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Updated: Feb 28, 2026

Development of Sulfidogenic Sludge from Marine Sediments and Trichloroethylene Reduction in an Upflow Anaerobic Sludge Blanket Reactor
Published on: October 15, 2015
In-situ bioaugmentation of uranium-contaminated groundwater using Desulfovibrio vulgaris UR1: Mechanistic insights,
Likun Jiang1, Haotian Yang1, Juncheng Han1
1Engineering Research Center of Ministry of Education on Groundwater Pollution Control and Remediation, College of Water Sciences, Beijing Normal University, Beijing 100875, PR China.
Abstract:
While Desulfovibrio vulgaris UR1 demonstrates efficient U(VI) reduction under anaerobic conditions, its application has remained largely confined to laboratory-scale investigations. To address this limitation, this study integrates laboratory mechanistic analysis with field-scale bioaugmentation, bridging microscopic insights with macroscopic validation for the remediation of U(VI)-contaminated aquifers. Batch and simulated groundwater experiments demonstrated that quartz sand served as a matrix to promote biofilm growth and EPS secretion, which enhanced U(VI) reduction efficiency by ∼40 % and increased the UO2 (U(IV)) product proportion by 14.05 %. Bioaugmentation experiments established Desulfovibrio-dominated microbial consortia with stable effluent U(VI) concentrations around 10 μM and maintained efficient operation for over 30 days even without external carbon input. Field pilot-scale experiments achieved a U(VI) removal rate of over 90 % within 3 days and maintained a stable state for over 60 days. This study provides a promising strategy for rapid in-situ uranium remediation and supports the practical advancement of bioaugmentation technologies for uranium-contaminated groundwater.
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