2016Environmental Engineering ScienceRequires access

Effect of Zeta Potential on Collision-Attachment Coefficient and Removal Efficiency for Dissolved Carbon Dioxide Flotation

Mi‐Sug Kim, Dong-Heui Kwak

Open publisher page 23 citations

Abstract

Abstract Many researchers have studied the importance of zeta potential control for algae separation by flotation processes. This study focused on measuring and comparing the zeta potential of bubbles and algae ( Anabaena spp.) at varying pH with and without chemicals, and simulating the flotation model to estimate the effect of the zeta potential on the collision-attachment coefficients and removal efficiency at pH ≥9. The findings of this study are as follows: (1) at pH 2–12, the zeta potential of CO 2 bubbles without surfactants ranged from −14.69 to −32.38 mV and the mean zeta potential of algae ranged from −16 to −31 mV. (2) Bubbles showed positive zeta potential values at pH <9 in the presence of a cationic surfactant, while negative zeta potential values increased in the presence of anionic and nonionic surfactants. Nonionic chemicals did not have a significant effect on the zeta potential of the bubbles. (3) Model simulation results at pH >9 showed the sensitivity of zeta potential and size of bubbles and algal particles on the collision-attachment coefficient and removal efficiency. Optimum algae removal was achieved with CO 2 bubble zeta potential between −0.5 and +2.5 mV at pH ≥9.

About this research paper

What this paper is about

Abstract Many researchers have studied the importance of zeta potential control for algae separation by flotation processes. This study focused on measuring and comparing the zeta potential of bubbles and algae ( Anabaena spp.) at varying pH with and without chemicals, and simulating the flotation model to estimate the effect of the zeta potential on the collision-attachment coefficients and removal efficiency at pH ≥9. The findings of this study are as follows: (1) at pH 2–12, the zeta potential of CO 2 bubbles without surfactants ranged from −14.69 to −32.38 mV and the mean zeta potential of algae ranged from −16 to −31 mV. (2) Bubbles showed positive zeta potential values at pH <9 in the presence of a cationic surfactant, while negative zeta potential values increased in the presence of anionic and nonionic surfactants. Nonionic chemicals did not have a significant effect on the zeta potential of the bubbles. (3) Model simulation results at pH >9 showed the sensitivity of zeta potential and size of bubbles and algal particles on the collision-attachment coefficient and removal efficiency. Optimum algae removal was achieved with CO 2 bubble zeta potential between −0.5 and +2.5 mV at pH ≥9.

Why it matters

OpenAlex reports 23 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract Many researchers have studied the importance of zeta potential control for algae separation by flotation processes. This study focused on measuring and comparing the zeta potential of bubbles and algae ( Anabaena spp.) at varying pH with and without chemicals, and simulating the flotation model to estimate the effect of the zeta potential on the collision-attachment coefficients and removal efficiency at pH ≥9. The findings of this study are as follows: (1) at pH 2–12, the zeta potential of CO 2 bubbles without surfactants ranged from −14.69 to −32.38 mV and the mean zeta potential of algae ranged from −16 to −31 mV. (2) Bubbles showed positive zeta potential values at pH <9 in the presence of a cationic surfactant, while negative zeta potential values increased in the presence of anionic and nonionic surfactants. Nonionic chemicals did not have a significant effect on the zeta potential of the bubbles. (3) Model simulation results at pH >9 showed the sensitivity of zeta potential and size of bubbles and algal particles on the collision-attachment coefficient and removal efficiency. Optimum algae removal was achieved with CO 2 bubble zeta potential between −0.5 and +2.5 mV at pH ≥9.

Key concepts: Zeta potential, Chemistry, Cationic polymerization, Pulmonary surfactant, Chromatography, Chemical engineering, Analytical Chemistry (journal), Organic chemistry

Related papers

Back to paper searchBrowse research topicsOriginal source
Effect of Zeta Potential on Collision-Attachment Coefficient and Removal Efficiency for Dissolved Carbon Dioxide Flotation — Research Paper | ScholarLens