Finding an eco-friendly and effective flocculation method to remove algal blooms from water
DOI:
https://doi.org/10.47611/jsrhs.v12i2.4428Keywords:
Flocculation, Algal Blooms, Effective RemovalAbstract
Algal blooms are rapid growth of microscopic algae in the water that are harmful to the environment because they block sunlight from reaching plants under the surface, deplete the water of useful nutrients, and release carbon emissions. Flocculation is a method that is used to remove algae and it works by binding and agglomerating suspended particles in water to form large particles to assist in their settling. However, most flocculants are chemical flocculants and may harm water quality. Bio-flocculation based on natural flocculants has been studied in drinking water treatment plants (DWTPs) as an eco-friendly alternative technology to conventional flocculants for both turbidity and HABs removal. The total solids assay, sedimentation kinetics assay, and pH testing will be used to measure the effectiveness of flocculants and water quality. These assays were tested with three types of algae: Chlorella vulgaris, Spirulina, Scenedesmus obliquus, and five types of flocculants: Aluminium Sulfate, Copper Sulfate, Chitosan, Moringa oleifera, and Strychnos potatorum Linn. The data collected so far in the study show that the chemical flocculants and bio-flocculants have a similar effectivity at flocculating algae from the water. The findings suggest that there is no significant difference between the bio-flocculants and the chemical flocculant. and that all of the flocculants will be effective. pH testing results have shown that Chitosan, Moringa oleifera, and Strychnos potatorum Linn affect the water quality the least which makes them the more environmentally friendly flocculants.
Downloads
References or Bibliography
U.S. National Library of Medicine. (n.d.). Home - books - NCBI. National Center for Biotechnology Information. Retrieved January 15, 2023, from https://www.ncbi.nlm.nih.gov/books
Chlorella vulgaris. Chlorella vulgaris - an overview | ScienceDirect Topics. (n.d.). Retrieved January 15, 2023, from https://www.sciencedirect.com/topics/engineering/chlorella-vulgaris
Anna. (2019, December 11). Spirulina, Heavy Metal Detox. Apogee Spirulina. Retrieved January 15, 2023, from https://apogeespirulina.com/spirulina-heavy-metal-detox/
Scenedesmus obliquus. Scenedesmus Obliquus - an overview | ScienceDirect Topics. (n.d.). Retrieved January 15, 2023, from https://www.sciencedirect.com/topics/engineering/scenedesmus-obliquus
Flocculants and coagulants for wastewater treatment. ChemREADY. (2022, July 31). Retrieved January 15, 2023, from https://www.getchemready.com/wastewater-treatment/flocculants-coagulants-wastewater-treatment/
Kurniawan, S. B., Abdullah, S. R. S., Imron, M. F., Said, N. S. M., Ismail, N. 'I., Hasan, H. A., Othman, A. R., & Purwanti, I. F. (2020, December 12). Challenges and opportunities of Biocoagulant/Bioflocculant application for drinking water and wastewater treatment and its potential for sludge recovery. International journal of environmental research and public health. Retrieved January 15, 2023, from https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7764310/#B14-ijerph-17-09312
WebMD. (n.d.). Chitosan: Overview, uses, side effects, precautions, interactions, dosing and reviews. WebMD. Retrieved January 15, 2023, from https://www.webmd.com/vitamins/ai/ingredientmono-625/chitosan
MediLexicon International. (n.d.). Moringa: Benefits, side effects, and risks. Medical News Today. Retrieved January 15, 2023, from https://www.medicalnewstoday.com/articles/319916
Yadav, K. N., Kadam, P. V., Patel, J. A., & Patil, M. J. (1970, January 1). Strychnos potatorum: Phytochemical and pharmacological review. Pharmacognosy Reviews. Retrieved January 15, 2023, from https://doi.org/10.4103/0973-7847.125533
Okaiyeto, K., Nwodo, U. U., Okoli, S. A., Mabinya, L. V., & Okoh, A. I. (2016, April). Implications for public health demands alternatives to inorganic and synthetic flocculants: Bioflocculants as important candidates. MicrobiologyOpen. Retrieved January 15, 2023, from https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4831466/
panelVictorAjaoabPersonEnvelopeHarryBruningbHuubRijnaartsbHardyTemminkab, A. links open overlay, VictorAjaoabPersonEnvelope, a, b, HarryBruningb, HuubRijnaartsb, HardyTemminkab, Highlights•Possible to combine wastewater treatment with EPS production as bioflocculants.•EPS comprised a mixture of high, & flocculants, A. N. (2018, May 22). Natural flocculants from fresh and saline wastewater: Comparative properties and flocculation performances. Chemical Engineering Journal. Retrieved January 15, 2023, from https://www.sciencedirect.com/science/article/pii/S1385894718309379
U.S. National Library of Medicine. (2020, December 12). Challenges and opportunities of Biocoagulant/Bioflocculant application for drinking water and wastewater treatment and its potential for sludge recovery. International journal of environmental research and public health. Retrieved January 15, 2023, from https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7764310/
American Chemical Society. (n.d.). Retrieved January 16, 2023, from https://pubs.acs.org/doi/10.1021/es305234d
Salim, S., Bosma, R., Vermuë, M. H., & Wijffels, R. H. (2011, October). Harvesting of microalgae by bio-flocculation. Journal of applied phycology. Retrieved January 15, 2023, from https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3172406/
Published
How to Cite
Issue
Section
Copyright (c) 2023 Shrika Kantipudi; Leya Joykutty
This work is licensed under a Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License.
Copyright holder(s) granted JSR a perpetual, non-exclusive license to distriute & display this article.