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Fenton Integration

NegotiableUpdate on 02/18
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Product details Fenton integration: Fenton method is a wastewater treatment technology that utilizes the chain reaction between Fe2+and H2O2 to catalyze the generation of highly oxidizing hydroxyl radicals (· OH), which can oxidize various toxic and difficult to degrade organic compounds. For the treatment of high concentration difficult to biodegrade wastewater, it can be used as a biological pretreatment to improve water quality, enhance the biodegradability of wastewater, and create favorable conditions for subsequent deep treatment
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Fenton Integration: Fenton process, as a wastewater treatment technology, utilizes the chain reaction between Fe2+and H2O2 to catalyze the generation of highly oxidizing hydroxyl radicals (· OH), which can oxidize various toxic and difficult to degrade organic compounds. For the treatment of high concentration difficult to biodegrade wastewater, it can be used as a biological pretreatment to improve water quality, enhance the biodegradability of wastewater, and create favorable conditions for subsequent deep treatment. Especially suitable for the deep treatment of organic wastewater such as leachate that is difficult to biodegrade or is difficult to effectively oxidize by general chemical methods.
The Fenton fluidized bed reactor, also known as the Fenton oxidation tower or Fenton reaction tower, is a necessary equipment for advanced oxidation of wastewater through Fenton reaction. This equipment utilizes fluidized bed technology to allow most of the Fe3+produced by the Fenton method to crystallize or precipitate on the surface of the fluidized bed Fenton carrier, which can significantly reduce the amount of chemical sludge generated by the traditional Fenton method (H2O2 addition reduced by 10% to 20%, Fe2+addition reduced by 50% to 70%, sludge amount reduced by 40% to 50%). At the same time, the iron oxide formed on the carrier surface has heterogeneous catalytic effect, and fluidized bed technology also promotes the chemical oxidation reaction rate and mass transfer effect, effectively improving COD removal rate by 10% to 20% and saving processing and operating costs by 30% to 50%.



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