Journal Article

·2015 OPEN ACCESS

Determination of Biological Treatability Processes of Textile Wastewater and Implementation of a Fuzzy Logic Model

Harun Akif Kabuk YTU , Yaşar Avşar YTU , S. Levent Kuzu YTU , Fatih İlhan YTU , Kubra Ulucan‐Altuntas YTU

International Journal of Photoenergy

Abstract

This study investigated the biological treatability of textile wastewater. For this purpose, a membrane bioreactor (MBR) was utilized for biological treatment after the ozonation process. Due to the refractory organic contents of textile wastewater that has a low biodegradability capacity, ozonation was implemented as an advanced oxidation process prior to the MBR system to increase the biodegradability of the wastewater. Textile wastewater, oxidized by ozonation, was fed to the MBR at different hydraulic retention times (HRT). During the process, color, chemical oxygen demand (COD), and biochemical oxygen demand (BOD) removal efficiencies were monitored for 24-hour, 12-hour, 6-hour, and 3-hour retention times. Under these conditions, 94% color, 65% COD, and 55% BOD removal efficiencies were obtained in the MBR system. The experimental outputs were modeled with multiple linear regressions (MLR) and fuzzy logic. MLR results suggested that color removal is more related to COD removal relative to BOD removal. A surface map of this issue was prepared with a fuzzy logic model. Furthermore, fuzzy logic was employed to the whole modeling of the biological system treatment. Determination coefficients for COD, BOD, and color removal efficiencies were 0.96, 0.97, and 0.92, respectively.

Keywords

Chemical oxygen demand Wastewater Biochemical oxygen demand Biodegradation Textile Pulp and paper industry Hydraulic retention time Fuzzy logic Environmental science Process (computing) Chemistry Environmental engineering Computer science Materials science Engineering Organic chemistry

Subject Areas

Advanced oxidation water treatment ·Water Science and Technology ·Physical Sciences
Enzyme-mediated dye degradation ·Plant Science ·Life Sciences
Microplastics and Plastic Pollution ·Pollution ·Physical Sciences

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