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Dive into the research topics where Ambica Koushik Pegallapati is active.

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Featured researches published by Ambica Koushik Pegallapati.


Bioresource Technology | 2014

Evaluation of a thermo-tolerant acidophilic alga, Galdieria sulphuraria, for nutrient removal from urban wastewaters.

Thinesh Selvaratnam; Ambica Koushik Pegallapati; F. Montelya; G. Rodriguez; Nagamany Nirmalakhandan; W. Van Voorhies; Peter J. Lammers

Nutrient removal from primary wastewater effluent was tested using Galdieria sulphuraria, an acidophilic and moderately thermophilic alga. Biomass yield recorded in this study (27.42g biomass per g nitrogen removed) is higher than the average reported in the literature (25.75g g(-1)) while, the theoretical yield estimated from the empirical molecular formula of algal biomass is 15.8g g(-1). Seven-day removal efficiencies were 88.3% for ammoniacal-nitrogen and 95.5% for phosphates; corresponding removal rates were 4.85 and 1.21mg L(-1)d(-1). Although these rates are lower than the average literature values for other strains (6.36 and 1.34mg L(-1)d(-1), respectively), potential advantages of G. sulphuraria for accomplishing energy-positive nutrient removal are highlighted. Feasibility of growing G. sulphuraria outdoors at densities higher than in high-rate oxidation ponds is also demonstrated.


Bioresource Technology | 2012

Modeling algal growth in bubble columns under sparging with CO2-enriched air

Ambica Koushik Pegallapati; Nagamany Nirmalakhandan

A theoretical model for predicting biomass growth in semi-continuous mode under sparging with CO(2)-enriched air was developed. The model includes gas-to-liquid mass transfer, algal uptake of carbon dioxide, algal growth kinetics, and light and temperature effects. The model was validated using experimental data on growth of two microalgal species in an internally illuminated photobioreactor: Nannochloropsis salina under gas flow rates of 800 and 1200 mL min(-1) and CO(2) enrichments of 0.5, 1, and 2%; and Scenedesmus sp. at a gas flow rate of 800 mL min(-1) and CO(2) enrichments of 3 and 4%. Temporal algal concentration profiles predicted by the model under semi-continuous mode with harvesting under the different test conditions agreed well with the measured data, with r(2) values ranging from 0.817 to 0.944, p<0.001. As demonstrated, this model can be beneficial in predicting temporal variations in algal concentration and in scheduling harvesting operations under semi-continuous cultivation mode.


Bioresource Technology | 2015

Algal biofuels from urban wastewaters: Maximizing biomass yield using nutrients recycled from hydrothermal processing of biomass

Thinesh Selvaratnam; Ambica Koushik Pegallapati; Harvind K. Reddy; N. Kanapathipillai; Nagamany Nirmalakhandan; Shuguang Deng; Peter J. Lammers

Recent studies have proposed algal cultivation in urban wastewaters for the dual purpose of waste treatment and bioenergy production from the resulting biomass. This study proposes an enhancement to this approach that integrates cultivation of an acidophilic strain, Galdieria sulphuraria 5587.1, in a closed photobioreactor (PBR); hydrothermal liquefaction (HTL) of the wet algal biomass; and recirculation of the nutrient-rich aqueous product (AP) of HTL to the PBR to achieve higher biomass productivity than that could be achieved with raw wastewater. The premise is that recycling nutrients in the AP can maintain optimal C, N and P levels in the PBR to maximize biomass growth to increase energy returns. Growth studies on the test species validated growth on AP derived from HTL at temperatures from 180 to 300°C. Doubling N and P concentrations over normal levels in wastewater resulted in biomass productivity gains of 20-25% while N and P removal rates also doubled.


Bioresource Technology | 2012

Energy-efficient photobioreactor configuration for algal biomass production.

Ambica Koushik Pegallapati; Yalini Arudchelvam; Nagamany Nirmalakhandan

An internally illuminated photobioreactor (IIPBR) design is proposed for energy-efficient biomass production. Theoretical rationale of the IIPBR design and its advantages over the traditional bubble column photobioreactors (PBRs) are presented, followed by experimental results from prototype scale cultivation of freshwater and marine algal strains in an 18L IIPBR. Based on theoretical considerations, the proposed IIPBR design has the potential to support 160% higher biomass density and higher biomass productivity per unit energy input, B/E, than a bubble column PBR of equal incident area per unit culture volume. Experimental B/E values recorded in this study with fresh water algae and marine algae (1.42 and 0.37 gW(-1)d(-1), respectively) are at least twice as those reported in the literature for comparable species cultivated in bubble column and airlift PBRs.


Journal of Bioscience and Bioengineering | 2014

Evaluation of internally illuminated photobioreactor for improving energy ratio

Ambica Koushik Pegallapati; Nagamany Nirmalakhandan; Barry Dungan; F. Omar Holguin; Tanner Schaub

The internally illuminated photobioreactor (IIPBR) design has been shown to be more efficient in utilizing the incident light energy than the externally illuminated designs. This study evaluated (i) optimal sparging of the IIPBR with CO2-enriched air (CEA) to enhance biomass productivity; and, (ii) single-stage and two-stage operation of the IIPBR to enhance lipid productivity. Growth data from two algal cultures-Scenedesmus sp. and Nannochloropsis salina, cultivated in an 18-L prototype version of the IIPBR were used to establish the optimal conditions for the two goals in terms of the energy ratio. Based on the optimized results under sparging with CEA, the energy ratio in the IIPBR in the first stage with Nannochloropsis salina was at least 6 times higher due to optimal performance of the IIPBR at lower energy input than typical literature results for other PBR designs, whereas the energy ratios in the second stage were comparable to literature results.


Applied Energy | 2016

Temperature effect on hydrothermal liquefaction of Nannochloropsis gaditana and Chlorella sp.

Harvind K. Reddy; Tapaswy Muppaneni; Sundaravadivelnathan Ponnusamy; Nilusha Sudasinghe; Ambica Koushik Pegallapati; Thinesh Selvaratnam; Mark Seger; Barry Dungan; Nagamany Nirmalakhandan; Tanner Schaub; F. Omar Holguin; Peter J. Lammers; Wayne A. Van Voorhies; Shuguang Deng


Renewable Energy | 2013

Internally illuminated photobioreactor for algal cultivation under carbon dioxide-supplementation: Performance evaluation

Ambica Koushik Pegallapati; Nagamany Nirmalakhandan


Renewable Energy | 2015

Feasibility of Algal Systems for Sustainable Wastewater Treatment

Thinesh Selvaratnam; Ambica Koushik Pegallapati; Felly Montelya; Gabriela Rodriguez; Nagamany Nirmalakhandan; Peter J. Lammers; Wayne A. Van Voorhies


Biotechnology Letters | 2011

Energetic evaluation of an internally illuminated photobioreactor for algal cultivation.

Ambica Koushik Pegallapati; Nagamany Nirmalakhandan


Environmental Science and Technology Letters | 2014

Energetic Performance of Photobioreactors for Algal Cultivation

Ambica Koushik Pegallapati; Yalini Arudchelvam; Nagamany Nirmalakhandan

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Peter J. Lammers

New Mexico State University

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Edward D. Frank

Argonne National Laboratory

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Ryan Davis

National Renewable Energy Laboratory

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Yunhua Zhu

Pacific Northwest National Laboratory

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Barry Dungan

New Mexico State University

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F. Omar Holguin

New Mexico State University

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Harvind K. Reddy

New Mexico State University

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Jennifer B. Dunn

Argonne National Laboratory

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