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Bir Tekstil Boyasının Çevre Dostu Bir Oksidant Olan CaO2 ile Sulu Fazdan Giderimi

Yıl 2024, Cilt: 39 Sayı: 4, 873 - 880, 25.12.2024
https://doi.org/10.21605/cukurovaumfd.1605873

Öz

Tekstil boyar maddelerini içeren atıksuların alıcı ortamlarda varlığı, çevre sağlığı için önemli sakıncalar oluşturmaktadır. Boyar maddelerin etkili bir şekilde giderimini sağlayan yöntemler arasında ileri oksidasyon prosesleri yer almaktadır. Yaygın kullanılan yöntemler arasında Fenton prosesleri bulunsa da, bu yöntem metal içerikli çok miktarda çamur oluşturması nedeniyle önemli bir dezavantaj teşkil etmektedir. CaO2, çevre dostu ve güçlü oksidasyon potansiyeline sahip bir kimyasaldır. Bu çalışmada, değişken deneysel koşullar altında CaO2 ile Crystal Violet boyar maddesinin sulu fazda oksidasyonu araştırılmıştır. CaO2, demir gibi aktivatör olmadan yüksek oksidasyon verimleri göstermiştir. Süreç sonunda çamur oluşumunun önüne geçilmiştir. CV oksidasyonu için optimum pH değerinin 10 olduğu tespit edilmiştir. Oksidasyon çalışmaları, düşük CaO2 dozlarıyla kısa reaksiyon sürelerinde yüksek oksidasyon verimlerinin elde edilebileceğini ortaya koymuştur. 200 mg/L CV'nin %99,9 oranında giderimi için 0,1 gram CaO2 kullanılarak 25 dakikalık bir reaksiyon süresinin yeterli olduğu belirlenmiştir.

Kaynakça

  • 1. Sağlam, S., Türk, F.N., Arslanoğlu, H., 2023. Use and applications of metal-organic frameworks (MOF) in dye adsorption. J. Environ. Chem. Eng., 110568.
  • 2. Hadadi, A., Imessaoudene, A., Bollinger, J.C., Bouzaza, A., Amrane, A., Tahraoui, H., Mouni, L., 2023. Aleppo pine seeds (Pinus halepensis Mill.) as a promising novel green coagulant for the removal of Congo red dye: Optimization via machine learning algorithm. J. Environ. Manage., 331, 117286.
  • 3. Raj, S., Singh, H., Bhattacharya, J., 2023. Treatment of textile industry wastewater based on coagulation-flocculation aided sedimentation followed by adsorption: Process studies in an industrial ecology concept. Sci. Total. Environ., 857, 159464.
  • 4. Rosli, N.A., Ahmad, M.A., Noh, T.U., 2023. Unleashing the potential of pineapple peel-based activated carbon: Response surface methodology optimization and regeneration for methylene blue and methyl red dyes adsorption. Inorg. Chem. Commun., 155, 111041.
  • 5. He, Y., Huang, Y., Wang, Q., Pan, X., 2023. Controlling waste by waste: a modified landfill leachate coagulation sludge activated peroxymonosulfate process achieves complete BPA degradation. Environ. Technol., 44(7), 1027-1034.
  • 6. Nachiyar, C.V., Rakshi, A.D., Sandhya, S., Jebasta, N.B.D., Nellore, J., 2023. Developments in treatment technologies of dye-containing effluent: A review. CSCEE, 100339.
  • 7. Tian, F., Wang, Y., Guo, G., Ding, K., Yang, F., Wang, C., Wang, H., Yan, M., 2023. Meta-genome analysis of a newly enriched azo dyes detoxification halo-thermophilic bacterial consortium. Environ. Res., 237, 116828.
  • 8. Lawal, I.M., Soja, U.B., Hussaini, A., Saleh, D., Aliyu, M., Noor, A., Birniwa, A.H., Jagaba, A.H., 2023. Sequential batch reactors for aerobic and anaerobic dye removal: a mini-review. CSCEE, 100547.
  • 9. Albahnasawi, A., Yüksel, E., Gürbulak, E., Duyum, F., 2020. Fate of aromatic amines through decolorization of real textile wastewater under anoxic-aerobic membrane bioreactor. J. Environ. Chem. Eng., 8(5), 104226.
  • 10. Iqbal, A., Yusaf, A., Usman, M., Hussain, B.T., Mansha, A., 2023. Insight into the degradation of different classes of dyes by advanced oxidation processes; a detailed review. Int. J. Environ. An. Ch., 857(2), 159172.
  • 11. Eduardo, M.C.C., María, F.A.F., Carmen, F.G., 2020. Advanced oxidation processes for the removal of antibiotics from water. An Overview Water, 12, 102.
  • 12. Wang, X., Jing, J., Zhou, M., Dewil, R., 2023. Recent advances in H2O2-based advanced oxidation processes for removal of antibiotics from wastewater. Chinese Chem. Lett., 34(3), 107621.
  • 13. Shuguang, L., Xiang, Z., Yunfei, X., 2017. Application of calcium peroxide in water and soil treatment: A review. J. Haz. Mater., 337, 163-177.
  • 14. Monica, B., Ioannis, A.K., 2017. Sulfate radical technologies as tertiary treatment for the removal of emerging contaminants from wastewater. Sustainability, 9, 1604.
  • 15. Xulei, Z., Yueyue, L., Junhe, L., Lei, Z., Jean-Marc, C., Quansuo, Z., Yuefei, J., 2021. UV/H2O2 oxidation of chloronitrobenzenes in waters revisited: Hydroxyl radical induced self-nitration. Journal of Photochemistry and Photobiology A: Chemistry Available, 113162.
  • 16. Hou, Z., Wang, W., Dong, N., Chen, P., Ge, L., Tan, F., Wang, X., Qia, X., Wong, P.K., 2023. A dual-oxidant advanced oxidation process system containing CaO2 and peroxymonosulfate for organic pollutant degradation: High adaptability and synergistic effect. Sep. Purif. Technol., 308, 122909.
  • 17. Wang, Y., Wang, W., Yan, F., Ding, Z., Feng, L., Zhao, J., 2019. Effects and mechanisms of calcium peroxide on purification of severely eutrophic water. The Science of the Total Environment, 650, 2, 2796.
  • 18. Qiuxiang, X., Qi-Su, H., We, W., Jin, S., Xiaoh, D., Bing-Ji, N., 2020. Improving the treatment of waste activated sludge using calcium peroxide. Wat. Res., 187, 116440.
  • 19. Yong, S., Muhammad D., Meesam A., Ali, S., Ming, L., Yanchen, L., Zhaofu, S., Qian, Z. Xueke, Shuguang, L., 2020. Trichloroethene degradation by nanoscale CaO2 activated with Fe(II)/FeS: The role of FeS and the synergistic activation mechanism of Fe(II)/FeS. Chem. Eng. J., 394(15), 124830.
  • 20. Meesam, A., Usman, F., Shuguang, L., Yong, S., Ming, L., Ayyaz, A., Ali, S., Zain, A., 2020. Synthesis of controlled release calcium peroxide nanoparticles (CR-nCPs): Characterizations, H2O2 liberate performances and pollutant degradation efficiency. Sep. Pur. Technol., 241(15), 116729.
  • 21. Sajedeh, K., Akbar, K., Shahin, B., 2020. Fabrication of amine-decorated nonspherical microparticles with calcium peroxide cargo for controlled release of oxygen. Journal of Biomedical Materials Research Part A, 108, 136-147.
  • 22. Erkurt, F.E., Mert, A., 2023. Eco-friendly oxidation of a reactive textile dye by CaO2: Effects of specific independent parameters. Environ. Technol,. 44(21), 3294-3315.

Removal of a Textile Dye from Aqueous Phase Using CaO2 as an Environmentally Friendly Oxidant

Yıl 2024, Cilt: 39 Sayı: 4, 873 - 880, 25.12.2024
https://doi.org/10.21605/cukurovaumfd.1605873

Öz

The presence of wastewater containing textile dyes in receiving environments poses significant risks to environmental health. Advanced oxidation processes are among the methods that effectively remove dye substances. Although Fenton processes are commonly used, they present a significant disadvantage due to the generation of large amounts of sludge containing metals. CaO2 is a chemical with an environmentally friendly and strong oxidation potential. In this study, the oxidation of Crystal Violet dye in aqueous phase using CaO2 under varying experimental conditions was investigated. CaO2 exhibited high oxidation efficiencies without the need for activators like iron. The process successfully prevented sludge formation at the end. The optimum pH value for the oxidation of CV was found to be 10. The oxidation studies indicated that high oxidation efficiencies could be achieved with low doses of CaO2 and short reaction times. It was determined that a reaction time of 25 minutes with 0.1 grams of CaO2 was sufficient for the removal of 99.9% of 200 mg/L CV.

Kaynakça

  • 1. Sağlam, S., Türk, F.N., Arslanoğlu, H., 2023. Use and applications of metal-organic frameworks (MOF) in dye adsorption. J. Environ. Chem. Eng., 110568.
  • 2. Hadadi, A., Imessaoudene, A., Bollinger, J.C., Bouzaza, A., Amrane, A., Tahraoui, H., Mouni, L., 2023. Aleppo pine seeds (Pinus halepensis Mill.) as a promising novel green coagulant for the removal of Congo red dye: Optimization via machine learning algorithm. J. Environ. Manage., 331, 117286.
  • 3. Raj, S., Singh, H., Bhattacharya, J., 2023. Treatment of textile industry wastewater based on coagulation-flocculation aided sedimentation followed by adsorption: Process studies in an industrial ecology concept. Sci. Total. Environ., 857, 159464.
  • 4. Rosli, N.A., Ahmad, M.A., Noh, T.U., 2023. Unleashing the potential of pineapple peel-based activated carbon: Response surface methodology optimization and regeneration for methylene blue and methyl red dyes adsorption. Inorg. Chem. Commun., 155, 111041.
  • 5. He, Y., Huang, Y., Wang, Q., Pan, X., 2023. Controlling waste by waste: a modified landfill leachate coagulation sludge activated peroxymonosulfate process achieves complete BPA degradation. Environ. Technol., 44(7), 1027-1034.
  • 6. Nachiyar, C.V., Rakshi, A.D., Sandhya, S., Jebasta, N.B.D., Nellore, J., 2023. Developments in treatment technologies of dye-containing effluent: A review. CSCEE, 100339.
  • 7. Tian, F., Wang, Y., Guo, G., Ding, K., Yang, F., Wang, C., Wang, H., Yan, M., 2023. Meta-genome analysis of a newly enriched azo dyes detoxification halo-thermophilic bacterial consortium. Environ. Res., 237, 116828.
  • 8. Lawal, I.M., Soja, U.B., Hussaini, A., Saleh, D., Aliyu, M., Noor, A., Birniwa, A.H., Jagaba, A.H., 2023. Sequential batch reactors for aerobic and anaerobic dye removal: a mini-review. CSCEE, 100547.
  • 9. Albahnasawi, A., Yüksel, E., Gürbulak, E., Duyum, F., 2020. Fate of aromatic amines through decolorization of real textile wastewater under anoxic-aerobic membrane bioreactor. J. Environ. Chem. Eng., 8(5), 104226.
  • 10. Iqbal, A., Yusaf, A., Usman, M., Hussain, B.T., Mansha, A., 2023. Insight into the degradation of different classes of dyes by advanced oxidation processes; a detailed review. Int. J. Environ. An. Ch., 857(2), 159172.
  • 11. Eduardo, M.C.C., María, F.A.F., Carmen, F.G., 2020. Advanced oxidation processes for the removal of antibiotics from water. An Overview Water, 12, 102.
  • 12. Wang, X., Jing, J., Zhou, M., Dewil, R., 2023. Recent advances in H2O2-based advanced oxidation processes for removal of antibiotics from wastewater. Chinese Chem. Lett., 34(3), 107621.
  • 13. Shuguang, L., Xiang, Z., Yunfei, X., 2017. Application of calcium peroxide in water and soil treatment: A review. J. Haz. Mater., 337, 163-177.
  • 14. Monica, B., Ioannis, A.K., 2017. Sulfate radical technologies as tertiary treatment for the removal of emerging contaminants from wastewater. Sustainability, 9, 1604.
  • 15. Xulei, Z., Yueyue, L., Junhe, L., Lei, Z., Jean-Marc, C., Quansuo, Z., Yuefei, J., 2021. UV/H2O2 oxidation of chloronitrobenzenes in waters revisited: Hydroxyl radical induced self-nitration. Journal of Photochemistry and Photobiology A: Chemistry Available, 113162.
  • 16. Hou, Z., Wang, W., Dong, N., Chen, P., Ge, L., Tan, F., Wang, X., Qia, X., Wong, P.K., 2023. A dual-oxidant advanced oxidation process system containing CaO2 and peroxymonosulfate for organic pollutant degradation: High adaptability and synergistic effect. Sep. Purif. Technol., 308, 122909.
  • 17. Wang, Y., Wang, W., Yan, F., Ding, Z., Feng, L., Zhao, J., 2019. Effects and mechanisms of calcium peroxide on purification of severely eutrophic water. The Science of the Total Environment, 650, 2, 2796.
  • 18. Qiuxiang, X., Qi-Su, H., We, W., Jin, S., Xiaoh, D., Bing-Ji, N., 2020. Improving the treatment of waste activated sludge using calcium peroxide. Wat. Res., 187, 116440.
  • 19. Yong, S., Muhammad D., Meesam A., Ali, S., Ming, L., Yanchen, L., Zhaofu, S., Qian, Z. Xueke, Shuguang, L., 2020. Trichloroethene degradation by nanoscale CaO2 activated with Fe(II)/FeS: The role of FeS and the synergistic activation mechanism of Fe(II)/FeS. Chem. Eng. J., 394(15), 124830.
  • 20. Meesam, A., Usman, F., Shuguang, L., Yong, S., Ming, L., Ayyaz, A., Ali, S., Zain, A., 2020. Synthesis of controlled release calcium peroxide nanoparticles (CR-nCPs): Characterizations, H2O2 liberate performances and pollutant degradation efficiency. Sep. Pur. Technol., 241(15), 116729.
  • 21. Sajedeh, K., Akbar, K., Shahin, B., 2020. Fabrication of amine-decorated nonspherical microparticles with calcium peroxide cargo for controlled release of oxygen. Journal of Biomedical Materials Research Part A, 108, 136-147.
  • 22. Erkurt, F.E., Mert, A., 2023. Eco-friendly oxidation of a reactive textile dye by CaO2: Effects of specific independent parameters. Environ. Technol,. 44(21), 3294-3315.
Toplam 22 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Konular Çevre Mühendisliği (Diğer)
Bölüm Makaleler
Yazarlar

Behzat Balcı 0000-0002-4636-4235

Yayımlanma Tarihi 25 Aralık 2024
Gönderilme Tarihi 9 Eylül 2024
Kabul Tarihi 23 Aralık 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 39 Sayı: 4

Kaynak Göster

APA Balcı, B. (2024). Bir Tekstil Boyasının Çevre Dostu Bir Oksidant Olan CaO2 ile Sulu Fazdan Giderimi. Çukurova Üniversitesi Mühendislik Fakültesi Dergisi, 39(4), 873-880. https://doi.org/10.21605/cukurovaumfd.1605873