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  4. Evaluating the Hydraulic Conductivity of Dense Nonaqueous Phase Liquid in a Single Fracture of Rock-like Material
 
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Evaluating the Hydraulic Conductivity of Dense Nonaqueous Phase Liquid in a Single Fracture of Rock-like Material

Journal
Sustainability (Switzerland)
Journal Volume
14
Journal Issue
4
Date Issued
2022
Author(s)
MENG-CHIA WENG  
Lin C.-L
FU-SHU JENG  
Ou H.-C.
DOI
10.3390/su14042288
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85124969787&doi=10.3390%2fsu14042288&partnerID=40&md5=f0a0304958bdcc529adc1d6db365dd96
https://scholars.lib.ntu.edu.tw/handle/123456789/625391
Abstract
To investigate the seepage characteristics of dense nonaqueous phase liquids (DNAPLs) in rock fractures, two types of NAPLs (paint and creosote) were used in triaxial permeability tests conducted on single-fracture samples. The hydraulic conductivity of rock fractures with different apertures, confining pressures, and fluid properties was measured, and the influence of various physical factors on transmissivity was explored. The results demonstrated the following: (1) Fracture aperture and fluid viscosity are the main factors influencing transmissivity; (2) The widely used cubic law fails to effectively predict the transmissivity of high-viscosity liquids in a fracture, and the influence of liquid viscosity is considerably higher than that predicted by the cubic law; and (3) This study proposed a transmissivity prediction model of DNAPLs in a rock fracture based on multivariate regression analysis. The proposed model provides more accurate prediction results than those predicted by the cubic law, and is applicable to fracture apertures ranging from 5 × 10−4 to 2.5 × 10−3 m as well as to every kind of fluid used in this study. © 2022 by the authors. Licensee MDPI, Basel, Switzerland.
Subjects
Aperture; Creosote; Cubic law; Dense nonaqueous phase liquids (DNAPL); Rock fracture
SDGs

[SDGs]SDG6

Other Subjects
fracture mechanics; hydraulic conductivity; multiple regression; nonaqueous phase liquid; permeability; rock mechanics; seepage; transmissivity; viscosity
Type
journal article

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