File list
This special page shows all uploaded files.
| Date | Name | Thumbnail | Size | User | Description | Versions |
|---|---|---|---|---|---|---|
| 14:37, 1 June 2018 | USEPA-1995 EPA Consistent Implementation of 1993 Guidance 9200.4-14.pdf (file) | 29 KB | Debra Tabron | U.S. Environmental Protection Agency (USEPA), 1995. Memorandum: Consistent Implementation of the FY 1993 Guidance on Technical Impracticability of Groundwater Restoration at Superfund sites. January. OSWER Directive 9200.4-14. | 1 | |
| 13:58, 1 June 2018 | NRC-2005 Contaminants in the Subsurface.pdf (file) | 22.24 MB | Debra Tabron | National Research Council, 2005. Contaminants in the subsurface: Source zone assessment and remediation. National Academies Press. | 1 | |
| 11:09, 1 June 2018 | Deeb-2011 Assessing Alt Endpoints for GW Rem ER-200832.pdf (file) | 3.5 MB | Debra Tabron | Deeb, R., Hawley, E., Kell, L., O’Laskey, R., 2011. Assessing Alternative Endpoints for Groundwater Remediation at Contaminated Sites. Final Report. May. ESTCP Project ER-200832 | 1 | |
| 13:50, 15 May 2018 | Climate Change Resilience.pdf (file) | 159 KB | Jhurley | 1 | ||
| 16:38, 11 May 2018 | USEPA-2016. Clarification of the Consultation Process for Eval. Tech. Imprac. of GW Rest..pdf (file) | 1.32 MB | Debra Tabron | USEPA, 2016. Clarification of the Consultation Process for Evaluating the Technical Impracticability of Groundwater Restoration at CERCLA Sites. OLEM Directive 9200.3-117 | 1 | |
| 16:32, 11 May 2018 | USEPA-2014. Groundwater Remedy Completion Strategy.pdf (file) | 467 KB | Debra Tabron | USEPA, 2014. Groundwater Remedy Completion Strategy: Moving Forward with the End in Mind. | 1 | |
| 16:12, 11 May 2018 | USEPA-2012. Summary of Technical Impracticability Waivers.pdf (file) | 1.72 MB | Debra Tabron | USEPA, 2012. Summary of Technical Impracticability Waivers at National Priorities List Sites. Report with General Technical Impracticability Site Information Sheets. OSWER Directive 9230.2-24. | 1 | |
| 15:47, 11 May 2018 | USEPA-2011. Groundwater Road Map - Recommended Process for Restoring Cont. GW.pdf (file) | 389 KB | Debra Tabron | USEPA, 2011. Groundwater Road Map – Recommended Process for Restoring Contaminated Groundwater at Superfund Sites. | 1 | |
| 15:35, 11 May 2018 | USEPA-2005. Use of Alternate Concentation Limits in Superfund Cleanups Memorandum.pdf (file) | 342 KB | Debra Tabron | USEPA, 2005. Use of Alternate Concentration Limits in Superfund cleanups. OSWER 9200.4-39. July 19. | 1 | |
| 15:06, 11 May 2018 | USEPA-1993. Guidance for Evaluating the Technical Impracticability of GW Restoration.pdf (file) | 2.87 MB | Debra Tabron | U.S. Environmental Protection Agency (USEPA), O., 1993. Guidance for Evaluating the Technical Impracticability of Groundwater Restoration. Office of Solid Waste and Emergency Response, EPA/540-R, pp.93-080. | 1 | |
| 11:02, 11 May 2018 | NJDEP-2013. Technical Impracticability Guidance for Ground Water.pdf (file) | 699 KB | Debra Tabron | New Jersey Department of Environmental Protection, 2013. Technical Impracticability Guidance for Ground Water. December 3. | 1 | |
| 10:38, 11 May 2018 | ITRC-2012. Using Reediation Risk Management to addr GW Cleanup Challenges.pdf (file) | 737 KB | Debra Tabron | ITRC, 2012. Using Remediation Risk Management to Address Groundwater Cleanup Challenges at Complex Sites. RRM-2. Washington, D.C.: Interstate Technology & Regulatory Council, Remediation Risk Management Team. | 1 | |
| 15:46, 10 May 2018 | ITRC-2017. Remediation of Complex Sites..pdf (file) | 92 KB | Debra Tabron | interstate Technology & Regulatory Council (ITRC), 2017. Remediation Management of Complex Sites. RMCS-1. Washington, D.C. Interstate Technology & Regulatory Council Remediation Management of Complex Sites Team. | 1 | |
| 21:12, 8 May 2018 | Newell-Article 1-Fig1r.JPG (file) | 139 KB | Jhurley | Figure 1. Hydraulic gradient (typically described in units of m/m or ft/ft) is the difference in hydraulic head from Point A to Point B (ΔH) divided by the distance between them (ΔL). In unconfined aquifers, the hydraulic gradient can also be describ... | 1 | |
| 21:07, 8 May 2018 | Newell-Article 1-Fig1.JPG (file) | 139 KB | Jhurley | 4 | ||
| 20:37, 8 May 2018 | 550px-Newell-Article 1-Fig1.JPG (file) | 103 KB | Jhurley | 1 | ||
| 12:25, 4 May 2018 | Epa-nanotechnology-white-paper-final-february-2007.pdf (file) | 2.6 MB | Admin | 1 | ||
| 16:31, 19 April 2018 | Lutes-Article1w2.Fig 1.PNG (file) | 553 KB | Debra Tabron | Figure 1. Key elements of vapor intrusion pathways | 1 | |
| 15:32, 19 April 2018 | USEPA-2015-Tech Guide for Addressing Pet Vapor Intrusion at Leaking UST Sites.pdf (file) | 2.84 MB | Debra Tabron | U.S. Environmental Protection Agency (USEPA), 2015. Technical guide for addressing petroleum vapor intrusion at leaking underground storage tank sites. Office of Underground Storage Tanks, Washington, D.C. EPA 510-R-15-001. | 2 | |
| 15:25, 19 April 2018 | ITRC-2007-Vapor Intrusion Pathway, A Practical Guide.pdf (file) | 3.42 MB | Debra Tabron | Interstate Technology & Regulatory Council (ITRC), 2007. Vapor intrusion pathway: A practical guide. VI-1. ITRC Vapor Intrusion Team, Washington, D.C. | 2 | |
| 15:12, 19 April 2018 | ITRC-2014-PVI Fundamentals of Screening and Investigation and Mgmt.pdf (file) | 24.24 MB | Debra Tabron | Interstate Technology and Regulatory Council (ITRC), 2014. Petroleum vapor intrusion: Fundamentals of screening, investigation, and management. PVI-1. Washington, D.C. Petroleum Vapor Intrusion Team. | 2 | |
| 14:48, 19 April 2018 | USEPA-2015a-Oswer-vapor-intrusion-technical-guide-final.pdf (file) | 3.02 MB | Debra Tabron | U.S. Environmental Protection Agency (USEPA), 2015. OSWER Technical guide for assessing and mitigating the vapor intrusion pathway from subsurface vapor source to indoor air. 9200.2-154. Office of Solid Waste and Emergency Response, Washington, D.C. pp... | 1 | |
| 16:28, 17 April 2018 | USEPA-2009. Vertical Distribution of VOCs in Soils from Groundwater to the Surface Subslab.pdf (file) | 17.89 MB | Debra Tabron | U.S. Environmental Protection Agency (USEPA), 2009. Vertical Distribution of VOCs in Soils from Groundwater to the Surface/Subslab U.S. Environmental Protection Agency, 326 pp. | 1 | |
| 16:20, 17 April 2018 | USEPA-2015d. Simple, Efficient and Rapid Methods.....PDF (file) | 12.95 MB | Debra Tabron | United States Environmental Protection Agency (USEPA), 2015d. Simple, Efficient, and Rapid Methods to Determine the Potential for Vapor Intrusion into the Home: Temporal Trends, Vapor Intrusion Forecasting, Sampling Strategies, and Contaminant Migratio... | 1 | |
| 16:17, 17 April 2018 | USEPA-2014. Passive Samplers for INvestigations of Air Quality.pdf (file) | 848 KB | Debra Tabron | U.S. Environmental Protection Agency (USEPA). 2014. Passive Samplers for Investigations of Air Quality: Method Description, Implementation, and Comparison to Alternative Sampling Methods. EPA/600/R-14/434. | 1 | |
| 16:14, 17 April 2018 | USEPA-2012d. Fluctuation of indoor Radon and VOC Concentrations....PDF (file) | 11.33 MB | Debra Tabron | U.S. Environmental Protection Agency (USEPA). 2012d. Fluctuation of Indoor Radon and VOC Concentrations Due to Seasonal Variations. Office of Research and Development. EPA/600/R/12/673. | 1 | |
| 16:09, 17 April 2018 | USEPA-2012c. Petroleum Hydrocarbons and Chlorinated Solvents....pdf (file) | 822 KB | Debra Tabron | U.S. Environmental Protection Agency (USEPA). 2012c. Petroleum Hydrocarbons and Chlorinated Solvents Differ in Their Potential for Vapor Intrusion. Office of Underground Storage Tanks. | 1 | |
| 16:06, 17 April 2018 | USEPA-2012b. Conceptual Model Scenarios for Vapor Intrusion Pathway.pdf (file) | 2.23 MB | Debra Tabron | U.S. Environmental Protection Agency (USEPA), 2012. Conceptual Model Scenarios for the Vapor Intrusion Pathway. USEPA, Washington, DC. EPA-530-R-10-03. | 1 | |
| 16:04, 17 April 2018 | USEPA-2012a. Vapor Intrusion Dtabase Evaluation and Characterizaton of Attenuation Factors....pdf (file) | 4.1 MB | Debra Tabron | United States Environmental Protection Agency (USEPA), 2012. EPA's Vapor Intrusion Database: Evaluation and Characterization of Attenuation Factors for Chlorinated Volatile Organic Compounds and Residential Buildings. US Environmental Protection Agenc... | 1 | |
| 15:58, 17 April 2018 | USEPA-2008. Indoor Air Vapor Intrusion Mitigation Approaches.pdf (file) | 594 KB | Debra Tabron | U.S. Environmental Protection Agency (USEPA). 2008. Engineering Issue: Indoor Air Vapor Intrusion Mitigation Approaches. EPA/600/R-08-115. | 1 | |
| 15:53, 17 April 2018 | USDOD-2009. Vapor Intrusion Handbook.pdf (file) | 1.53 MB | Debra Tabron | U.S. Department of Defense (DoD). 2009. DoD Vapor Intrusion Handbook. Prepared by the Tri-Services Environmental Risk Assessment Working Group. | 1 | |
| 15:42, 17 April 2018 | USEPA-2015. Temporal Trends, Attenuation Factors, anc Contaminant Migration Routes....PDF (file) | 18.1 MB | Debra Tabron | United States Environmental Protection Agency, 2015. Assessment of Mitigation Systems on Vapor Intrusion: Temporal Trends, Attenuation Factors, and Contaminant Migration Routes under Mitigated and Non-mitigated Conditions. U.S. Environmental Protection... | 1 | |
| 15:25, 17 April 2018 | McHugh - 2007. Eval of spatial and temporal variability in VOC....pdf (file) | 483 KB | Debra Tabron | McHugh, T.E., Nickles, T.N. and Brock, S., 2007. Evaluation of spatial and temporal variability in VOC concentrations at vapor intrusion investigation sites. Proceedings of Vapor Intrusion: Learning from the Challenges, Providence, RI, pp.129-142. | 1 | |
| 15:21, 17 April 2018 | Folkes - 2002. Efficacy of sub-slab depressurization for mitigation of VI.pdf (file) | 201 KB | Debra Tabron | Folkes, D.J. and Kurz, D.W., 2002. Efficacy of sub-slab depressurization for mitigation of vapor intrusion of chlorinated organic compounds. Proceedings of Indoor Air. | 1 | |
| 15:18, 17 April 2018 | USEPA-2010. Temporal Variaiton of VOCs in Soils from GW.PDF (file) | 8.64 MB | Debra Tabron | United States Environmental Protection Agency (USEPA), 2010. Temporal Variation of VOCs in Soils From Groundwater to the Surface/Subslab. U.S. Environmental Protection Agency, Washington, DC, EPA/600/R-10/118, 143 pp. | 1 | |
| 10:59, 17 April 2018 | DON - 2015. A Quantitative Decision...Tech Rpt TR-NAVFAC-EXWC-EV-1603.pdf (file) | 15.72 MB | Debra Tabron | Department of the Navy (DON), 2015. A Quantitative Decision Framework for Assessing Navy Vapor Intrusion Sites. Technical Report TR-NAVFAC-EXWC-EV-1603. | 1 | |
| 10:37, 17 April 2018 | DiGiulio - 2006. Assessment of Vapor Intrusion in Homes...EPA-600-R-05-147.pdf (file) | 7.06 MB | Debra Tabron | DiGiulio, D., Paul, C., Cody, R., Willey, R., Clifford, S., Kahn, P., Mosley, R., Lee, A. and Christensen, K., 2006. Assessment of vapor intrusion in homes near the Raymark Superfund site using basement and sub-slab air samples. EPA/600/R-05/147. | 1 | |
| 12:55, 17 February 2017 | Figure3.gif (file) | 10.56 MB | Astenger | 1 | ||
| 11:23, 13 February 2017 | Newell-Article 1-Table2r2.jpg (file) | 153 KB | Astenger | 2 | ||
| 17:55, 1 February 2017 | Gamlin SBGR Figure 2.PNG (file) | 125 KB | Debra Tabron | Figure 2. SBGR performance observations for two chlorinated solvent sites in California | 1 | |
| 17:54, 1 February 2017 | Gamlin SBGR Table 1.PNG (file) | 14 KB | Debra Tabron | Table 1. SBGR Construction and Cost Details | 1 | |
| 17:53, 1 February 2017 | Gamlin SBGR Figure 1.PNG (file) | 561 KB | Debra Tabron | Figure 1. Typical subgrade biogeochemical reactor (SBGR) layout. | 1 | |
| 20:58, 31 January 2017 | Slater Intro Fig3 new2.jpg (file) | 4.97 MB | Jbarnes | 1 | ||
| 20:53, 31 January 2017 | Slater Intro Table3 new.jpg (file) | 1.04 MB | Jbarnes | 1 | ||
| 20:52, 31 January 2017 | Slater Intro Fig3 new.jpg (file) | 4.97 MB | Jbarnes | 1 | ||
| 15:17, 31 January 2017 | Slater CaseStudies Fig3.jpg (file) | 2.5 MB | Debra Tabron | Figure 3. Example 3D time-lapse ERT images showing bioamendment emplacement and movement, seen as increased bulk electrical conductivity (first column), followed by later increase in bulk conductivity arising from FeS precipitation resulting from micro... | 1 | |
| 15:16, 31 January 2017 | Slater-Article 2-Figure 2.PNG (file) | 353 KB | Debra Tabron | Figure 2. High-resolution 3D cross-borehole electrical imaging of contaminated fractured rock at the former Naval Air Warfare Center in New Jersey. Two panels of the 3D volume of earth imaged are shown for comparison. Acoustic televiewer images recorde... | 1 | |
| 15:15, 31 January 2017 | Slater-Article 2-Figure 1.PNG (file) | 630 KB | Debra Tabron | Figure 1. Resistivity imaging at the 300 Area of the Hanford Facility, Richland, WA. (a) location of 2D resistivity survey lines. (b) selected 2D resistivity profiles (locations in part a) showing imaging of variations in depth to the Hanford-Ringold c... | 1 | |
| 11:32, 31 January 2017 | Slater Intro Table3.jpg (file) | 1.04 MB | Debra Tabron | Table 3. Details of four single-hole and crosshole geophysical imaging methods with potential application to contaminated sites. The lateral extent and depth of the surveyed region, and resolution of the measurement, are all typical values for environm... | 1 | |
| 11:30, 31 January 2017 | Slater Intro Table2.jpg (file) | 1.4 MB | Debra Tabron | Table 2. Surface-based geophysical methods commonly used at remediation sites. The extent and depth of the survey region and the resolution are all approximate ranges. The measured parameters can be derived directly from the acquired data. The recovere... | 1 |