Geoenvironmental Model for Roll-Type Uranium Deposits in the Texas Gulf Coast
Abstract
:1. Introduction
2. Geology and Mining
2.1. Deposit Type
2.2. Host Rock
2.3. Surrounding Geologic Terrane
2.4. Wall-Rock Alteration
2.5. Nature of Ore
2.6. Primary and Gangue Mineralogy
2.7. Secondary Mineralogy
2.8. Background and Deposit Trace Element Content
2.9. Spatially and Genetically Related Deposits
2.10. Mining and Ore Processing Methods
3. Regulatory Framework
4. Water Resources and Water Quality
4.1. Groundwater
4.2. Surface Water
5. Environmental Considerations
- past releases into streams or groundwater or windblown releases to soil from mills or open-pit mines that occurred before such releases were regulated;
- uranium, radiation, or trace element leakage from reclaimed open-pit mines or mills;
- acid-mine drainage caused by the presence of iron sulfides in older mine-spoil piles or mill tailings;
- 4.
- radon gas at active ISR operations;
- 5.
- radiation or contaminant leakage during production and transport of ISR resin or yellowcake;
- 6.
- uranium excursions into groundwater surrounding active ISR operations; and
- 7.
- contamination of groundwater after ISR mining.
5.1. Effects of Current Climate on Environmental Signatures
5.2. Environmental Concerns from Surface Mining
5.2.1. Pre-Regulation Releases to Streams, Groundwater, or Soils
5.2.2. Leakage from Reclaimed Mills or Open-Pit Mines
5.2.3. Acid-Mine Water
5.3. Environmental Concerns from ISR Mining
5.3.1. Radon Gas at Active ISR Operations (Pathway 1)
5.3.2. Radiation or Product Leakage during ISR Production and Transport of Resin or Yellowcake (Pathways 2 and 3)
5.3.3. Excursions from Active ISR Well Fields to Surrounding Groundwater (Pathway 4)
5.3.4. Contamination of Groundwater after ISR Mining (Pathway 4)
6. Considerations to Improve Environmental Outcomes
7. Summary
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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License Number 1 | Owner | Project Name | County |
---|---|---|---|
R03626 * | South Texas Mining Venture (formerly Everest Exploration) | Hobson * | Karnes |
R03653 * | URI, Inc | Kingsville Dome * Rosita | Kleberg Duval |
R05360 * | EFR Alta Mesa (formerly Mesteña Uranium LLC) | Alta Mesa * | Brooks |
R06062 | South Texas Mining Venture | La Palangana Uranium in situ recovery | Duval |
R06063 * | Rio Grande Resources Corporation | Panna Maria * | Karnes |
R06064 | Uranium Energy Corporation | Goliad | Goliad |
R06066 | Uranium Energy Corporation | Burke Hollow | Bee |
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Walton-Day, K.; Blake, J.; Seal, R.R., II; Gallegos, T.J.; Dupree, J.; Becher, K.D. Geoenvironmental Model for Roll-Type Uranium Deposits in the Texas Gulf Coast. Minerals 2022, 12, 780. https://doi.org/10.3390/min12060780
Walton-Day K, Blake J, Seal RR II, Gallegos TJ, Dupree J, Becher KD. Geoenvironmental Model for Roll-Type Uranium Deposits in the Texas Gulf Coast. Minerals. 2022; 12(6):780. https://doi.org/10.3390/min12060780
Chicago/Turabian StyleWalton-Day, Katherine, Johanna Blake, Robert R. Seal, II, Tanya J. Gallegos, Jean Dupree, and Kent D. Becher. 2022. "Geoenvironmental Model for Roll-Type Uranium Deposits in the Texas Gulf Coast" Minerals 12, no. 6: 780. https://doi.org/10.3390/min12060780
APA StyleWalton-Day, K., Blake, J., Seal, R. R., II, Gallegos, T. J., Dupree, J., & Becher, K. D. (2022). Geoenvironmental Model for Roll-Type Uranium Deposits in the Texas Gulf Coast. Minerals, 12(6), 780. https://doi.org/10.3390/min12060780