• 제목/요약/키워드: Aquifer flow

검색결과 236건 처리시간 0.02초

다층-대수층 시스템의 지하수 해석 (An Analysis of Groundwater Flow in the Multi-aquifer System)

  • 김민환;전일권;정재성
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제7권4호
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    • pp.10-16
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    • 2002
  • 본 연구의 목적은 누수대수층으로 분리된 다층-대수층에 대한 지하수 해석이다. Crank-Nicolson방법에 의한 유한차분법을 적용하여 1차원이며 정상상태인 2중 대수층 구조에 대해 해석해와 비교하였다. 수치해와 해석해는 거의 일치하였으므로 수치해를 2차원의 확장된 다층-대수층 구조에 적용하였다. 이는 한 개 또는 여러 개의 대수층에서 양수하는 경우에 각 대수층에서의 수두값을 계산할 수 있게 하였다. 본 연구는 지하수의 효율적인 운영에 도움이 될 것이다.

한국 부안 지역 해안 대수층 내의 지하수 유동 및 염분 이동에 대한 단층 존재의 영향 삼차원 수치 모의 (Three-Dimensional Numerical Simulation of Impacts of Fault Existence on Groundwater Flow and Salt Transport in a Coastal Aquifer, Buan, Korea)

  • 박주현;김중휘;김한태;김준모
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제13권5호
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    • pp.33-46
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    • 2008
  • 해안 대수층 내의 밀도 의존적 지하수 유동 및 염분 이동에 대한 단층 존재의 영향을 효과적으로 모사하고 정량적으로 평가하기 위하여 하나의 범용 다차원 수리동역학적 분산 수치 모델을 이용한 일련의 삼차원 수치 모델링이 수행되었다. 먼저 단층이 존재하는 실제 해안 대수층에 대해 보정을 병행한 일련의 정상 상태 수치 모델링을 수행한 다음에 이러한 단층이 존재하지 않는 해안 대수층에 대해 일련의 정상 상태 수치 모델링을 수행하여 그 결과를 서로 비교 분석하였다. 수치 모델링 결과는 단층이 실제 해안 대수층 내에 수리지질학적으로 중대한 불균질성과 진이방성을 야기시키며, 해안 대수층 내의 밀도 의존적 지하수 유동 및 염분 이동 그리고 해수 침투 양상이 이러한 단층의 존재 여부에 크게 그리고 광범위하게 좌우됨을 보여준다. 특히 단층은 단층면과 평행한 방향으로는 지하수 유동과 염분 이동에 대해서 통로로 작용하지만, 단층면과 수직한 방향으로는 지하수 유동과 염분 이동에 대해서 방벽으로 작용하는 것으로 해석된다.

대수층 축열 에너지(ATES) 시스템 모델에서 지하수 유동 영향에 의한 지반내 온도 분포 예측 시뮬레이션 (Simulation of thermal distribution with the effect of groundwater flow in an aquifer thermal energy storage (ATES) system model)

  • 심병완
    • 한국지열·수열에너지학회논문집
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    • 제1권1호
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    • pp.1-8
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    • 2005
  • Aquifer Thermal Energy Storage (ATES) can be a cost-effective and renewable geothermal energy source, depending on site-specific and thermohydraulic conditions. To design an effective ATES system having the effect of groundwater movement, understanding of thermohydraulic processes is necessary. The heat transfer phenomena for an aquifer heat storage are simulated by using FEFLOW with the scenario of heat pump operation with pumping and waste water reinjection in a two layered confined aquifer model. Temperature distribution of the aquifer model is generated, and hydraulic heads and temperature variations are monitored at the both wells during 365 days. The average groundwater velocities are determined with two hydraulic gradient sets according to boundary conditions, and the effect of groundwater flow are shown at the generated thermal distributions of three different depth slices. The generated temperature contour lines at the hydraulic gradient of 0.001 are shaped circular, and the center is moved less than 5 m to the direction of groundwater flow in 365 days simulation period. However at the hydraulic gradient of 0.01, the contour center of the temperature are moved to the end of east boundary at each slice and the largest movement is at bottom slice. By the analysis of thermal interference data between two wells the efficiency of the heat pump system model is validated, and the variation of heads is monitored at injection, pumping and no operation mode.

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계절양수가 하천건천화에 미치는 영향 (Impacts of Seasonal Pumping on Stream Depletion)

  • 이현주;구민호;임진실;유병호;김용철
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제21권1호
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    • pp.61-71
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    • 2016
  • Visual MODFLOW was used for quantifying stream-aquifer interactions caused by seasonal groundwater pumping. A hypothetical conceptual model was assumed to represent a stream-aquifer system commonly found in Korea. The model considered a two-layered aquifer with the upper alluvium and the lower bedrock and a stream showing seasonal water level fluctuations. Our results show that seasonal variation of the stream depletion rate (SDR) as well as the groundwater depletion depends on the stream depletion factor (SDF), which is determined by aquifer parameters and the distance from the pumping well to the stream. For pumping wells with large SDF, groundwater was considerably depleted for a long time of years and the streamflow decreased throughout the whole year. The impacts of return flow were also examined by recalculating SDR with an assumed ratio of immediate irrigation return flow to the stream. Return flow over 50% of pumping rate could increase the streamflow during the period of seasonal pumping. The model also showed that SDR was affected by both the conductance between the aquifer and the stream bed and screen depths of the pumping well. Our results can be used for preliminary assessment of water budget analysis aimed to plan an integrated management of water resources in riparian areas threatened by heavy pumping.

암반대수층 지하수 인공함양 시험에 대한 열-수리 모델링 (Hydro-thermal Numerical Simulation for an Artificial Recharge Test in a Fractured Rock Aquifer)

  • 박대희;구민호;김용철
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제20권1호
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    • pp.65-75
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    • 2015
  • An artificial recharge test aimed at investigating transport characteristics of the injected water plume in a fractured rock aquifer was conducted. The test used an injection well for injecting tap water whose temperature and electrical conductivity were different from the groundwater. Temporal and depth-wise variation of temperature and electrical conductivity was monitored in both the injection well and a nearby observation well. A highly permeable fracture zone acting as the major pathway of groundwater flow was distinctively revealed in the monitoring data. A finite element subsurface flow and transport simulator (FEFLOW) was used to investigate sensitivity of the transport process to associated aquifer parameters. Simulated results showed that aperture thickness of the fracture and the hydraulic gradient of groundwater highly affected spatio-temporal variation of temperature and electrical conductivity of the injected water plume. The study suggests that artificial recharge of colder water in a fractured rock aquifer could create a thermal plume persistent over a long period of time depending on hydro-thermal properties of the aquifer as well as the amount of injected water.

지하수류가 대수층 열저장 시스템의 성능에 미치는 영향(3) (The Influence of Groundwater Flow on the Performance of an Aquifer Thermal Energy Storage (ATES) System)

  • 한정상;이주현;김영식;이광진;홍경식
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제22권4호
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    • pp.9-26
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    • 2017
  • When a warm well located downgradient is captured by cold thermal plume originated from an upgradient cold well, the warm thermal plume is pushed further downgradient in the direction of groundwater flow. If groundwater flow direction is parallel to an aquifer thermal energy storage (ATES), the warm well can no longer be utilized as a heat source during the winter season because of the reduced heat capacity of the warm groundwater. It has been found that when the specific discharge is increased by $1{\times}10^{-7}m/s$ in this situation, the performance of ATES is decreased by approximately 2.9% in the warm thermal plume, and approximately 6.5% in the cold thermal plume. An increase of the specific discharge in a permeable hydrogeothermal system with a relatively large hydraulic gradient creates serious thermal interferences between warm and cold thermal plumes. Therefore, an area comprising a permeable aquifer system with large hydraulic gradient should not be used for ATES site. In case of ATES located perpendicular to groundwater flow, when the specific discharge is increased by $1{\times}10^{-7}m/s$ in the warm thermal plume, the performance of ATES is decreased by about 2.5%. This is 13.8% less reduced performance than the parallel case, indicating that an increase of groundwater flow tends to decrease the thermal interference between cold and warm wells. The system performance of ATES that is perpendicular to groundwater flow is much better than that of parallel ATES.

TOUGH2를 이용한 폐쇄형 지열펌프 시스템의 3차원 모델링 연구 (3 Dimensional Numerical Simulation for the Closed Loop Heat Pump System Using TOUGH2)

  • 김성균;배광옥;이강근
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2006년도 추계학술대회
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    • pp.36-39
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    • 2006
  • To evaluate the effect of groundwater flow on the outlet temperature of a geothermal heat pump, 3 dimensional numerical simulations are performed considering both groundwater flow and pipe flow in the U-tube using TOUGHS, The present study involved the following 4 simulation cases (1) no groundwater flow, (2) slow groundwater flow (hydraulic conductivity: $1.0{\times}10^{-9}m/s)$, (3) fast groundwater flow (hydraulic conductivity, $1.0{\times}10^{-7}m/s$), and (4) groundwater flow varying with the depth (hydraulic conductivity: $1.0{\times}10^{-7}-1.0{\times}10^{-10}m/s$). The effect of groundwater flow on the outlet temperature is significant where hydraulic conductivity of aquifer is $1.0{\times}10^{-7}m/s$. Where hydraulic conductivity of aquifer is $1.0{\times}10^{-10}m/s$, however, that effect is negligible.

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시추공 지구물리 방법에 의한 결정질암의 대수 특성 정밀

  • 김영화;공남영;이성진
    • 한국지하수토양환경학회:학술대회논문집
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    • 한국지하수토양환경학회 2006년도 총회 및 춘계학술발표회
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    • pp.92-96
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    • 2006
  • Borehole geophysical techniques were adopted for characterizing aquifer properties of crystalline rock formation in Bongmyong borehole test site, Kangwon National University. Specific fractures and/or fracture zones accompanying groundwater flow were delineated well by high resolution flowmeter and dilution measurements, and could be confirmed fromconventional well log methods. These geophysical techniques have been proved to be the most effective in aquifer characterization in crystalline rock formation.

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일정수두 상부경계를 가지는 이중공극 대수층내 부정류에 관한 프락탈모델 (Fractal Model of Transient Flow in a Dual-porosity Aquifer with Constant-head Upper Boundary)

  • 함세영
    • 대한지하수환경학회지
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    • 제4권2호
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    • pp.95-102
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    • 1997
  • 지금까지 균열대수층에 관한 많은 모델들이 제안되었다. 본 연구에서는 block의 상부에 일정수두 경계가 규정되어 있으며 이중공극 대수층내에서 block으로부터 균열로 향하여 흐르는 부정류의 새로운 프락탈 모델이 개발되었다. 이 모델은 양수정의 우물저장 효과와 우물손실 효과를 고려하고 있으며, 아울러 block과 균열간의 fracture skin도 고려하는 것이다. 본 모델은 fracture skin이 존재하지 않는 경우에는 Hantush(1960)의 수정식 또는 Boulton과 Streltsova(1978)의 식을 2차원의 해로서 포함하는 일반화된 모델이 된다. 0.5, 1, 1.5, 2, 2.5, 3의 유동 차원과 띠러 가지 누수계수 및 fracture skin에 대해서 그리고 양수정과 관측정에 대해서 무차원의 시간에 대한 무차원의 수위하강 표준곡선이 작성되었다.

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Analytical Solution for Flow Field by Arbitrarily-Located Multi Injection-Pumping Wells

  • Yoo, In-Wook;Lee, Kang-Kun
    • 한국지하수토양환경학회:학술대회논문집
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    • 한국지하수토양환경학회 2001년도 추계학술발표회
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    • pp.79-82
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    • 2001
  • Analytical solutions have been derived to delineate the capture zone created by pumping wells for the remediation design of contaminated groundwater. These previous analytical solutions are often restricted to pumping wells only, specific well locations, a limited number of wells, and an isotropic aquifer. Analytical solution was developed to deal with arbitrarily located multi injection-pumping wells in an anisotropic homogeneous aquifer. The solution presented in this study provides a simple, easy method for determining tile complex flow field caused by multi injection-pumping wells at different rates, and will consequently be useful in pump-and-treat design.

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