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2024 | OriginalPaper | Chapter

Optimization of Methylene Blue Adsorption on Olive Seed Activated Carbon Using Response Surface Methodology (RSM) Modeling-Artificial Neural Network

Authors : Tijen Over Ozcelik, Mehmet Cetinkaya, Birsen Sarici, Dilay Bozdag, Esra Altintig

Published in: Advances in Intelligent Manufacturing and Service System Informatics

Publisher: Springer Nature Singapore

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Abstract

The chapter delves into the optimization of methylene blue adsorption using olive seed activated carbon, highlighting the application of Response Surface Methodology and Artificial Neural Networks. It discusses the significance of dye removal in wastewater treatment, the advantages of adsorption over other methods, and the detailed experimental design and analysis. The study compares the effectiveness of RSM and ANN in optimizing adsorption conditions, presenting a robust model for achieving 100% dye removal. The chapter also explores the interaction between variables such as pH, adsorbent dose, contact time, and dye concentration, providing valuable insights into the optimization of wastewater treatment processes.

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Metadata
Title
Optimization of Methylene Blue Adsorption on Olive Seed Activated Carbon Using Response Surface Methodology (RSM) Modeling-Artificial Neural Network
Authors
Tijen Over Ozcelik
Mehmet Cetinkaya
Birsen Sarici
Dilay Bozdag
Esra Altintig
Copyright Year
2024
Publisher
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-99-6062-0_67

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