Published October 3, 2010 | Version v1
Report

Advanced Remedial Methods for Metals and Radionuclides in Vadose Zone Environments

Description

Functionally, the methods for addressing contamination must remove and/or reduce transport or toxicity of contaminants. This problem is particularly challenging in arid environments where the vadose zone can be up to hundreds of feet thick, rendering transitional excavation methods exceedingly costly and ineffective. Delivery of remedial amendments is one of the most challenging and critical aspects for all remedy-based approaches. The conventional approach for delivery is through injection of aqueous remedial solutions. However, heterogeneous vadose zone environments present hydrologic and geochemical challenges that limit the effectiveness. Because the flow of solution infiltration is dominantly controlled by gravity and suction, injected liquid preferentially percolates through highly permeable pathways, by-passing low-permeability zones which frequently contain the majority of the contamination. Moreover, the wetting front can readily mobilize and enhance contaminant transport to underlying aquifers prior to stabilization. Development of innovative, in-situ technologies may be the only way to meet remedial action objectives and long-term stewardship goals. Shear-thinning fluids (i.e., surfactants) can be used to lower the liquid surface tension and create stabile foams, which readily penetrate low permeability zones. Although surfactant foams have been utilized for subsurface mobilization efforts in the oil and gas industry, so far, the concept of using foams as a delivery mechanism for transporting reactive remedial amendments into deep vadose zone environments to stabilize metal and long-lived radionuclide contaminants has not been explored. Foam flow can be directed by pressure gradients, rather than being dominated by gravity; and, foam delivery mechanisms limit the volume of water (< 20% vol.) required for remedy delivery and emplacement, thus mitigating contaminant mobilization. We will present the results of a numerical modeling and integrated laboratory-/ intermediate-scale investigation to simulate, develop, demonstrate, and monitor (i.e. advanced geophysical techniques and advanced predictive biomarkers) foam-based delivery of remedial amendments to remediate metals and radionuclides in vadose zone environments.

Availability note (English)

Available from American Society of Mechanical Engineers, Tsukuba (JP)

Additional details

Identifiers

Publishing Information

Imprint Pagination
8 p.
Report number
PNNL-SA--73089

Conference

Title
13. International Conference on Environmental Remediation and Radioactive Waste Management
Acronym
ICEM2010
Dates
3-7 Oct 2010
Place
Tsukuba (Japan)

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
43081397
Subject category
S12: MANAGEMENT OF RADIOACTIVE WASTES, AND NON-RADIOACTIVE WASTES FROM NUCLEAR FACILITIES;
Resource subtype / Literary indicator
Conference, Non-conventional Literature
Descriptors DEI
AQUIFERS; CONTAMINATION; EXCAVATION; MONITORS; PERMEABILITY; POSITIONING; PRESSURE GRADIENTS; RADIOACTIVE WASTE MANAGEMENT; RADIOISOTOPES; REMEDIAL ACTION; STABILIZATION; SURFACE TENSION; SURFACTANTS; TOXICITY; TRANSPORT
Descriptors DEC
ISOTOPES; MANAGEMENT; MEASURING INSTRUMENTS; PHYSICAL PROPERTIES; SURFACE PROPERTIES; WASTE MANAGEMENT

Optional Information

Contract/Grant/Project number
EY4049110; AC05-76RL01830
Notes
2:585-592, Paper No. ICEM2010-40235; doi 10.1115/ICEM2010-40235
Funding organization
US Department of Energy (United States)