References
- K. Kim, B. Kim, K.H. Knorr, J. Eum, Y. Choi, S. Jung, S. Peiffer,
Potential effects of sediment processes on water quality of an
artificial reservoir in the Asian monsoon region, Inland Waters,
6 (2015) 423–435.
- Y. Shin, T. Kim, S. Hong, S. Lee, E. Lee, S. Hong, C. Lee,
T.Y. Kim, M.S. Park, J. Park, T.-Y. Heo, Prediction of chlorophyll-a
concentrations in the Nakdong River using machine learning
methods, Water, 12 (2020) 1822, doi: 10.3390/w12061822.
- Y. Liu, Y. Wang, H. Sheng, F. Dong, R. Zou, L. Zhao, H. Guo,
X. Zhu, B. He, Quantitative evaluation of lake eutrophication
responses under alternative water diversion scenarios: a
water quality modeling based statistical analysis approach,
Sci. Total Environ., 468 (2014) 219–227.
- B. Vinçon-Leite, C. Casenave, Modelling eutrophication
in lake ecosystems: a review, Sci. Total Environ., 651 (2019)
2985–3001.
- R.K. Mishra, The effect of eutrophication on drinking water,
Br. J. Multidiscip. Adv. Stud., 4 (2023) 7–20.
- R. Purohit, Eutrophication: harmful algal blooms, Int. J.
Multidiscip. Res. Sci., 1 (2018) 267–278.
- R. Kumar, S. Parvaze, M.B. Huda, S.P. Allaie, The changing
water quality of lakes-a case study of Dal Lake, Kashmir
Valley, Environ. Monit. Assess., 194 (2022) 228, doi: 10.1007/s10661-022-09869-x.
- M.C. Randall, G.T. Carling, D.B. Dastrup, T. Miller, S.T. Nelson,
K.A. Rey, N.C. Hansen, B.R. Bickmore, Z.T. Aanderud,
Sediment potentially controls in-lake phosphorus cycling
and harmful cyanobacteria in shallow, eutrophic Utah Lake,
PLoS One, 14 (2019), doi: 10.1371/journal.pone.0212238.
- S.Y. Kang, H.J. Kim, T.I. Kim, H.J. Park, C.K. Na, M.Y. Han,
Remediation of sediments using micro-bubble, J. Korean Soc.
Environ., 38 (2016) 420–427.
- Y. Zhou, L. Wang, Y. Zhou, X.-z. Mao, Eutrophication control
strategies for highly anthropogenic influenced coastal
waters, Sci. Total Environ., 705 (2020) 135760, doi: 10.1016/j.scitotenv.2019.135760.
- Y. Choi, Y. Jeong, M. Jang, D. Kwak, Behavior characteristics
of phosphorus and capping effect of microbubble flotation
to control phosphorus release in the benthic sediment,
Water Qual. Res. J., 57 (2022) 91–106.
- Y.H. Choi, Y.H. Jeong, J.W. Yang, I.S. Chae, D.H. Kwak, Flotation
and behavior characteristics estimation of phosphorus
in sediments of lake using micro-bubble, J. Korean Soc.
Environ. Eng., 41 (2022) 328–336.
- H.S. Ayele, M. Atlabachew, Review of characterization,
factors, impacts, and solutions of Lake eutrophication: lesson
for lake Tana, Ethiopia, Environ. Sci. Pollut. Res., 28 (2021)
14233–14252.
- Q. Chena, H. Ruia, W. Lia, W. Zhang, Analysis of algal bloom
risk with uncertainties in lakes by integrating self-organizing
map and fuzzy information theory, Sci. Total Environ.,
482–483 (2014) 318–324.
- J. Zhao, G. Fu, Assessment of lake eutrophication recovery:
the filtering trajectory method (FTM) and its application to
Dianchi Lake, China, Environ. Monit. Assess., 191 (2019) 360,
doi: 10.1007/s10661-019-7492-2.
- S. Cho, B. Lim, J. Jung, S. Kim, H. Chae, J. Park, S. Park,
J.K. Park, Factors affecting algal blooms in a man-made lake and
prediction using an artificial neural network, Measurement,
53 (2014) 224–233.
- D. Ghernaout, N. Elboughdiri, S. Ghareba, A. Salih, Coagulation
process for removing algae and algal organic matter–an
overview, Sci. Res., 7 (2020) 1–21, doi: 10.4236/oalib.1106272.
- T.T. Bui, M. Han, Removal of Phormidium sp. by positively
charged bubble flotation, Miner. Eng., 72 (2015) 108–114.
- T. Kim, H. Park, M.Y. Han, Design parameter estimations
for adjustable bubble size in bubble generating system,
Water Sci. Technol., 77 (2018) 1–6.
- T. Kim, T. Temesgen, H. Reservoir, M. Han, Generation of
positively charged bubbles by dissolved air flotation in
aluminum electrolysis solution, Desal. Water Treat., 82 (2017)
39–43.
- T.-I. Kim, H. Park, M. Han, Development of algae removal
method based on positively charged bubbles, KSCE J. Civ. Eng.,
21 (2017) 2567–2572.
- T. Temesgen, T.T. Bui, M.Y. Han, T. Kim, H. Park, Micro
and nanobubble technologies as a new horizon for watertreatment
techniques: a review, Adv. Colloid Interface Sci.,
246 (2017) 40–51.
- S. Luo, X. Wu, H. Jiang, M. Yu, Y. Liu, A. Min, W. Li, R. Ruan,
Edible fungi-assisted harvesting system for efficient microalgae
bio-flocculation, Bioresour. Technol., 282 (2019) 325–330.
- I. Demir-Yilmaz, M.S. Ftouhi, S. Balayssac, P. Guiraud,
C. Coudret, C. Formosa-Dague, Bubble functionalization in
flotation process improve microalgae harvesting, Chem. Eng. J.,
452 (2023) 139349, doi: 10.1016/j.cej.2022.139349.
- K.H. Min, D.H. Kim, M.-R. Ki, S.P. Pack, Recent progress
in flocculation, dewatering, and drying technologies for
microalgae
utilization: scalable and low-cost harvesting
process development, Bioresour. Technol., 344 (2022) 126404,
doi: 10.1016/j.biortech.2021.126404.
- American Public Health Association (APHA), Standard
Methods for Examination of Water and Wastewater, 22nd ed,
2012, pp. 5–533.
- T.I. Kim, Y.H. Kim, M. Han, Development of novel oil washing
process using bubble potential energy, Mar. Pollut. Bull.,
64 (2012) 2325–2332.