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N. Seetha

Researcher at Indian Institute of Science

Publications -  9
Citations -  163

N. Seetha is an academic researcher from Indian Institute of Science. The author has contributed to research in topics: Porous medium & Colloid. The author has an hindex of 5, co-authored 6 publications receiving 124 citations. Previous affiliations of N. Seetha include Indian Institute of Technology Roorkee.

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Effect of organic shock loads on a two-stage activated sludge-biofilm reactor

TL;DR: The effects of short-term organic shock loads on the performance of a laboratory scale two-stage activated sludge (AS)-biofilm reactor working at 6 h HRT and treating medium strength domestic wastewater was studied by increasing the influent chemical oxygen demand (COD) to 2-4 times the normal values.
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Correlation equations for average deposition rate coefficients of nanoparticles in a cylindrical pore

TL;DR: In this paper, the pore-averaged nanoparticle deposition rate coefficients under unfavorable conditions are derived by performing a multiple-linear regression analysis between the estimated deposition rate coefficient for a single pore and various porescale parameters.
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Upscaling of nanoparticle transport in porous media under unfavorable conditions: Pore scale to Darcy scale.

TL;DR: Using pore network modeling, correlation equations for deposition rate coefficients for nanoparticle transport under unfavorable conditions at the Darcy scale are developed based on pore-scale mechanisms and are found to be consistent with the available experimental results and in qualitative agreement with Colloid Filtration Theory.
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Modeling the co-transport of viruses and colloids in unsaturated porous media

TL;DR: A sensitivity analysis of the model to various parameters showed that the virus attachment to AWI is the most sensitive parameter affecting the BTCs of both free viruses and total mobile viruses and has a significant effect on all parts of the BTC.
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Virus-sized colloid transport in a single pore: Model development and sensitivity analysis

TL;DR: A sensitivity analysis indicates that the virus-sized colloid transport and deposition is significantly affected by various pore-scale parameters such as the surface potentials on colloid and collector, ionic strength of the solution, flow velocity, pore size and colloid size.