• Title/Summary/Keyword: 비자성 자기실험실

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ADD's Test Facilities for National Defense Magnetic Research (국방 자기분야 연구를 위한 국방과학연구소 시험시설)

  • Yang, Chang-Seob;Chung, Hyun-Ju;Jung, Woo-Jin
    • Journal of the Korean Magnetics Society
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    • v.24 no.4
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    • pp.114-122
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    • 2014
  • Since 1990, Agency for Defense Development (ADD) has been operating the nonmagnetic laboratory and the magnetic sensors laboratory to develop the key technology of the ship's magnetic silencing and to research the high performance magnetic sensors used in the weapon system and to perform the technical support for Republic of Korea Navy. Recently, the main test equipment in the laboratories has been upgraded to improve the measurement and analysis abilities against magnetic target and to evaluate the performance of the magnetic sensors. In this paper, the capability and the current state of magnetic test facilities of ADD are described.

자기 표준

  • Park, Po-Gyu;Kim, Yeong-Gyun;Kim, Gyu-Tae
    • 전기의세계
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    • v.58 no.11
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    • pp.51-56
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    • 2009
  • 산업이 고도로 발달함에 따라 자기장의 정밀 측정 및 발생 등에 대한 관심이 증대되고 있다. 정밀 자기장 측정기를 이용하여 생체.의료공학, 지하광물 및 매설물 탐사, 지진 및 전파방해 예측, 지구물리탐사 및 우주 자기장 분포 측정, 항법장치, 국방 및 우주항공분야, 송유관 부식 연구 등에 활용되고 있다. KRISS에서는 첨단 자기분야의 표준/정밀측정 보급 지원을 위해 자기장 범위 $20\;{\mu}T$ ~ 1.2 mT에서 비자성 실험실, 지구자기장 상쇄장치 등을 이용하여 불확도 (4 ~ 21) ${\mu}T$/T, 자기장 범위 1 mT ~ 2.5 T에서는 헬름홀스 코일, 전자석, NMR 자기장 측정기 등을 사용하여 불확도 (10 ~ 80) ${\mu}T$/T의 표준을 유지하고 있다. 자기장는 자속(magnetic flux) 및 자속밀도(magnetic flux density)로 나눌수 있으며, 그 SI 단위는 웨버(Wb, weber)와 테슬러(T, tesla)이다. 그러나 아직까지 자성재료 등의 특성을 측정하는 전문가들은 SI 단위보다는 지금까지 널리 사용되어온 cgs 단위인 맥스웰(Mx, maxwell), 가우스(G, gauss), 외르스테드(Oe, oersted) 등에 익숙해져 있다. 앞으로 자기분야 전문가들도 기본 SI 단위로부터 소급이 유지되는 SI 자기단위의 사용을 기대해 본다.

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A Study on Dipole Modeling Method for Ship's Magnetic Anomaly using Singular Value Decomposition Technique (특이치 분해 방법에 의한 함정 자기원 다이폴 모델링 방안 연구)

  • Yang, Chang-Seob;Chung, Hyun-Ju
    • Journal of the Korean Magnetics Society
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    • v.17 no.6
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    • pp.259-264
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    • 2007
  • This paper describes the mathematical modeling method for the static magnetic field signature generated by a magnetic scale model. we proposed the equivalent dipole modeling method utilizing a singular value decomposition technique from magnetic field signatures by magnetic sensors are located special depths below the scale model. The proposed dipole modeling method was successfully verified through comparisons with the real measured values in our non-magnetic laboratory. Using the proposed method, it is possible to predict and analyze static magnetic field distributions at any difference depths generated from the real ships as well as a scale model ship.

A Study on Magnetic Signature Analysis Techniques of a Scaled Model Ship using Earth Magnetic Field Simulator (지구자기장 시뮬레이터를 이용한 모델 함정의 자기신호 분석 기법 연구)

  • Yang, Chang-Seob;Chung, Hyun-Ju;Jeon, Jae-Jin
    • Journal of the Korea Institute of Military Science and Technology
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    • v.16 no.4
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    • pp.465-472
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    • 2013
  • Since 1990, Agency for Defense Development is operating the non-magnetic laboratory for the development of key technology for the underwater magnetic stealth part, the research of the magnetic application weapons and the technical support for Korean Navy. Recently, we installed the new three-axis earth magnetic field simulator and the measurement system in the non-magnetic laboratory which is replacing the existing outdated facility. In this paper, we deal with the detailed design result of the earth magnetic field simulator and the measurement system. Also, we describe the effective method to separate the permanent and the induced magnetic field from the measured data for a scaled model ship using the earth magnetic field simulator and the measurement system.

Construction of Measuring System for Magnetic Properties Measurement of Azimuth Angle Sensor (방위각센서의 자기특성 측정 장치 제작)

  • Son, Derac
    • Journal of the Korean Magnetics Society
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    • v.24 no.1
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    • pp.22-27
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    • 2014
  • North indicating azimuth angle sensors have been used in airplanes, ships traditionally and nowadays employed in smart phones. For the azimuth and roll angle measurement of the sensor, 3-axis acceleration sensor was added to the 3-axis magnetic field sensor. In this work, we have constructed a measuring system for the measurement of the magnetic field and the angle uncertainty of the magnetic field sensors. Measuring system could be useful not only in non-magnetic laboratory but also in normal laboratory, we constructed small size of 3-axis Helmholtz coils for the compensation environment magnetic field (Earth magnetic field and magnetic field from building) and the generation of magnetic field for the test of magnetic field sensor. The constructed measuring system could compensate environment magnetic field below 10 nT level and generate 3-dimensional magnetic field with magnitude uncertainty of 0.2 % and angle error of $0.2^{\circ}$ within the volume of ${\pm}30mm$ diameter at center of Helmholtz coils. For the conformation of developed measuring system, We tested commercially available 3-axis magnetometer and heading sensor.