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      벤토나이트 케익을 고려한 연직차수벽의 순간변위시험(slug test) 해석 = Consideration of Bentonite Cake Existing on Vertical Cutoff Wall in Slug Test Analysis

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      https://www.riss.kr/link?id=A103987965

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      다국어 초록 (Multilingual Abstract)

      Slug tests can be adopted to estimate hydraulic conductivity of the slurry trench wall backfill for its abilities to reflect the in-situ performance of the construction. A comprehensive three-dimensional numerical model is developed to simulate the sl...

      Slug tests can be adopted to estimate hydraulic conductivity of the slurry trench wall backfill for its abilities to reflect the in-situ performance of the construction. A comprehensive three-dimensional numerical model is developed to simulate the slug test in a slurry trench wall considering the presence of bentonite cake on the interface boundaries between the wall and the surrounding soil formation. Influential factors such as wall width (i.e., proximity of wall boundary), well deviation, vertical position of well intake section, compressibility of wall backfill, etc. are taken into account in the model. A series of simulation results are examined to evaluate the bentonite cake effect in analyzing practical slug test results in the slurry trench wall. The results show that the modified line-fitting method can be used without any correction factor for the slug test in the slurry trench wall with the presence of bentonite cake. A case study is reanalyzed with the assumption of existing bentonite cake. The results are compared with the previously reported results by the approaches assuming no bentonite cake (constant-head boundary) or upper-bound solution (no-flux boundary). The case study demonstrates the bentonite cake effect and the validity of the modified line-fitting method in the estimation of the hydraulic conductivity of the slurry wall backfill.

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      참고문헌 (Reference)

      1 EMCON, "West Contra Costa Sanitary Landfill"

      2 Hvorslev, M. J., "Time lag and soil permeability in ground water observation, In Water ways Experiment Station" U. S. Army Corps of Engineering 1951

      3 Nash, K. L., "Stability of trenches filled with fluids" 100 (100): 533-542, 1974

      4 Britton, J. P., "Soil-bentonite slurry trench walls: hydraulic conductivity and contaminant transport" Virginia Polytechnic Institute & State University 2001

      5 D’Appolonia, D. J, "Soil-bentonite slurry trench cutoffs" 106 (106): 399-417, 1980

      6 Tallard, G., "Slurry trenches for containing hazardous wastes" 54 (54): 41-45, 1984

      7 Xanthakos, P.P., "Slurry Walls" McGraw-Hill 1979

      8 Britton, J. P., "Slug tests in soil-bentonite slurry trench walls using a push-in piezometer tip, In Waste Containment and Remediation" ASCE 2005

      9 Butler, J. J., "Slug tests in situ characterization : Some practical consideration" 3 (3): 154-163, 1996

      10 Choi, H., "Slug test analysis to evaluate permeability of compressible materials" 46 (46): 647-652, 2008

      1 EMCON, "West Contra Costa Sanitary Landfill"

      2 Hvorslev, M. J., "Time lag and soil permeability in ground water observation, In Water ways Experiment Station" U. S. Army Corps of Engineering 1951

      3 Nash, K. L., "Stability of trenches filled with fluids" 100 (100): 533-542, 1974

      4 Britton, J. P., "Soil-bentonite slurry trench walls: hydraulic conductivity and contaminant transport" Virginia Polytechnic Institute & State University 2001

      5 D’Appolonia, D. J, "Soil-bentonite slurry trench cutoffs" 106 (106): 399-417, 1980

      6 Tallard, G., "Slurry trenches for containing hazardous wastes" 54 (54): 41-45, 1984

      7 Xanthakos, P.P., "Slurry Walls" McGraw-Hill 1979

      8 Britton, J. P., "Slug tests in soil-bentonite slurry trench walls using a push-in piezometer tip, In Waste Containment and Remediation" ASCE 2005

      9 Butler, J. J., "Slug tests in situ characterization : Some practical consideration" 3 (3): 154-163, 1996

      10 Choi, H., "Slug test analysis to evaluate permeability of compressible materials" 46 (46): 647-652, 2008

      11 Choi, H., "Slug test analysis in vertical cutoff walls. II : Applications" 132 (132): 439-447, 2006

      12 Choi, H., "Slug test analysis in vertical cutoff walls. I : Analysis Methods" 132 (132): 429-438, 2006

      13 Nguyen, T. -B., "Slug test analysis in vertical cutoff walls with consideration of filter cake" 137 (137): 785-797, 2011

      14 Britton, J. P., "Shape factors for single-well tests in soil-bentonite cutoff walls" Balkema Publishers 639-644, 2002

      15 Yang, D. S., "SMW wall for seepage control in levee reconstruction" University of Missouri-Rolla 487-492, 1993

      16 Cooper, H. H., "Response of a finite-diameter well to an instantaneous charge of water" 3 (3): 263-269, 1967

      17 Nguyen, T. -B., "Performance of soil-bentonite slurry walls: Flow rates and contaminant containment" Korea University 2011

      18 Soroush, A., "Parameters affecting the thickness of bentonite cake in cutoff wall construction : case study and physical modeling" 42 (42): 646-654, 2005

      19 Choi, H., "Numerical model for analyzing slug tests in vertical cutoff walls" 133 (133): 1249-1258, 2007

      20 Chung, J., "Modified fluid loss test as an improved measure of hydraulic conductivity for bentonite" 31 (31): 243-251, 2008

      21 Nguyen, T. -B., "Modification of the Bouwer and Rice method to a cutoff wall with a filter cake" 48 (48): 898-902, 2010

      22 Britton, J. P., "Measuring the hydraulic conductivity of soil-bentonite backfill" 130 (130): 1250-1258, 2004

      23 Bruner, D. G, "Measurement of saturated hydraulic conductivity in fine-grained glacial tills in Iowa: Comparison of in situ and laboratory methods, In Hydraulic Conductivity and Waste Contaminant Transport in Soil" ASTM 255-265, 1994

      24 Teeter, R. M, "In-place permeability measurement of slurry trench cutoff walls" ASCE 6 : 1049-1061, 1986

      25 Daniel, D. E, "Hydraulic conductivity evaluation of vertical barrier walls, In Geo-engineering for under ground facilities" ASCE 140-161, 1999

      26 Bradbury, K. R., "Hydraulic conductivity determinations in unlithified glacial and fluvial materials, In Ground Water and Vadose Zone Monitoring" ASTM 138-151, 1990

      27 Herzog, B. L., "Hydraulic conductivity at a hazardous waste disposal site : Comparison of laboratory and fielddetermined values" 4 (4): 177-187, 1986

      28 US ACE., "Guide specification for construction soil-bentonite (S-B) slurry trench" U. S. Army Corps of Engineers 2010

      29 Freeze, R.A, "Groundwater" Prentice-HallInc 1979

      30 Brigham Young University, "GMS, version 3.1, Provo"

      31 Henry, L. B., "Formation and properties of bentonite filter cakes, In Filtration and Drainage in Geotechnical/Geoenvironmental Engineering" ASCE 69-88, 1998

      32 Nguyen, T. -B., "Estimation of hydraulic conductivity of bentonite filter cake in laboratory" McGraw-Hill 1393-1396, 2010

      33 Filz, G. M., "Determining hydraulic conductivity of soil-bentonite using the API filter press" 24 (24): 61-71, 2001

      34 Khoury, M. A., "Design, construction and performance of a soil-bentonite cutoff wall constructed in two stages, In Slurry wall: Design, construction, and quality control" ASTM 289-308, 1992

      35 Haeng Woo Lee, "Correlation between the Laboratory and In-situ Permeability for the Embankments" 대한토목학회 11 (11): 1-5, 2007

      36 Filz, G. M., "Bentonitewater slurry rheology and slurry trench wall trench stability, In In Situ Remediation of the Geoenvironment" ASCE 139-153, 1997

      37 Anderson, M, "Applied ground water modeling: Simulation off low and advective transport" Academic Press Inc. 1992

      38 Choi, H, "Analysis of slug tests to determine hydraulic conductivity of vertical slurry trench walls" University of Illinois 2002

      39 Bouwer, H., "A slug test for determining hydraulic conductivity of unconfined aquifer with completely or partially penetrating wells" 12 (12): 423-428, 1976

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      2016 0.31 0.31 0.28
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