PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 4, 2026Symmetry0 citationsOpen Access

Response Surface Optimization of Electrocoagulation for Color Removal and COD Reduction in Textile Wastewater

View Full Paper
HRHenry Michel Zelada RomeroCVCristina VázquezARAlexei Eduardo Zelada Romero

Key Points

  • The study aims to optimize electrocoagulation conditions for effective color and COD removal from textile wastewater.
  • Optimized treatment parameters included treatment time, NaCl concentration, and applied voltage.
  • Utilized a rotatable central composite design and response surface methodology for process optimization.
  • Applied optimized conditions to real textile wastewater collected from a denim dyeing process.
  • Under optimized conditions (16.5 min, 2.9 g·L−1 NaCl, 18 V), 99% color removal and 97% COD reduction achieved.
  • Specific energy consumption was 6.6 kWh·m−3 and sludge moisture content ranged from 92–94%.
  • In real wastewater, treatment led to 95% color removal and 80% COD reduction after 84 min.

Abstract

Textile wastewater contains recalcitrant dyes and organic matter, requiring efficient, scalable treatment technologies. This study optimized an aluminum-based electrocoagulation (EC) process to maximize color removal (Y1) and chemical oxygen demand (COD) reduction (Y2) using synthetic textile wastewater (SWW), and evaluated the practical transferability of the optimized conditions using real textile wastewater (RTW). A rotatable central composite design (CCD) coupled with response surface methodology (RSM) was used to assess the effects of treatment time, NaCl concentration, and applied voltage on both responses. From a modeling perspective, the results reveal the coexistence of symmetric and asymmetric response behaviors; quadratic effects define locally symmetric regions around the optimum, while interaction terms introduce asymmetry due to coupled electrochemical phenomena. Under the optimized conditions (16.5 min, 2.9 g·L−1 NaCl, 18 V), removal efficiencies reached 99% for color and 97% for COD reduction, with a specific energy consumption of 6.6 kWh·m−3 and sludge moisture content of 92–94%. To assess applicability beyond bench scale, the optimized voltage, current, and electrolyte concentration were applied to a 50 L batch of RTW collected from the final rinsing stage of a denim dyeing process. Treatment time was extended to 84 min to compensate for the lower current density at the larger scale; under these conditions, 95% color removal and 80% COD reduction were achieved.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Romero et al. (2026) studied this question.

synapsesocial.com/papers/69f836d93ed186a73998108chttps://doi.org/10.3390/sym18050756
Ask AI
Helpful
Bookmark
Share
View Full Paper