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To understand the environmental and anthropogenic drivers of stream nitrogen (N) concentrations across the conterminous US, we combined summer low-flow data from 4997 streams with watershed information across three survey periods (2000-2014) of the US EPA's National Rivers and Streams Assessment. Watershed N inputs explained 51% of the variation in log-transformed stream total N (TN) concentrations. Both N source and input rates influenced stream NO/TN ratios and N concentrations. Streams dominated by oxidized N forms (NO/TN ratio > 0.50) were more strongly responsive to the N input rate compared to streams dominated by other N forms. NO proportional contribution increased with N inputs, supporting N saturation-enhanced NO export to aquatic ecosystems. By combining information about N inputs with climatic and landscape factors, random forest models of stream N concentrations explained 70, 58, and 60% of the spatial variation in stream concentrations of TN, dissolved inorganic N, and total organic N, respectively. The strength and direction of relationships between watershed drivers and stream N concentrations and forms varied with N input intensity. Model results for high N input watersheds not only indicated potential contributions from contaminated groundwater to high stream N concentrations but also the mitigating role of wetlands.
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http://dx.doi.org/10.1021/acs.est.0c07102 | DOI Listing |
Philos Trans A Math Phys Eng Sci
September 2025
Department of Mathematics, University of York, York, UK.
The combined effect of axial stretching and cross-stream diffusion on the downstream transport of solute is termed Taylor dispersion. The dispersion of active suspensions is qualitatively distinct: viscous and external torques can establish non-uniform concentration fields with weighted access to shear, modifying mean drift and effective diffusivity. It would be advantageous to fine-tune the dispersion for systems such as bioreactors, where mixing or particle separation can improve efficacy.
View Article and Find Full Text PDFEnviron Monit Assess
September 2025
School of Materials Engineering, Changzhou Vocational Institute of Industry Technology, Changzhou, 213000, People's Republic of China.
A multi-indicator framework was developed to resolve multi-source pollution in highly urbanized rivers, demonstrated in the Qinhuai River Basin, Nanjing, China. Water quality index (WQI) stratification was integrated with dissolved organic matter (DOM) fluorescence components, hydrochemical ions, and conventional parameters and analyzed using positive matrix factorization (PMF). Correlation analysis further elucidated source compositions and interactions.
View Article and Find Full Text PDFJ Vet Med Sci
September 2025
Noto Marine Laboratory, Institute of Nature and Environmental Technology, Kanazawa University.
Local anesthetics such as lidocaine have been used in humans and other animals to perform surgical procedures, therapeutics, and experiments. Lidocaine discarded into the environment through industrial waste, human and animal excretion, and household waste has been detected in the aquatic environment. For example, lidocaine in rivers, lakes, and influent and effluent water has been detected at wastewater treatment plants (7 ng/L-2.
View Article and Find Full Text PDFBioresour Technol
September 2025
Center for Water Cycle Research, Climate and Environmental Research Institute, Korea Institute of Science and Technology, Seoul 02792, Republic of Korea; Division of Energy & Environment Technology, KIST School, Korea University of Science and Technology, Seoul 02792, Republic of Korea. Electronic a
This study evaluates ammonia gas recovery from high-strength anaerobic digestate using a bipolar membrane electrodialysis (BPED) and membrane contactor (MC). Ammonia is a promising carbon-neutral energy carrier, while digestates present both environmental challenges and opportunities for ammonia recovery. The BPED was tested at 2,000---10,000 mg-N/L under varying voltages and flow rates, achieving up to 87.
View Article and Find Full Text PDFJ Hazard Mater
September 2025
Nanjing Institute of Environmental Sciences, Ministry of Ecology and Environment of the People's Republic of China, Nanjing 210042, China. Electronic address:
Environmental microplastics (MPs) are challenging to compare due to non-harmonized sampling and quantification methods. As MPs are predominantly composed of recalcitrant organic carbon (OC), they contribute to the total organic carbon (TOC) pool in environments. The concentration of recalcitrant carbon in microplastics (MPC) can theoretically serve as a complementary, standardized mass-based index to characterize MPs pollution levels.
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