Phenol degradation using combined effects of hydrodynamic cavitation and oxidant: Doehlert matrix

Author:

Mohod Ashish1ORCID,Palharim Priscila H.1,Ramos Bruno1,Moreira Paulo F.1,Teixeira Antonio Carlos S. C.1,Giudici Reinaldo1

Affiliation:

1. Universidade de São Paulo, Escola Politécnica, Departament of Chemical Engineering Travessa do Politécnico, São Paulo Brazil

Abstract

AbstractHydrodynamic cavitation (HC)‐based treatments have been proposed for the degradation of phenol as a toxic pollutant. The present work aimed to optimize the degradation of phenol using HC by means of Doehlert experimental design, which has not been previously addressed. Initially, operational parameters of hydraulic characteristics of the pump, inlet pressure, solution pH, and initial concentration were optimized; later, the effects of pH solution and H2O2 loading or initial pollutant concentration on phenol degradation were explored using the Doehlert experimental design. It was observed that phenol degradation is strongly dependent on the pH of the solution. Also, the acidic condition favors the formation of hydroxyl radicals and thus, the degradation of phenol. Based on the Doehlert matrix, the 94.1% phenol degradation and 68.60% total organic carbon (TOC) were obtained in 180 min at 304.5 mg/L of hydrogen peroxide at an initial concentration of 20 mg/L, 2.0 pH, and 90 psi inlet pressure, providing a cavitational yield of 6.33 × 10−6 mg/J and minimum treatment cost of US$/L 0.13. Overall, it has been observed that HC can be a promising route for the removal of pollutants (phenol) effectively using hydrogen peroxide as an additive.

Funder

National Council for Scientific Research

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Publisher

Wiley

Subject

Management, Monitoring, Policy and Law,Public Health, Environmental and Occupational Health,Pollution,Waste Management and Disposal

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