Degradation of Methyl Orange using Hydrodynamic Cavitation Technology Combined with Chlorine Dioxide Oxidation: Optimization Using Box–behnken Design (BBD)

In the present work, the hydrodynamic cavitation technology combined with chlorine dioxide oxidation was proved to be an effective method to degrade the methyl orange (MO). The influencing factors in the main experimental process such as solution temperature (25-45 °C), inlet pressure (0.2-0.6 Mpa),...

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Main Authors: Sijing Yang, Riya Jin, Zengdi He, Yina Qiao, Xinxin Liu
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2017-07-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/1244
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spelling doaj-c27bf160fba142f0903ce8ac867f5bf52021-02-18T20:58:21ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162017-07-015910.3303/CET1759178Degradation of Methyl Orange using Hydrodynamic Cavitation Technology Combined with Chlorine Dioxide Oxidation: Optimization Using Box–behnken Design (BBD)Sijing YangRiya JinZengdi HeYina QiaoXinxin LiuIn the present work, the hydrodynamic cavitation technology combined with chlorine dioxide oxidation was proved to be an effective method to degrade the methyl orange (MO). The influencing factors in the main experimental process such as solution temperature (25-45 °C), inlet pressure (0.2-0.6 Mpa), reaction time (20- 60min) were investigated. Response surface methodology (RSM) based on Box-Behnken design (BBD) experiments were employed to optimize the experimental methods. The best performance of combined process for degradation of chlorine dioxide was achieved at temperature of 38.13 °C, inlet pressure of 0.4 Mpa and reaction time of 60min and the optimal degradation rate was 82.97% which was very close to the actual experimental result of 82.8% under the same experimental condition. The experimental results showed that BBD could optimize the experimental results well with high accuracy which may simplify the experimental step and a better experimental result could obtained. https://www.cetjournal.it/index.php/cet/article/view/1244
collection DOAJ
language English
format Article
sources DOAJ
author Sijing Yang
Riya Jin
Zengdi He
Yina Qiao
Xinxin Liu
spellingShingle Sijing Yang
Riya Jin
Zengdi He
Yina Qiao
Xinxin Liu
Degradation of Methyl Orange using Hydrodynamic Cavitation Technology Combined with Chlorine Dioxide Oxidation: Optimization Using Box–behnken Design (BBD)
Chemical Engineering Transactions
author_facet Sijing Yang
Riya Jin
Zengdi He
Yina Qiao
Xinxin Liu
author_sort Sijing Yang
title Degradation of Methyl Orange using Hydrodynamic Cavitation Technology Combined with Chlorine Dioxide Oxidation: Optimization Using Box–behnken Design (BBD)
title_short Degradation of Methyl Orange using Hydrodynamic Cavitation Technology Combined with Chlorine Dioxide Oxidation: Optimization Using Box–behnken Design (BBD)
title_full Degradation of Methyl Orange using Hydrodynamic Cavitation Technology Combined with Chlorine Dioxide Oxidation: Optimization Using Box–behnken Design (BBD)
title_fullStr Degradation of Methyl Orange using Hydrodynamic Cavitation Technology Combined with Chlorine Dioxide Oxidation: Optimization Using Box–behnken Design (BBD)
title_full_unstemmed Degradation of Methyl Orange using Hydrodynamic Cavitation Technology Combined with Chlorine Dioxide Oxidation: Optimization Using Box–behnken Design (BBD)
title_sort degradation of methyl orange using hydrodynamic cavitation technology combined with chlorine dioxide oxidation: optimization using box–behnken design (bbd)
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2017-07-01
description In the present work, the hydrodynamic cavitation technology combined with chlorine dioxide oxidation was proved to be an effective method to degrade the methyl orange (MO). The influencing factors in the main experimental process such as solution temperature (25-45 °C), inlet pressure (0.2-0.6 Mpa), reaction time (20- 60min) were investigated. Response surface methodology (RSM) based on Box-Behnken design (BBD) experiments were employed to optimize the experimental methods. The best performance of combined process for degradation of chlorine dioxide was achieved at temperature of 38.13 °C, inlet pressure of 0.4 Mpa and reaction time of 60min and the optimal degradation rate was 82.97% which was very close to the actual experimental result of 82.8% under the same experimental condition. The experimental results showed that BBD could optimize the experimental results well with high accuracy which may simplify the experimental step and a better experimental result could obtained.
url https://www.cetjournal.it/index.php/cet/article/view/1244
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