Research Article
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Year 2025, Volume: 8 Issue: 1, 134 - 138, 31.03.2025
https://doi.org/10.35208/ert.1498597

Abstract

References

  • R. D. Letterman, A. Amirtharajah, and C. R. O’Melia, “Coagulation and Flocculation in Water Quality and Treatment,” 5th ed., McGraw-Hill, 1999.
  • N. F. Gray, “Water technology: An introduction for environmental scientist and engineers,” 2nd ed., Elsevier Butterworth-Heinemann, 2005.
  • S. Kurniawan, Novarini, E. Yuliwati, E. Ariyanto, M. Morsin, R. Sanudin, and S. Nafisah, “Greywater treatment technologies for aquaculture safety: Review,” Journal of King Saud University – Engineering Sciences, Vol. 35(5), pp. 327-334, 2023. [CrossRef]
  • L. Guo, D. Zhang, D. Xu, and Y. Chen, “An experimental study of low concentration sludge settling velocity under turbulent condition,” Water Research, Vol. 43, pp. 2383– 2390, 2009. [CrossRef]
  • O. Larue, and E. Vorobiev, “Flocs size estimation in iron induced electrocoagulation and coagulation using sedimentation data,” International Journal of Mineral Processing, Vol. 71, pp. 1–15, 2003. [CrossRef]
  • L. Besra, D. D. K. Sengupta, and S. K. Roy, “Particle characteristics and their influence on dewatering of kaolin, calcite and quartz suspension,” International Journal of Mineral Processing, Vol. 59, pp. 89–112, 2000. [CrossRef]
  • C. Turchiulli, and C. Fargues, “Influence of structural properties of alum and ferric flocs on sludge dewaterability,” Chemical Engineering Journal, Vol. 103, pp. 123–131, 2004. [CrossRef]
  • J. Lu, J. Yang, K. Xu, J. Hao, and Y. Y. Li, “Phosphorus release from coprecipitants formed during orthophosphate removal with Fe(III) salt coagulation: Effects of pH, Eh, temperature and aging time,” Journal of Environmental Chemical Engineering, Vol. 4(3), pp. 3322-3329, 2016. [CrossRef]
  • A. C. Rodrigues, M. Boroski, N. S. Shimada, J. C. Garcia, J. Nozaki, and N. Hioka, “Treatment of paper pulp and paper mill wastewater by coagulation flocculation followed by heterogeneous photocatalysis,” Journal of Photochemistry and Photobiology A: Chemistry, Vol. 194(1), pp. 1–10, 2008. [CrossRef]
  • D. Fitria, M. Scholz, G. M. Swift, and F. Al-Faraj, “Impact of temperature and coagulants on sludge dewaterability,” International Journal of Technology, Vol. 13(3), pp. 596-605, 2022. [CrossRef]
  • C. Chen, P. Zhang, G. Zeng, J. Deng, Y. Zhou, and H. Lu, “Sewage sludge conditioning with coal fly ash modified by sulphuric acid. Chemical Engineering Journal, Vol. 158(3), pp. 616–626, 2010. [CrossRef]
  • H. N. P. Dayarathne, M. J. Jeong, S. Angove, R. Aryal, S. R. Paudel, and B. Mainali, “Effect of temperature on turbidity removal by coagulation: Sludge recirculation for rapid settling,” Journal of Water Process Engineering, Vol. 46, Article 102559, 2022. [CrossRef]
  • Hadadi A, Imessaoudene A, Bollinger J-C, Assadi AA, Amrane A, and Mouni L. (2022). Comparison of four plant-based bio-coagulants performances against alum and ferric chloride in the turbidity improvement of bentonite synthetic water. Water, Vol. 14(20), Article 3324, 2022. [CrossRef]
  • M. Lubis, D. Fujianti, R. Zahara, and D. Darmadi, “The optimization of the electrocoagulation of palm oil mill effluent with a box-behnken design,” International Journal of Technology, Vol. 10(1), pp. 137-146, 2019. [CrossRef]
  • Y. Cheng, L. Xu, and C. Liu, “Red mud-based polyaluminium ferric chloride flocculant: Preparation, characterisation, and flocculation performance,” Environmental Technology & Innovation, Vol. 27, Article 102509, 2022. [CrossRef]
  • J. H. A. Van der Woude, and P. L. De Bruyn, “Formation of colloidal dispersion from saturated iron(III) nitrate solutions. I. Precipitation of amorphous iron hydroxide,” Journal of Colloid and Surface, Vol. 8, pp. 55–78, 1983. [CrossRef]
  • L. S. Kang, and J. L. Cleasby, “Temperature effects on flocculation kinetics using Fe(III) coagulant,” Journal of Environmental Engineering, Vol. 121(12), pp. 893–901, 1995. [CrossRef]
  • F. Xiao, B. Ma, P. Yib, and J. C. H. Huang, “Effects of low temperature on coagulation of kaolinite suspensions,” Water Research, Vol. 42, pp. 2983–2992, 2008. [CrossRef]
  • E. Podgórni, and M. Rząsa, “Investigation of the effects of salinity and temperature on the removal of iron from water by aeration, filtration, and coagulation. Polish Journal of Environmental Studies, Vol. 23(6), pp. 2157-2161, 2014. [CrossRef]
  • M. A. Inam, R. Khan, K. H. Lee, and Y. M. Wie, “Removal of arsenic oxyanions from water by ferric chloride—optimization of process conditions and implications for improving coagulation performance,” International Journal of Environmental Research and Public Health, Vol. 18(18), Article 9812, 2021. [CrossRef]
  • P. Canizares, C. Jiménez, F. Martınez, F, M. A. Rodrigo, and C. Saez, “The pH as a key parameter in the choice between coagulation and electrocoagulation for the treatment of wastewaters. Journal of Hazardous Materials, Vol. 163, pp. 158–164, 2009. [CrossRef]
  • S. Ghafari, H. A. Aziz, M. H. Isa, and A. A. Zinatizadeh, “Application of response surface methodology (RSM) to optimize coagulation–flocculation treatment of leachate using poly-aluminum chloride (PAC) and alum,” Journal of Hazardous Materials, Vol. 163, pp. 650–656, 2009. [CrossRef]
  • Y. Wang, B. Y. Gao, X. M. Xu, W. Y. Xu, and G. Y. Xu, “Characterization of floc size, strength and structure in various aluminium coagulants treatment,” Journal of Colloid and Interface Science, Vol. 332, pp. 354–359, 2009. [CrossRef]
  • G. Gnanaprakash, S. Mahadevan, T. Jayakumar, P. Kalyanasundaram, J. Philip,, and B. Raj, “Effect of initial pH and temperature of iron salt solutions on formation of magnetite nanoparticles,” Materials Chemistry and Physics, Vol. 103(1), pp. 168–175, 2007. [CrossRef]
  • O. Sawalha, and M. Scholz, “Impact of temperature on sludge dewatering properties assessed by the capillary suction time. Industrial & Engineering Chemistry Research, Vol. 51(6), pp. 2782–2788, 2012. [CrossRef]
  • J. Vilcaez, R. Yamada, and C. Inoue, “Effect of pH reduction and ferric ion addition on the leaching of chalcopyrite at thermophilic temperatures,” Hydrometallurgy, Vol. 96(1–2), pp. 62–71, 2009. [CrossRef]

Impact of temperature on ferric chloride performance in water coagulation

Year 2025, Volume: 8 Issue: 1, 134 - 138, 31.03.2025
https://doi.org/10.35208/ert.1498597

Abstract

Temperature has an essential function and becomes an important parameter in a coagulation process as it influences metal ion hydrolysis reaction rate. In order to get further explanation, a research using ferric chloride as a coagulant has been performed. The research aims to find out more about the effect of temperature on coagulation performance using turbidity, floc size, ferric, and water content parameter. The temperature 5℃ - 45℃ with an interval of 5ºC has been investigated to simulate field (i.e. outside) measurements in winter, spring and autumn, and summer, respectively. The result shows coagulation performance isaffected by temperature elevation. Turbidity gets lower for temperature between 5℃-40℃ and gets higher for temperature 45℃. Floc size becomes larger for temperature 5℃-40℃ and becomes smaller as temperature increase.At temperature between 5ºC and 15ºC, the higher the temperature, the lower the ferric residue produced in coagulation water. For floc water contents, there is no virtually link between temperature and floc water contents. Temperature correlated well with turbidity value (-0.876) and floc size (0.985) but not correlated with ferric residue (0.366)and floc water content (0.179).

Supporting Institution

Universitas Andalas

Thanks

Hibah PUPT DIKTI Universitas Andalas

References

  • R. D. Letterman, A. Amirtharajah, and C. R. O’Melia, “Coagulation and Flocculation in Water Quality and Treatment,” 5th ed., McGraw-Hill, 1999.
  • N. F. Gray, “Water technology: An introduction for environmental scientist and engineers,” 2nd ed., Elsevier Butterworth-Heinemann, 2005.
  • S. Kurniawan, Novarini, E. Yuliwati, E. Ariyanto, M. Morsin, R. Sanudin, and S. Nafisah, “Greywater treatment technologies for aquaculture safety: Review,” Journal of King Saud University – Engineering Sciences, Vol. 35(5), pp. 327-334, 2023. [CrossRef]
  • L. Guo, D. Zhang, D. Xu, and Y. Chen, “An experimental study of low concentration sludge settling velocity under turbulent condition,” Water Research, Vol. 43, pp. 2383– 2390, 2009. [CrossRef]
  • O. Larue, and E. Vorobiev, “Flocs size estimation in iron induced electrocoagulation and coagulation using sedimentation data,” International Journal of Mineral Processing, Vol. 71, pp. 1–15, 2003. [CrossRef]
  • L. Besra, D. D. K. Sengupta, and S. K. Roy, “Particle characteristics and their influence on dewatering of kaolin, calcite and quartz suspension,” International Journal of Mineral Processing, Vol. 59, pp. 89–112, 2000. [CrossRef]
  • C. Turchiulli, and C. Fargues, “Influence of structural properties of alum and ferric flocs on sludge dewaterability,” Chemical Engineering Journal, Vol. 103, pp. 123–131, 2004. [CrossRef]
  • J. Lu, J. Yang, K. Xu, J. Hao, and Y. Y. Li, “Phosphorus release from coprecipitants formed during orthophosphate removal with Fe(III) salt coagulation: Effects of pH, Eh, temperature and aging time,” Journal of Environmental Chemical Engineering, Vol. 4(3), pp. 3322-3329, 2016. [CrossRef]
  • A. C. Rodrigues, M. Boroski, N. S. Shimada, J. C. Garcia, J. Nozaki, and N. Hioka, “Treatment of paper pulp and paper mill wastewater by coagulation flocculation followed by heterogeneous photocatalysis,” Journal of Photochemistry and Photobiology A: Chemistry, Vol. 194(1), pp. 1–10, 2008. [CrossRef]
  • D. Fitria, M. Scholz, G. M. Swift, and F. Al-Faraj, “Impact of temperature and coagulants on sludge dewaterability,” International Journal of Technology, Vol. 13(3), pp. 596-605, 2022. [CrossRef]
  • C. Chen, P. Zhang, G. Zeng, J. Deng, Y. Zhou, and H. Lu, “Sewage sludge conditioning with coal fly ash modified by sulphuric acid. Chemical Engineering Journal, Vol. 158(3), pp. 616–626, 2010. [CrossRef]
  • H. N. P. Dayarathne, M. J. Jeong, S. Angove, R. Aryal, S. R. Paudel, and B. Mainali, “Effect of temperature on turbidity removal by coagulation: Sludge recirculation for rapid settling,” Journal of Water Process Engineering, Vol. 46, Article 102559, 2022. [CrossRef]
  • Hadadi A, Imessaoudene A, Bollinger J-C, Assadi AA, Amrane A, and Mouni L. (2022). Comparison of four plant-based bio-coagulants performances against alum and ferric chloride in the turbidity improvement of bentonite synthetic water. Water, Vol. 14(20), Article 3324, 2022. [CrossRef]
  • M. Lubis, D. Fujianti, R. Zahara, and D. Darmadi, “The optimization of the electrocoagulation of palm oil mill effluent with a box-behnken design,” International Journal of Technology, Vol. 10(1), pp. 137-146, 2019. [CrossRef]
  • Y. Cheng, L. Xu, and C. Liu, “Red mud-based polyaluminium ferric chloride flocculant: Preparation, characterisation, and flocculation performance,” Environmental Technology & Innovation, Vol. 27, Article 102509, 2022. [CrossRef]
  • J. H. A. Van der Woude, and P. L. De Bruyn, “Formation of colloidal dispersion from saturated iron(III) nitrate solutions. I. Precipitation of amorphous iron hydroxide,” Journal of Colloid and Surface, Vol. 8, pp. 55–78, 1983. [CrossRef]
  • L. S. Kang, and J. L. Cleasby, “Temperature effects on flocculation kinetics using Fe(III) coagulant,” Journal of Environmental Engineering, Vol. 121(12), pp. 893–901, 1995. [CrossRef]
  • F. Xiao, B. Ma, P. Yib, and J. C. H. Huang, “Effects of low temperature on coagulation of kaolinite suspensions,” Water Research, Vol. 42, pp. 2983–2992, 2008. [CrossRef]
  • E. Podgórni, and M. Rząsa, “Investigation of the effects of salinity and temperature on the removal of iron from water by aeration, filtration, and coagulation. Polish Journal of Environmental Studies, Vol. 23(6), pp. 2157-2161, 2014. [CrossRef]
  • M. A. Inam, R. Khan, K. H. Lee, and Y. M. Wie, “Removal of arsenic oxyanions from water by ferric chloride—optimization of process conditions and implications for improving coagulation performance,” International Journal of Environmental Research and Public Health, Vol. 18(18), Article 9812, 2021. [CrossRef]
  • P. Canizares, C. Jiménez, F. Martınez, F, M. A. Rodrigo, and C. Saez, “The pH as a key parameter in the choice between coagulation and electrocoagulation for the treatment of wastewaters. Journal of Hazardous Materials, Vol. 163, pp. 158–164, 2009. [CrossRef]
  • S. Ghafari, H. A. Aziz, M. H. Isa, and A. A. Zinatizadeh, “Application of response surface methodology (RSM) to optimize coagulation–flocculation treatment of leachate using poly-aluminum chloride (PAC) and alum,” Journal of Hazardous Materials, Vol. 163, pp. 650–656, 2009. [CrossRef]
  • Y. Wang, B. Y. Gao, X. M. Xu, W. Y. Xu, and G. Y. Xu, “Characterization of floc size, strength and structure in various aluminium coagulants treatment,” Journal of Colloid and Interface Science, Vol. 332, pp. 354–359, 2009. [CrossRef]
  • G. Gnanaprakash, S. Mahadevan, T. Jayakumar, P. Kalyanasundaram, J. Philip,, and B. Raj, “Effect of initial pH and temperature of iron salt solutions on formation of magnetite nanoparticles,” Materials Chemistry and Physics, Vol. 103(1), pp. 168–175, 2007. [CrossRef]
  • O. Sawalha, and M. Scholz, “Impact of temperature on sludge dewatering properties assessed by the capillary suction time. Industrial & Engineering Chemistry Research, Vol. 51(6), pp. 2782–2788, 2012. [CrossRef]
  • J. Vilcaez, R. Yamada, and C. Inoue, “Effect of pH reduction and ferric ion addition on the leaching of chalcopyrite at thermophilic temperatures,” Hydrometallurgy, Vol. 96(1–2), pp. 62–71, 2009. [CrossRef]
There are 26 citations in total.

Details

Primary Language English
Subjects Water Treatment Processes
Journal Section Research Articles
Authors

Dewi Fitria 0000-0002-6780-7664

Puti Sri Komala This is me 0000-0002-5048-6518

Lita Darmayanti This is me 0000-0002-0174-7873

Publication Date March 31, 2025
Submission Date July 8, 2024
Acceptance Date August 12, 2024
Published in Issue Year 2025 Volume: 8 Issue: 1

Cite

APA Fitria, D., Sri Komala, P., & Darmayanti, L. (2025). Impact of temperature on ferric chloride performance in water coagulation. Environmental Research and Technology, 8(1), 134-138. https://doi.org/10.35208/ert.1498597
AMA Fitria D, Sri Komala P, Darmayanti L. Impact of temperature on ferric chloride performance in water coagulation. ERT. March 2025;8(1):134-138. doi:10.35208/ert.1498597
Chicago Fitria, Dewi, Puti Sri Komala, and Lita Darmayanti. “Impact of Temperature on Ferric Chloride Performance in Water Coagulation”. Environmental Research and Technology 8, no. 1 (March 2025): 134-38. https://doi.org/10.35208/ert.1498597.
EndNote Fitria D, Sri Komala P, Darmayanti L (March 1, 2025) Impact of temperature on ferric chloride performance in water coagulation. Environmental Research and Technology 8 1 134–138.
IEEE D. Fitria, P. Sri Komala, and L. Darmayanti, “Impact of temperature on ferric chloride performance in water coagulation”, ERT, vol. 8, no. 1, pp. 134–138, 2025, doi: 10.35208/ert.1498597.
ISNAD Fitria, Dewi et al. “Impact of Temperature on Ferric Chloride Performance in Water Coagulation”. Environmental Research and Technology 8/1 (March 2025), 134-138. https://doi.org/10.35208/ert.1498597.
JAMA Fitria D, Sri Komala P, Darmayanti L. Impact of temperature on ferric chloride performance in water coagulation. ERT. 2025;8:134–138.
MLA Fitria, Dewi et al. “Impact of Temperature on Ferric Chloride Performance in Water Coagulation”. Environmental Research and Technology, vol. 8, no. 1, 2025, pp. 134-8, doi:10.35208/ert.1498597.
Vancouver Fitria D, Sri Komala P, Darmayanti L. Impact of temperature on ferric chloride performance in water coagulation. ERT. 2025;8(1):134-8.