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2021 Vol.14, Issue 1 Preview Page

Original Article

31 March 2021. pp. 61-72
Abstract
References
1
Choi, J. C. and Kang, D. H. (2019). Sensitivity Analysis of Artificial Recharge in Consideration of Hydrologic Characteristics of Facility Agricultrul Complex in Korea : Hydraulic Conductivity and Separation Distance from Injection Well to Pumping Well. Journal of Environmental Science International. 28(9): 737-749. 10.5322/JESI.2019.28.9.737
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Chungcheongnam-do (2013). 2013 Groundwater Management Plan Report. Hongseong: Chungcheongnam-do.
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Dong, Y., Zhao, P., Zhou, W. (2011). Effect of Artificial Recharge on Hydraulic Conductivity Using Single Injection Well. ISWREP 2011 : Proceedings of 2011 International Symposium on Water Resource and Environmental Protection. 3: 2115-2117.
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Hashemi, H., Berndtsson, R., and Persson, M. (2015). Artificial Recharge by Floodwater Spreading Estimated by Water Balances and Groundwater Modelling in Arid Iran. Hydrological Sciences Journal. 60(2): 336-350. 10.1080/02626667.2014.881485
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Karim, I. R. and Ali, M. A. (2017). Artificial Recharge of Groundwaer by Injection Wells (Case Study). International Journal of Scientific Engineering and Technology Research. 6(31): 6193-6196.
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Lee, H., Koo, M. H., and Kim, Y. (2014). Determining Optimal Location of an Artificial Recharge Well using an Optimization-coupled Groundwater Flow Model. Journal of Soil and Groundwater Environment. 19(3): 66-81. 10.7857/JSGE.2014.19.3.066
7
Lee, Y. D., Shin, D. M., Kim, B. J., and Kim, G. B. (2019). Selecting Aquifer Artificial Recharge Methods Based on Characteristics of the Target Aquifer. The Journal of Engineering Geology. 29(4): 483-494.
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McDonald, M. G. and Harbaugh, A. W. (1988). A Modular Three-Dimensional Finite-Difference Ground-Water Flow Model. U.S. Geological Survey. Open-File Report 83-875. Book 6. Chapter A1. U.S. Geological Survey.
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Mohamed, H. I. and Ahmed, S. S. (2013). Assessmnet of Hydraulic Performance of Groundwater Recharge Techniques. International Journal of Water Resources and Arid Environments. 2(3): 120-124.
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Moon, S. H., Ha, K., Kim, Y., Koh, D. C., and Yoon, H. (2014). Examination for Efficiency of Groundwater Artificial Recharge in Alluvial Aquifer Near Nakdong River of Changweon Area, Korea. Economic and Environmental Geology. 47(6): 611-623. 10.9719/EEG.2014.47.6.611
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National Research Council (1994). Groundwater Recharge Using Waters of Impaired Quality. Washington DC: National Academy Press.
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Park, G., Lee, H., Koo, M. H., and Kim, Y. (2016). Strategies for an Effective Artificial Recharge in Alluvial Stream-Aquifer Systems Undergoing Heavy Seasonal Pumping. Journal of the Geological Society of Korea. 52(3): 211-219. 10.14770/jgsk.2016.52.3.211

Korean References Translated from the English

1
문상호, 하규철, 김용철, 고동찬, 윤희성 (2014). 창원지역 낙동강 하천수와 주변 충적층을 이용한 지하수 인공함양의 효율성 평가, 자원환경지질. 47(6): 611-623. 10.9719/EEG.2014.47.6.611
2
박경미, 이현주, 구민호, 김용철 (2016). 과도한 계절양수로 지하수가 고갈되는 충적대수층에서의 효율적인 지하수 인공함양 전략. 지질학회지. 52(3): 211-219. 10.14770/jgsk.2016.52.3.211
3
이영동, 신동민, 김병준, 김규범 (2019). 주입대상 대수층의 특성을 고려한 인공함양 방법 선정 연구. 지질공학회지. 29(4): 483-494.
4
이현주, 구민호, 김용철 (2014). 지하수 모델링 기법을 이용한 인공함양정 최적 위치 평가. 한국지하수토양환경학회지. 19(3): 66-81. 10.7857/JSGE.2014.19.3.066
5
충청남도 (2013). 지하수관리계획보고서. 홍성: 충청남도.
6
최정찬, 강동환 (2019). 국내 시설농업단지의 수리지질 특성을 고려한 인공함양 민감도 분석: 수리전도도 및 주입정과 양수정의 이격거리. 한국환경과학회지. 28(9): 737-749.
Information
  • Publisher :Korean Society of Disaster and Security
  • Publisher(Ko) :한국방재안전학회
  • Journal Title :Journal of Korean Society of Disaster and Security
  • Journal Title(Ko) :한국방재안전학회 논문집
  • Volume : 14
  • No :1
  • Pages :61-72
  • Received Date : 2020-11-20
  • Revised Date : 2020-12-28
  • Accepted Date : 2021-03-18