Pyo, Won-Kee Park, Il-Joong Kim, Youngsik Park, Duk-Hang Lee, Kyeongyeon Ko, Mingyu Kim, Ukwon Nam, Minjin Kim, Jongwan Ko, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae, Toshio Matsumoto
        6.
        2016.04 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Sung-Joon Park, Bongkon Moon, Dae-Hee Lee, Won-Kee Park, Duk-Hang Lee, Kyeongyeon Ko, Jeonghyun Pyo, Il-Joong Kim, Youngsik Park, Ukwon Nam, Minjin Kim, Jongwan Ko, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae, Toshio Matsumoto, NISS Team, SPHEREx Korean Consortium
        7.
        2015.10 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Sung-Joon Park, Bongkon Moon, Dae-Hee Lee, Won-Kee Park, Duk-Hang Lee, Kyeongyeon Ko, Jeonghyun Pyo, Il-Joong Kim, Youngsik Park, Ukwon Nam, Minjin Kim, Jongwan Ko, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae, Toshio Matsumoto
        8.
        2015.04 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Sung-Joon Park, Bongkon Moon, Dae-Hee Lee, Won-Kee Park, Duk-Hang Lee, Kyeongyeon Ko, Jeonghyun Pyo, Il-Joong Kim, Youngsik Park, Ukwon Nam, Minjin Kim, Jongwan Ko, Yong-Seon Song, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae, Toshio Matsumoto
        9.
        2014.10 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Sung-Joon Park, Bongkon Moon, Dae-Hee Lee, Won-Kee Park, Duk-Hang Lee, Kyeongyeon Ko, Jeonghyun Pyo, Il-Joong Kim, Youngsik Park, Ukwon Nam, Chan Park, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae, Toshio Matsumoto
        10.
        2014.04 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Sung-Joon Park, Kwijong Park, Bongkon Moon, Dae-Hee Lee, Jeonghyun Pyo, Youngsik Park, Il-Joong Kim, Won-Kee Park, Duk-Hang Lee, Chan Park, Kyeongyeon Ko, Ukwon Nam, Wonyong Han, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae, Toshio Matsumoto
        11.
        2013.10 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Sung-Joon Park, Kwijong Park, Dae-Hee Lee, Bongkon Moon, Jeonghyun Pyo, Youngsik Park, Il-Joong Kim, Won-Kee Park, Duk-Hang Lee, Chan Park, Kyeongyeon Ko, Ukwon Nam, Wonyong Han, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae
        12.
        2013.04 구독 인증기관·개인회원 무료
        Woong-Seob Jeong, Dae Hee Lee, Bongkon Moon, Kwijong Park, Sung-Joon Park, Jeonghyun Pyo, Youngsik Park, Il-Joong Kim, Won-Kee Park, Mingyu Kim, Duk-Hang Lee, Ukwon Nam, Wonyong Han, Myungshin Im, Hyung Mok Lee, Jeong-Eun Lee, Goo-Hwan Shin, Jangsoo Chae
        13.
        2021.03 KCI 등재 SCOPUS 서비스 종료(열람 제한)
        Ji-Hyeon Yoo, Dae-Young Lee, Eojin Kim, Hoonkyu Seo, Kwangsun Ryu, Kyung-Chan Kim, Kyoungwook Min, Jongdae Sohn, Junchan Lee, Jongho Seon, Kyung-In Kang, Seunguk Lee, Jaeheung Park, Goo-Hwan Shin, SungOg Park
        In this paper, we present observations of the Space Radiation Detectors (SRDs) onboard the Next Generation Small Satellite-1 (NEXTSat-1) satellite. The SRDs, which are a part of the Instruments for the study of Stable/Storm-time Space (ISSS), consist of the Medium-Energy Particle Detector (MEPD) and the High-Energy Particle Detector (HEPD). The MEPD can detect electrons, ions, and neutrals with energies ranging from 20 to 400 keV, and the HEPD can detect electrons over an energy range from 0.35 to 2 MeV. In this paper, we report an event where particle flux enhancements due to substorm injections are clearly identified in the MEPD A observations at energies of tens of keV. Additionally, we report a specific example observation of the electron distributions over a wide energy range in which we identify electron spatial distributions with energies of tens to hundreds of keV from the MEPD and with energy ranging up to a few MeV from the HEPD in the slot region and outer radiation belts. In addition, for an ~1.5-year period, we confirm that the HEPD successfully observed the well-known outer radiation belt electron flux distributions and their variations in time and L shell in a way consistent with the geomagnetic disturbance levels. Last, we find that the inner edge of the outer radiation belt is mostly coincident with the plasmapause locations in L, somewhat more consistent at subrelativistic energies than at relativistic energies. Based on these example events, we conclude that the SRD observations are of reliable quality, so they are useful for understanding the dynamics of the inner magnetosphere, including substorms and radiation belt variations.
        14.
        2019.09 KCI 등재 SCOPUS 서비스 종료(열람 제한)
        Goo-Hwan Shin, Dong-Guk Kim, Se-Jin Kwon, Hu-Seung Lee
        The attitude information of spacecraft can be obtained by the sensors attached to it using a star tracker, three-axis magnetometer, three-axis gyroscope, and a global positioning signal receiver. By using these sensors, the spacecraft can be maneuvered by actuators that generate torques. In particular, electromagnetic-torque bars can be used for attitude control and as a momentum-canceling instrument. The spacecraft momentum can be created by the current through the electrical circuits and coils. Thus, the current around the electromagnetic-torque bars is a critical factor for precisely controlling the spacecraft. In connection with these concerns, a solar-cell array can be considered to prevent generation of a magnetic dipole moment because the solar-cell array can introduce a large amount of current through the electrical wires. The maximum value of a magnetic dipole moment that cannot affect precise control is 0.25 A·m², which takes into account the current that flows through the reaction-wheel assembly and the magnetic-torque current. In this study, we designed a 300-W solar cell array and presented an optimal wire-routing method to minimize the magnetic dipole moment for space applications. We verified our proposed method by simulation.
        15.
        2019.06 KCI 등재 SCOPUS 서비스 종료(열람 제한)
        Goo-Hwan Shin, Se-Jin Kwon, Hu-Seung Lee
        Spacecraft requires sufficient power in orbit to perform its mission. So as to comply with system requirements, the sufficient power should be made by a solar cell array by photovoltaic power conversion. A life time of space program depends on its mission considering parts reliability and parts grade. Based on the mission life time, power equipment might be designed to meet specifications. In outer space, solar cell array might generate the dc power by photovoltaic conversion effects and GaInP/GaAs/Ge solar cells are used in this study. Space programs that require more than five years should select parts for high reliability applications. Therefore, reliability analysis for high reliability applications should be performed to check its fulfilment of the requirements. This program should also require more five years for its mission and we performed its analysis using parts count method (PCM) for its reliability. Finally, we performed reliability analysis and obtained quantitative figures found out 99.9%. In this study, we presented the reliability analysis of the 300 W GaInP/GaAs/Ge solar cell array.
        16.
        2017.12 KCI 등재 SCOPUS 서비스 종료(열람 제한)
        Kwangsun Ryu, Junchan Lee, Songoo Kim, Taejin Chung, Goo-Hwan Shin, Wonho Cha, Kyoungwook Min, Vitaly P. Kim
        A space plasma facility has been operated with a back-diffusion-type plasma source installed in a mid-sized vacuum chamber with a diameter of ~1.5 m located in Satellite Technology Research Center (SaTReC), Korea Advanced Institute of Science and Technology (KAIST). To generate plasma with a temperature and density similar to the ionospheric plasma, nickel wires coated with carbonate solution were used as filaments that emit thermal electrons, and the accelerated thermal electrons emitted from the heated wires collide with the neutral gas to form plasma inside the chamber. By using a disk-type Langmuir probe installed inside the vacuum chamber, the generation of plasma similar to the space environment was validated. The characteristics of the plasma according to the grid and plate anode voltages were investigated. The grid voltage of the plasma source is realized as a suitable parameter for manipulating the electron density, while the plate voltage is suitable for adjusting the electron temperature. A simple physical model based on the collision cross-section of electron impact on nitrogen molecule was established to explain the plasma generation mechanism.
        17.
        2014.09 KCI 등재 SCOPUS 서비스 종료(열람 제한)
        Gyeong-Bok Jo, Jongdae Sohn, Cheong Rim Choi, Yu Yi, Kyoung-Wook Min, Suk-Bin Kang, Go Woon Na, Goo-Hwan Shin
        Next Generation Small Satellite-1 (NEXTSat-1) is scheduled to launch in 2017 and Instruments for the Study of Space Storm (ISSS) is planned to be onboard the NEXTSat-1. High Energy Particle Detector (HEPD) is one of the equipment comprising ISSS and the main objective of HEPD is to measure the high energy particles streaming into the Earth radiation belt during the event of a space storm, especially, electrons and protons, to obtain the flux information of those particles. For the design of HEPD, the Geometrical Factor was calculated to be 0.05 to be consistent with the targets of measurement and the structure of telescope with field of view of 33.4° was designed using this factor. In order to decide the thickness of the detector sensor and the classification of the detection channels, a simulation was performed using GEANT4. Based on the simulation results, two silicon detectors with 1 mm thickness were selected and the aluminum foil of 0.05 mm is placed right in front of the silicon detectors to shield low energy particles. The detection channels are divided into an electron channel and two proton channels based on the measured LET of the particle. If the measured LET is less than 0.8 MeV, the particle belongs to the electron channel, otherwise it belongs to proton channels. HEPD is installed in the direction of 0°,45°,90° against the along-track of a satellite to enable the efficient measurement of high energy particles. HEPD detects electrons with the energy of 0.1 MeV to several MeV and protons with the energy of more than a few MeV. Thus, the study on the dynamic mechanism of these particles in the Earth radiation belt will be performed.
        18.
        2014.09 KCI 등재 SCOPUS 서비스 종료(열람 제한)
        Goo-Hwan Shin, Jang-Soo Chae, Kyung-Wook Min, Jong-Dae Sohn, Woong-Seob Jeong, Dae-Hee Lee
        The communications link in a space program is a crucial point for upgrading its performance by handling data between spacecraft bus and payloads, because spacecraft’s missions are related to the data handling mechanism using communications ports such as a controlled area network bus (CAN Bus) and a universal asynchronous receiver and transmitter (UART). The NEXTSat-1 has a lot of communications ports for performing science and technology missions. However, the top level system requirements for the NEXTSat-1 are mass and volume limitations. Normally, the communications for units shall be conducted by using point to point link which require more mass and volume to interconnect. Thus, our approach for the novel communications link in the NEXTSat-1 program is to use CAN and serializer and deserializer low voltage differential signal (SerDesLVDS) to meet the system requirements of mass and volume. The CAN Bus and SerDesLVDS were confirmed by using already defined communications link for our missions in the NEXTSat-1 program and the analysis results were reported in this study in view of data flow and size analysis.