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가곡광산 연-아연 광체의 광대역유도분극 반응 특성

Spectral Induced Polarization Response Charaterization of Pb-Zn Ore Bodies at the Gagok mine

  • 신승욱 (한국지질자원연구원 탐사개발연구실) ;
  • 박삼규 (한국지질자원연구원 탐사개발연구실) ;
  • 신동복 (공주대학교 지질환경과학과)
  • Shin, Seungwook (Exploration Geophysics and Mining Engineering Dept., Korea Institute of Geoscience and Mineral Resources) ;
  • Park, Samgyu (Exploration Geophysics and Mining Engineering Dept., Korea Institute of Geoscience and Mineral Resources) ;
  • Shin, Dongbok (Department of Geoenvironmental Sciences, Kongju National University)
  • 투고 : 2014.10.28
  • 심사 : 2014.11.24
  • 발행 : 2014.11.30

초록

가곡광산은 스카른형 광상으로서 섬아연석, 방연석, 황동석, 자류철석 등의 황화광물을 수반한다. 이러한 광물은 전극분극에 의한 IP effect가 크기 때문에 광대역유도분극(spectral induced polarization; SIP)법을 이용하여 효과적으로 탐사할 수 있다. 따라서 이 연구는 황화광물 함량 및 입자의 크기를 지시하는 충전도와 시간상수를 실내 SIP 측정을 통하여 구하고 이로부터 가곡광산 내 두 광체에 대한 광화작용 차이를 비교하는데 목적을 두었다. 이를 위해 남쪽의 월곡광체와 북쪽의 선곡광체를 대상으로 시료를 채취하였다. 시료의 광화작용 특성을 파악하기 위해 휴대용 XRF 측정기를 이용하여 금속의 함량을 측정했고, 실내 암석 SIP 측정시스템을 이용하여 SIP 자료를 획득했다. XRF 측정결과 가곡광산 광체는 철, 아연, 납, 구리 등의 금속을 수반하고 있다. 특히 아연과 철의 함량이 다른 금속과 비교하여 매우 높았고, 이 두 금속은 현미경 관찰을 통하여 섬아연석과 자류철석에 의한 영향으로 판단하였다. SIP 등가회로 분석 결과, 월곡광체가 선곡광체에 비하여 금속의 함량이 더 높았기 때문에 황화광물을 더 많이 수반하는 것으로 판단했고, 이는 SIP에서 충전도의 결과와 잘 부합한다. 반면 선곡광체의 시간상수가 더 컸기 때문에 선곡광체가 월곡광체보다 황화광물 입자 크기가 더 큰 것으로 판단했다.

Gagok Mine, which is skarn deposits, includes sulfide minerals such as sphalerite, galena, chalcopyrite, and pyrrhotite. To explore these minerals, spectral induced polarization (SIP) is relatively effective compared to other geophysical exploration methods because there is a strong IP effect caused by electrode polarization. In the SIP, the chargeability related to sulfide mineral contents and the time constant related to the grain size of the minerals are obtained. For this reason, we aim to compare difference in the mineralized characteristics between two orebodies in the Gagok Mine by using the chargeability and the time constant. For this study, we sampled ores from the south of Wolgok orebody and the north of Sungok orebody. In order to recognize the mineralization characteristics, the metal content of the samples was measured by a potable XRF and the SIP data of the samples were acquired by using a laboratory SIP measurement system. As a result, the metals in the samples such as Pb, Zn, Cu, and Fe were detected by the portable XRF measurement. In particular, the Fe and Zn contents were far higher than the other metals. The Fe and the Zn were caused by the sphalerite and the pyrrhotite through microscopy. The Wolgok orebody had higher sulfide mineral contents than the Sungok orebody and the result corresponded with the chargeability result. However, we considered that the Sungok orebody had a larger sulfide mineral grain size than the Wolgok orebody because the time constant of the Sungok orebody was larger.

키워드

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피인용 문헌

  1. Application of Spectral Induced Polarization Method for Skarn Metallic Deposits Exploration vol.19, pp.4, 2016, https://doi.org/10.7582/GGE.2016.19.4.212