Literature DB >> 16568774

Does the Rayleigh equation apply to evaluate field isotope data in contaminant hydrogeology?

Yumiko Abe1, Daniel Hunkeler.   

Abstract

Stable isotope data have been increasingly used to assess in situ biodegradation of organic contaminants in groundwater. The data are usually evaluated using the Rayleigh equation to evaluate whether isotope data follow a Rayleigh trend, to calculate the extent of contaminant biodegradation, or to estimate first-order rate constants. However, the Rayleigh equation was developed for homogeneous systems while in the subsurface, contaminants can migrate at different velocities due to physical heterogeneity. This paper presents a method to quantify the systematic effect that is introduced by applying the Rayleigh equation to field isotope data. For this purpose, the travel time distribution between source and sampling point is characterized by an analytical solution to the advection-dispersion equation. The systematic effect was evaluated as a function of the magnitude of physical heterogeneity, geometry of the contaminant plume, and degree of biodegradation. Results revealed that the systematic effect always leads to an underestimation of the actual values of isotope enrichment factors, the extent of biodegradation, or first-order rate constants, especially in the dispersion-dominant region representing a higher degree of physical heterogeneity. A substantial systematic effect occurs especially for the quantification of first-order rate constants (up to 50% underestimation of actual rate) while it is relatively small for quantification of the extent of biodegradation (< 5% underestimation of actual degree of biodegradation). The magnitude of the systematic effect is in the same range as the uncertainty due to uncertainty of the analytical data, of the isotope enrichment factor, and the average travel time.

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Year:  2006        PMID: 16568774     DOI: 10.1021/es051128p

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  3 in total

1.  Mass-Transfer-Limited Biodegradation at Low Concentrations-Evidence from Reactive Transport Modeling of Isotope Profiles in a Bench-Scale Aquifer.

Authors:  Fengchao Sun; Adrian Mellage; Mehdi Gharasoo; Aileen Melsbach; Xin Cao; Ralf Zimmermann; Christian Griebler; Martin Thullner; Olaf A Cirpka; Martin Elsner
Journal:  Environ Sci Technol       Date:  2021-05-10       Impact factor: 9.028

2.  Fate of nutrients in shallow groundwater receiving treated septage, Malibu, CA.

Authors:  John A Izbicki
Journal:  Ground Water       Date:  2014-06-05       Impact factor: 2.671

3.  Modeling of Contaminant Biodegradation and Compound-Specific Isotope Fractionation in Chemostats at Low Dilution Rates.

Authors:  Mehdi Gharasoo; Benno N Ehrl; Olaf A Cirpka; Martin Elsner
Journal:  Environ Sci Technol       Date:  2019-01-07       Impact factor: 9.028

  3 in total

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