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Comparison of Scale in a Photosynthetic Reactor System for Algal Remediation of Wastewater
Published on: March 6, 2017
Synergistic microalgal acclimatization and growth for sustainable wastewater detoxification and quality biodiesel
Vishwender Pratap Singh1, Aradhana Srivastava1, Arinjay Kumar1
1University School of Chemical Technology, Guru Gobind Singh Indraprastha University, Sector-16 C, Dwarka, New Delhi 110078, India.
Abstract:
The escalating contamination of water resources by heavy metals, bicarbonates, seawater, and drain-wastewater intrusion is a multifaceted challenge, necessitating sustainable remediation strategies. A multi-objective bioremediation approach that acclimatizes and utilizes microalgae to mitigate pollutants concurrently is adopted. Twelve microalgae were acclimatized to heavy metals (copper, cadmium, and chromium) up to 100 mg/L, salinity similar to seawater up to 50% v/v, elevated bicarbonate levels up to 40.78 g/L, and drain-wastewater up to 50% v/v, simultaneously (sample not from an actual plant). This was carried out in batches using modified-Zarrouk's medium added with heavy metals, seawater, bicarbonate, and wastewater, with a four-step increment to reach the above concentrations and slowly acclimatize during microalgae cultivation and bioremediation. Bicarbonate in the medium was intermittently added with 3 g/L increments, gradually escalating to 13.5 g/L over a 15-day batch. Other operational conditions for mixotrophic microalgae cultivation were: illumination- red (680 nm, 45000 lx); initial sugar- 5.5 g/L; initial pH- 9.2; and temperature- 28 ± 2 °C. The microalgae demonstrated a synergistic capacity for multi-contaminant removal and production of value-added byproducts, achieving removal efficiencies exceeding 90% for heavy metals, a 100% reduction in bicarbonate levels, and a marked decrease in salinity. Lipids from Nannochloropsis sp., Arthrospira platensis, Scenedesmus obliquus, Chlorella vulgaris, Chlorococcum sp., and Navicula sp. 2 produced 3rd-generation quality biodiesel via transesterification, with high fatty acid methyl ester content and viscosity as per ASTM-D6751 standard. Eco-friendly wastewater treatment technology developed showed high bioremediation efficiency and also provided alternative energy as a sustainable solution, supporting UN-SDGs 6 and 7.
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