Removal of C.I. Reactive Red 2 by low pressure UV/chlorine advanced oxidation
-
Add time:07/14/2019 Source:sciencedirect.com
Azo dyes are commonly found as pollutants in wastewater from the textile industry, and can cause environmental problems because of their color and toxicity. The removal of a typical azo dye named C.I. Reactive Red 2 (RR2) during low pressure ultraviolet (UV)/chlorine oxidation was investigated in this study. UV irradiation at 254 nm and addition of free chlorine provided much higher removal rates of RR2 and color than UV irradiation or chlorination alone. Increasing the free chlorine dose enhanced the removal efficiency of RR2 and color by UV/chlorine oxidation. Experiments performed with nitrobenzene (NB) or benzoic acid (BA) as scavengers showed that radicals (especially OH) formed during UV/chlorine oxidation are important in the RR2 removal. Addition of HCO3− and Cl− to the RR2 solution did not inhibit the removal of RR2 during UV/chlorine oxidation.
We also recommend Trading Suppliers and Manufacturers of C.I. Acid blue 254 (cas 61967-88-2). Pls Click Website Link as below: cas 61967-88-2 suppliers
Prev:Photocatalytic degradation, toxicological assessment and degradation pathway of C.I. Reactive Blue 19 dye
Next:Decolorization of C.I. Acid Blue 9 solution by UV/Nano-TiO2, Fenton, Fenton-like, electro-Fenton and electrocoagulation processes: A comparative study) - 【Back】【Close 】【Print】【Add to favorite 】
- Related Information
- Decolorization of Azo Dye C.I. Direct Black 38 by Photocatalytic Method Using TiO2 and Optimizing of Process07/21/2019
- Photo-catalytic decolourisation of toxic dye with N-doped titania: A case study with Acid Blue 2507/19/2019
- The role of dissolved organic carbon concentration and composition on nickel toxicity to early life-stages of the blue mussel Mytilus edulis and purple sea urchin Strongylocentrotus purpuratus07/18/2019
- Photocatalytic degradation of Acid Blue 80 using iron doped TiO2 catalyst: Understanding the effect of operating parameters and combinations for synergism07/17/2019
- The effect of operational parameters on UV/H2O2 decolourisation of Acid Blue 7407/16/2019
- Decolorization of C.I. Acid Blue 9 solution by UV/Nano-TiO2, Fenton, Fenton-like, electro-Fenton and electrocoagulation processes: A comparative study07/15/2019
- Photocatalytic degradation, toxicological assessment and degradation pathway of C.I. Reactive Blue 19 dye07/13/2019
- Evaluation of antioxidant enzymes activities and identification of intermediate products during phytoremediation of an anionic dye (C.I. Acid Blue 92) by pennywort (Hydrocotyle vulgaris)07/12/2019
- A convenient and efficient process for the manufacture of benzenesulfonic acid, 2-((4-amino-3-bromo-9,10-dihydro-9,10-dioxo-1-anthracenyl)amino)-5-methyl monosodium salt (C.I. Acid Blue 78) directly from anthraquinone07/11/2019
-
Health and Chemical more >


