Turbidity and COD Removal from Municipal Wastewater Using a TiO2 Photocatalyst—A Comparative Study of UV and Visible Light

Author:

Munien Caressa1,Kweinor Tetteh Emmanuel1ORCID,Govender Timaine1ORCID,Jairajh Shivek1ORCID,Mguni Liberty L.1,Rathilal Sudesh1ORCID

Affiliation:

1. Green Engineering Research Group, Department of Chemical Engineering, Faculty of Engineering and the Built Environment, Durban University of Technology, Durban 4001, South Africa

Abstract

Water resources are depleting, and the availability and supply of clean, potable water are a global concern. Advanced oxidation processes (AOPs) possess immense prospects in water and wastewater treatment settings. This study investigated and optimized the photocatalytic treatment of wastewater using titanium dioxide (TiO2) as the photocatalyst. The one-factor-at-a-time (OFAT) technique was employed to evaluate the effects of reaction time (20–100 min), mixing speed (20–100 rpm), and catalyst load (0.3–1.5 g/L) on pH, colour, turbidity, and chemical oxygen demand (COD) removal from actual municipal wastewater. Reaction time and catalyst load were then identified as the two key factors selected to be modeled and were optimized for turbidity and COD removal using the Central Composite Design (CCD) of response surface methodology (RSM). These statistical models were developed and used to optimize the operating conditions. The results obtained showed a desirability efficiency of 74.7% at a 95% confidence level. The RSM model predicted results at the optimum conditions and showed reasonable agreement with the experimental results obtained. The optimal responses achieved were 32.64% COD removal and 95.17% turbidity removal. A comparative study between UV light and visible light was also conducted at optimum conditions, whereby the UV light was demonstrated to be highly effective for turbidity and COD removal. The optimal responses achieved were 25.58% COD removal and 66.88% turbidity removal for visible light.

Funder

South African Water Research Commission

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

Reference45 articles.

1. du Plessis, A. (2023). South Africa’s Water Predicament: Freshwater’s Unceasing Decline, Springer.

2. Zhang, F., Wang, X., Liu, H., Liu, C., Wan, Y., Long, Y., and Cai, Z. (2019). Recent Advances and Applications of Semiconductor Photocatalytic Technology. Appl. Sci., 9.

3. Kretzmann, S. (2023, March 06). Municipalities Are Failing to Provide Clean Water. Citizens Are Stepping in to Fix the Problem. Available online: https://www.groundup.org.za/article/water-in-two-thirds-municipalities-does-not-meet-minimum-standards/.

4. Toxopeüs, M. (2022, December 01). Understanding Water Issues and Challenges II: Municipalities and the Delivery of Water Services. Available online: https://hsf.org.za/publications/hsf-briefs/understanding-water-issues-and-challenges-ii-municipalities-and-the-delivery-of-water-services.

5. Xaba, N. (2023, March 10). The Centrality of the Water-Energy-Food Nexus in Navigating South Africa’s Power Crisis. Available online: https://www.dailymaverick.co.za/opinionista/2023-02-27-the-water-energy-food-nexus-and-south-africas-energy-crisis/.

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