Experimental study on applicability of using time-domain reflectometry to detect NAPLs contaminated sands

被引:8
|
作者
Zhan LiangTong [1 ]
Mu QingYi [1 ]
Chen YunMin [1 ]
Chen RenPeng [1 ]
机构
[1] Zhejiang Univ, MOE Key Lab Soft Soils & Geoenvironm Engn, Hangzhou 310027, Zhejiang, Peoples R China
基金
国家高技术研究发展计划(863计划);
关键词
LNAPLs; sand; time domain reflectometry; dielectric constant; electrical conductivity; SOIL-WATER CONTENT; ELECTRICAL-CONDUCTIVITY; DIELECTRIC-PROPERTIES; SATURATION; MIXTURES;
D O I
10.1007/s11431-013-5211-8
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Underground contamination by non-aqueous phase liquids (NAPLs) becomes increasingly serious. Rapid and reliable detection of contaminated zone and degree is the first step to site remediation. In this paper, diesel and fine sand are used as experiment materials to investigate the applicability of using time-domain reflectometry (TDR) to detect LNAPLs contamination. The major work includes: measurement of dielectric constant and electrical conductivity for the diesel-water-air-sand mixtures; measurement of reflection waveform and dielectric constant for specimens with a diesel contaminated layer being sandwiched in sand. The experimental results show the followings: A significant decrease in both dielectric constant and electrical conductivity is observed for the diesel-water-air-sand mixtures when diesel displaces the pore water, and the content of diesel can be calculated by the a model; insignificant change in dielectric properties is measured when diesel only displaces the pore gas; when the diesel contaminated sand is sandwiched between two saturated sand layers, the interfaces of the diesel contaminated layer can be identified by analyzing the reflection waveform; for field application, TDR method is valid for the case that LNAPLs seep into saturated sand layer, and the applicability of TDR method in vadose zone depends on the initial saturation of the sand layer. The findings obtained in this paper provide a guidance for the use of TDR for the field investigation of NAPLs contaminated site.
引用
收藏
页码:1534 / 1543
页数:10
相关论文
共 50 条
  • [41] DIRECT DECONVOLUTION SIGNAL IN TIME-DOMAIN REFLECTOMETRY
    ARTACHO, JM
    FORNIESMARQUINA, JM
    LETOSA, J
    GARCIA, M
    BOTTREAU, AM
    IEEE TRANSACTIONS ON MAGNETICS, 1995, 31 (03) : 1610 - 1613
  • [42] Computational Brillouin Optical Time-Domain Reflectometry
    Shu, Dayong
    Guo, Xinyue
    Lv, Tuo
    Zhou, Da-Peng
    Peng, Wei
    Chen, Liang
    Bao, Xiaoyi
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2024, 42 (09) : 3467 - 3473
  • [43] The effect of pulse interference in time-domain reflectometry
    Hearn, CP
    IEEE TRANSACTIONS ON AEROSPACE AND ELECTRONIC SYSTEMS, 1996, 32 (01) : 464 - 466
  • [44] THE SPATIAL SENSITIVITY OF TIME-DOMAIN REFLECTOMETRY - RESPONSE
    BAKER, JM
    LASCANO, RJ
    SOIL SCIENCE, 1991, 151 (03) : 256 - 257
  • [45] RETRACTED: Experimental Detection of Soft Faults on Cables Using Chaos Time-Domain Reflectometry (Retracted Article)
    Velayudhan, Vipin
    Bzikha, Ihssane
    Reineix, Alain
    IEEE TRANSACTIONS ON ELECTROMAGNETIC COMPATIBILITY, 2019, 61 (04) : 1191 - 1197
  • [46] POLARIZATION MEASUREMENTS ON MONOMODE FIBERS USING OPTICAL TIME-DOMAIN REFLECTOMETRY
    HARTOG, AH
    PAYNE, DN
    CONDUIT, AJ
    IEE PROCEEDINGS-H MICROWAVES ANTENNAS AND PROPAGATION, 1981, 128 (03) : 168 - 170
  • [47] A New Algorithm for Wire Fault Location Using Time-Domain Reflectometry
    Shi, Qinghai
    Kanoun, Olfa
    IEEE SENSORS JOURNAL, 2014, 14 (04) : 1171 - 1178
  • [48] Nondestructive Sensing of Interconnect Failure Mechanisms Using Time-Domain Reflectometry
    Kwon, Daeil
    Azarian, Michael H.
    Pecht, Michael
    IEEE SENSORS JOURNAL, 2011, 11 (05) : 1236 - 1241
  • [49] Estimation of LNAPL saturation in fine sand using time-domain reflectometry
    Haridy, SA
    Persson, M
    Berndtsson, R
    HYDROLOGICAL SCIENCES JOURNAL-JOURNAL DES SCIENCES HYDROLOGIQUES, 2004, 49 (06): : 987 - 1000
  • [50] Investigation of membrane fouling and cleaning using ultrasonic time-domain reflectometry
    Mairal, AP
    Greenberg, AR
    Krantz, WB
    DESALINATION, 2000, 130 (01) : 45 - 60