Continuous Monitoring of the Vadose Zone Gas Phase by Mass Spectrometry

被引:3
|
作者
Guillon, S. [1 ,2 ]
Greau, C. [1 ,3 ]
Pili, E. [1 ]
机构
[1] CEA, DAM, DIF, F-91297 Arpajon, France
[2] PSL Res Univ, MINES ParisTech, Ctr Geosci, 35 Rue St Honore, F-77305 Fontainebleau, France
[3] IRSN, Beram, BP17, F-92262 Fontenay Aux Roses, France
关键词
NOBLE-GASES; FIELD; TRANSPORT; OXYGEN; DYNAMICS; TRACERS; TESTS; WATER; AIR;
D O I
10.2136/vzj2015.12.0168
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Long-term continuous measurements of gas concentrations in the vadose zone are required to identify gas transport processes. A magnetic sector mass spectrometer, originally developed for industrial process monitoring, was deployed in the field, and its performance was assessed for continuous monitoring of vadose zone gases. This instrument allows unattended concentration measurements of a large number of gas species without any purification. With a detection limit on the order of 10 nL L-1, it allows determination of trace gases such as Kr and Xe isotopes at their natural atmospheric abundances. Good precision and accuracy were obtained for major, minor, and trace gases with a daily calibration. Continuous monitoring of vadose zone gases for 6 mo in two boreholes at various depths at the Roselend Natural Laboratory (French Alps) showed strong spatial and temporal variability of gas concentrations, not only O-2 and CO2 but also inert gases. Such time series allow determination of transport processes and interactions between water and gas fluxes in the vadose zone.
引用
收藏
页数:6
相关论文
共 50 条
  • [41] Mass Spectrometry of Glutamic Acid and Glutamine in the Gas Phase
    Zavilopulo, A. N.
    Bulhakova, A. I.
    TECHNICAL PHYSICS LETTERS, 2019, 45 (12) : 1252 - 1257
  • [42] Effect of NAPL Source Morphology on Mass Transfer in the Vadose Zone
    Petri, Benjamin G.
    Fucik, Radek
    Illangasekare, Tissa H.
    Smits, Kathleen M.
    Christ, John A.
    Sakaki, Toshihiro
    Sauck, Carolyn C.
    GROUNDWATER, 2015, 53 (05) : 685 - 698
  • [43] FACTORS REQUIRING RESOLUTION IN INSTALLING VADOSE ZONE MONITORING SYSTEMS
    ROBBINS, GA
    GEMMELL, MM
    GROUND WATER MONITORING AND REMEDIATION, 1985, 5 (03): : 75 - 80
  • [44] Mass Spectrometry of Glutamic Acid and Glutamine in the Gas Phase
    A. N. Zavilopulo
    A. I. Bulhakova
    Technical Physics Letters, 2019, 45 : 1252 - 1257
  • [45] Electrospray mass spectrometry of gas phase macromolecular complexes
    Sheil, MM
    Beck, JL
    Gupta, R
    Watt, S
    Brown, SE
    Dixon, NE
    ADVANCES IN MASS SPECTROMETRY, VOL 16, 2004, 16 : 295 - 313
  • [46] Assessing Vadose Zone Biodegradation by a Multicomponent Gas Transport Model
    Fen, Chiu-Shia
    VADOSE ZONE JOURNAL, 2014, 13 (01):
  • [47] EFFECTS OF ATMOSPHERIC PRESSURES ON GAS-TRANSPORT IN THE VADOSE ZONE
    MASSMANN, J
    FARRIER, DF
    WATER RESOURCES RESEARCH, 1992, 28 (03) : 777 - 791
  • [48] Effluent monitoring by repetitive injection gas chromatography mass spectrometry
    Negelein, DL
    Bonnet, E
    White, RL
    JOURNAL OF CHROMATOGRAPHIC SCIENCE, 1999, 37 (07) : 263 - 269
  • [49] Contaminated vadose zone characterization using partitioning gas tracers
    Whitley, GA
    McKinney, DC
    Pope, GA
    Rouse, BA
    Deeds, NE
    JOURNAL OF ENVIRONMENTAL ENGINEERING-ASCE, 1999, 125 (06): : 574 - 582
  • [50] Contaminated vadose zone characterization using partitioning gas tracers
    U.S. Dept. of the Interior, Bureau of Reclamation, 300 E. 8th St., Austin, TX 78701, United States
    不详
    不详
    不详
    J. Environ. Eng., 6 (574-582):