A disposal research program for HLW has been carried out since 1997 with the aim of establishing the preliminary concept of geological disposal in Korea. The preliminary studies were conducted by conducting manufacture and installation of an in-situ nuclide migration system in KAERI Underground Research Tunnel (KURT). Nuclides could be released from a deep underground disposal facility due to thermal and physicochemical changes into the surrounding environments. Understanding on the migration and retardation processes of nuclides in a fractured rock is very important in the safety assessment for the radioactive waste disposal. In this study, we evaluated fracture filling minerals and aperture distribution (3D map) along the fracture surfaces under the controlled conditions. The fractured granite block which has a single natural fracture of 1 m scale was sampled in a domestic quarry (Iksan), which groundwater had been flowed through. This rock has an interconnected porosity of 0.36 with the specific gravity of 2.57. The experimental set-up with the granite block with dimensions of 100×60×60 (cm). A flow of de-ionized water through the fracture between pairs of boreholes was initiated and the pressure required to maintain a steady flow was measured. In additions, fracture filling minerals were sampled and examined by mineralogical and chemical analyses. There are phyllosilicate minerals such as illite, kaolinite, and chlorite including calcite, which are fracture filling minerals. The illite and kaolinite usually coexist in the fracture, where their content ratio is different according to which mineral is predominant. For the evaluation of fracture, surface was divided into an imaginary matrix of 20×20 sub-squares as schematically. The calculated results are expressed as a two dimensional contour and a three dimensional surface plot for the aperture distribution in the fracture. The aperture value is distributed between 0.075 and 0.114 mm and the mean aperture value is 0.095 mm. The fracture volume is about 55 ml. Also the 137Cs sorption (batch test) distribution coefficients increased to Kd = 800~860 mL/g in the fractured rock because of the presence of secondary minerals formed by weathering processes, compared to the bedrock (Kd = 750~830 mL/g). These results will be very useful for the evaluation of environmental factor affecting the nuclides migration and retardation.
In this study, we evaluated fracture filling minerals and aperture distribution along the fracture surfaces under the controlled conditions. The fractured granite block which has a single natural fracture of 1 m scale was sampled in a domestic quarry (Iksan), which groundwater had been flowed through. This rock has an interconnected porosity of 0.36 with the specific gravity of 2.57. The experimental setup with the granite block with dimensions of 100×60×60 (cm). The fracture is sealed with rock silicone rubbers when it intersects the outer surfaces of the block and the outer surfaces are coated with the silicone to prevent loss of water by evaporation. Nine boreholes were drilled of orthogonal direction at the fracture surface. A flow of de-ionized water through the fracture between pairs of boreholes was initiated and the pressure required to maintain a steady flow was measured. In additions, fracture filling minerals were sampled and examined by mineralogical and chemical analyses. There are phyllosilicate minerals such as illite, kaolinite, and chlorite including calcite, which are fracture filling minerals. The illite and kaolinite usually coexist in the fracture, where their content ratio is different according to which mineral is predominant. For the evaluation of fracture, surface was divided into an imaginary matrix of 20×20 sub-squares as schematically. The calculated results are expressed as a two dimensional contour and a three dimensional surface plot for the aperture distribution in the fracture. The aperture value is distributed between 0.075 and 0.114 mm and the mean aperture value is 0.082 mm. The fracture volume is about 49 ml. These results will be very useful for the evaluation of environmental factor affecting the nuclides migration and retardation.
한국원자력연구원에 위치한 KURT 지하처분연구시설은 2003년 부지조사를 시작으로 최근에 완공하였으며, 그 규모는 길이 약 180m, 폭 6m, 그리고 높이 6m의 말굽형 단면을 가진 터널이고 지하 약 90m 깊이에 위치하고 있다. 터널 굴착이 100m 정도 진행되었을 때, 신선한 암석 및 풍하가 진행된 암석, 그리고 균열 및 단층 충전물질로 채워진 부분을 대상으로 시료를 채취하여 광물 및 화학적 분석을 실시하였다. KURT 암반에는 일라이트, 스멕타이트, 녹니석과 같은 층상규산염광물들과 방해석 등이 단층 및 균열을 충전하고 있다. 일라이트나 스멕타이트는 단열대에 주로 혼합광물로 존재하고 있으며, 우세종에 따라 입도에 따른 함량비에 차이가 있다. 산화철로 피복된 암석과 단열충전물 시료에는 우라늄 및 토륨의 함량이 신선한 암석에 비해 높았으며, 이는 암석으로부터 서서히 용탈되거나 지하수 및 열수에 용존되어 있던 핵종 원소들이 단열을 따라 이동하면서 산화철 및 단열충전광물들에 의해 선택적으로 수착되거나 공침된 결과로 해석된다. 본 연구결과는 향후 지하심부 고준위방사성폐기물 처분관련 장기안정성 예측시 핵종 이동 및 지연에 영향을 끼치는 환경 인자 평가에 귀중한 자료로 활용될 것이다.
방사성폐기물의 처분연구와 관련하여 대전 유성지역 화강암내 심부시추공 시추코아의 단열 광물들에 대한 광물학적 특성을 연구하였다. 유성지역의 심부시추공들에는 다수의 단열대가 발달해 있으며 국지적인 열수변질작용이 중첩되어 있다. YS-01 시추코아에 대한 전암분석결과 -90 m∼-130 m 구간과 -230 m ∼-250 m 구간에서 급격한 SiO2 함량 감소와 Al2O3, CaO, L.O.I 값의 증가가 관찰되며 이는 단열충전광물의 생성과 관련이 있다. 이러한 단열충전광물에 대한 XRD분석결과 불석광물(로몬타이트, 휼란다이트), 방해석, 일라이트(2M1과 1Md 다형), 녹니석, 녹염석, 카올리나이트 등이 확인되었으며, 산출되는 양은 방해석 불석광물 〉 일라이트 〉 녹염석 녹니석 〉 카올리나이트의 순이다. SEM관찰 및 EPMA 분석결과, 단열충전광물들의 심도에 따른 조직 및 화학특성의 변화는 관찰되지 않는다. 연구지역은 화강암반내에 발달된 단열대가 지하수의 유동로로 작용하여 오랜 기간에 걸친 물-암석 반응이 진행되었고, 또한 저온의 열수변질작용이 중첩되었기 때문에 이들에 의한 단열충전광물의 생성기원 연구가 필요하다.