Craig E. Divine
Colorado School of Mines
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Featured researches published by Craig E. Divine.
Vadose Zone Journal | 2003
Craig E. Divine; William E. Sanford; John E. McCray
A laboratory investigation was conducted to evaluate the applicability of dissolved He and Ne as partitioning tracers for detecting and quantifying nonaqueous phase liquid (NAPL) in the saturated zone. Based on the results of batch experiments, the equilibrium NAPL–water partition coefficients ( K N,W ) of these tracers for two common dense NAPLs (DNAPLs), tetrachloroethene (PCE) and trichloroethene (TCE), are: K PCE,W = 1.28 and K TCE,W = 2.42 for He, and K PCE,W = 1.84 and K TCE,W = 3.24 for Ne. Tracer partitioning is linear across the range of concentrations tested, and appears to be linear even near aqueous solubility limits of the gases. Multiple partitioning tracer tests (PTTs) were conducted in columns, and residual TCE saturations ( S TCE ) ranging from 4.7 to 10.5% were successfully measured by the tracers. Sensitivity analysis for the column experiments indicates that random tracer-measurement error of up to ±20% had little effect on results; however, accurate characterization of the tail region of the tracer curves is particularly important. Therefore, the low analytical detection limits possible with dissolved He and Ne (4 to 5 orders of magnitude below aqueous solubility) may permit better tracer curve characterization than commonly used alcohol partitioning tracers, and is a notable advantage for these tracers. Due to their high Henry9s Law constants, these gases will also partition into trapped air present in the tracer sweep zone. Equations are presented for estimating both trapped air and NAPL saturation for PTTs where three phases are present (water, trapped air, and residual NAPL). The results of this investigation provide a basis for field-scale application of dissolved He and Ne as groundwater partitioning tracers.
Environmental Science & Technology | 2004
Craig E. Divine; John E. McCray
Ground Water Monitoring and Remediation | 2008
Thomas B. Boving; William J. Blanford; John E. McCray; Craig E. Divine; Mark L. Brusseau
Remediation Journal | 2004
Craig E. Divine; John E. McCray; Leah M. Wolf Martin; William J. Blanford; David J. Blitzer; Mark L. Brusseau; Thomas B. Boving
Archive | 2004
Craig E. Divine; John E. McCray; Leah M. Wolf Martin; William J. Blanford; David J. Blitzer; Mark L. Brusseau; Thomas B. Boving
Vadose Zone Journal | 2003
Craig E. Divine; William E. Sanford; John E. McCray
Ground Water Monitoring and Remediation | 2018
Craig E. Divine; Tracy Roth; Michelle Crimi; Abrahm C. DiMarco; Matt Spurlin; Jeff Gillow; Gastón Leone
Ground Water Monitoring and Remediation | 2017
Suthan Suthersan; Jeff McDonough; Matt Schnobrich; Craig E. Divine
Ground Water Monitoring and Remediation | 2017
Allan Horneman; Craig E. Divine; Theresa Sandtangelo‐Dreiling; Shannon Lloyd; Hunter Anderson; Michael B. Smith; John E. McCray
Archive | 2011
Craig E. Divine; Gastón Leone; Jeffery B. Gillow; Tracy Roth; Harry Brenton; Matthew S. Spurlin