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Atık Madeni Yağlar ve Yağlı Atıksu Arıtma Yöntemlerine Dair Bir Araştırma

Year 2021, Volume: 10 Issue: 2, 73 - 84, 16.12.2021
https://doi.org/10.17100/nevbiltek.1005367

Abstract

Endüstriyelleşme ile birlikte dünyadaki madeni yağ talebi her geçen gün büyük artış göstermektedir. Bu artış çeşitli kaynaklara göre ortalama olarak yaklaşık 36 milyon ton/yıldır. Artan talep atık yağın artışına sebep olmaktadır ve insan sağlığı ile çevre için önemli bir tehdit oluşturmaktadır. Bu tehdidi önlemek için yağ atıklarının bertarafının kontrollü bir şekilde yapılması gerekmektedir.
Bu çalışmada madeni yağ üretimi, çeşitleri ve yağ içeren atıksuların bertaraf yöntemleri araştırılmıştır. Elde edilen literatür sonuçlarına göre atık yağ ile kirlenmiş suların arıtımında kullanılan en etkili yöntemler elektrokoagülasyon ve membran filtrasyonudur. Membran filtrasyonunda ise membran gözenek çapı azaldıkça arıtım verimi artış göstermiştir. Uygun koagülant seçimi yapılan elektrokoagülasyon yöntemi ve membran filtrasyonunda nanofiltrasyon yada hibrit sistemler kullanıldığında yüzde yüze varan giderim verimleri tespit edilmiştir. Bununla birlikte tek başına uygulanan konvansiyonel yöntemlerin giderim verimleri düşük olarak tespit edilmiştir.

References

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Year 2021, Volume: 10 Issue: 2, 73 - 84, 16.12.2021
https://doi.org/10.17100/nevbiltek.1005367

Abstract

References

  • [1]. Tetteh, E. K., Rathilal, S., “Effects of a polymeric organic coagulant for industrial mineral oil wastewater treatment using response surface methodology (RSM),” Water SA, 44(2), 155–161, 2018.
  • [2]. Gosalia, A., “Sustainability and the Global Lubricants Industry,” The European Lubricants Industry Magazine, 109, 2012.
  • [3]. Tetteh, E. K., Rathilal, S., Chollom, M. N., “Treatment of Industrial Mineral Oil Wastewater-Optimisation of Coagulation Flotation process using Response Surface Methodology (RSM),” International Journal of Applied Engineering Research, 12(23), 13084–13091, 2017.Retrieved from http://www.ripublication.com.
  • [4]. Özbey, A., Metin, E., (n.d.) “Atık Yağların Yönetimi,” PETDER, Retrieved November 12, 2021, from https://www.petder.org.tr/Uploads/Document/02cfc115-a858-49ad-98b0-0c1a0f4c1a8e.pdf?v-636450635310213718.
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  • [7]. Mordor Intelligence, “Lubricants Market | Growth, Trends, COVID-19 Impact, and Forecasts (2021- 2026), 2020.Retrieved October 1, 2021, from https://www.mordorintelligence.com/industry-reports/lubricants-market.
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  • [14]. Rincón, J., Cañizares, P., García, M. T., Gracia, I., “Regeneration of Used Lubricant Oil by Propane Extraction,” Industrial and Engineering Chemistry Research, 42(20), 4867–4873, 2003.
  • [15]. Vural, U. S., “Waste Mineral Oils Re-Refınıng with Physicochemical Methods,” Turkey Turkish Journal of Engineering (TUJE), 4(2), 62–69, 2020.
  • [16]. Kumar, S., Bajwa, N. S., Rana, B. S., Nanoti, S. M., Garg, M. O., “Desulfurization of gas oil using a distillation, extraction and hydrotreating-based integrated process,” Fuel, 220, 754–762, 2018.
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  • [19]. Erol Nalbur, B., Karaelli̇, E., “Petrol İçeren Atıksuların Arıtılabilirliği ve Arıtım Sisteminin Tasarlanması,” Uludağ Üniversitesi Mühendislik Fakültesi Dergisi, Cilt, 24(1), 231–242, 2019.
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  • [24]. Lin, Z. S., Wen, W., “Study on Oily Wastewater Treatment with CAX Composite Coagulator,” Mar. Environ. Sci., 22, 15–19, 2003. Retrieved from https://www.scopus.com/record/display.uri?eid=2-s2.0-84958168708&origin=inward&txGid=9d3e30509bad1485de31db773650a5b0.
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  • [27]. Ngamlerdpokin, K., Kumjadpai, S., Chatanon, P., Tungmanee, U., Chuenchuanchom, S., Jaruwat, P., … Hunsom, M., “Remediation of biodiesel wastewater by chemical- and electro-coagulation: A comparative study,” Journal of Environmental Management, 92(10), 2454–2460, 2011.
  • [28]. Jaruwat, P., Kongjao, S., Hunsom, M., “Management of biodiesel wastewater by the combined processes of chemical recovery and electrochemical treatment,” Energy Conversion and Management, 51(3), 531–537, 2010.
  • [29]. Sekman, E., Top, S., Uslu, E., Varank, G., Bilgili, M. S., “Treatment of Oily Wastewater From Port Waste Reception Facilities by Electrocoagulation,” International Journal of Environmental Research, 5(4), 1079–1086, 2011.
  • [30]. Ahmadi, S., Sardari, E., Javadian, H. R., Katal, R., Sefti, M. V., “Removal of oil from biodiesel wastewater by electrocoagulation method,” Korean Journal of Chemical Engineering 2012 30:3, 30(3), 634–641, 2012.
  • [31]. Xu, X., Zhu, X., “Treatment of refectory oily wastewater by electro-coagulation process,” Chemosphere, 56(10), 889–894, 2004.
  • [32]. Sun, C., Leiknes, T. O., Weitzenböck, J., Thorstensen, B., “Development of a biofilm-MBR for shipboard wastewater treatment: The effect of process configuration,” Desalination, 250(2), 745–750, 2010.
  • [33]. Soltani, S., Mowla, D., Vossoughi, M., Hesampour, M., “Experimental investigation of oily water treatment by membrane bioreactor,” Desalination, 250(2), 598–600, 2010.
  • [34]. Salahi, A., Gheshlaghi, A., Mohammadi, T., Madaeni, S. S., “Experimental performance evaluation of polymeric membranes for treatment of an industrial oily wastewater,” Desalination, 262(1–3), 235–242, 2010.
  • [35]. Nandi, B. K., Moparthi, A., Uppaluri, R., Purkait, M. K., “Treatment of oily wastewater using low cost ceramic membrane: Comparative assessment of pore blocking and artificial neural network models,” Chemical Engineering Research and Design, 88(7), 881–892, 2010.
  • [36]. Yang, T., Ma, Z. F., Yang, Q. Y., “Formation and performance of Kaolin/MnO2 bi-layer composite dynamic membrane for oily wastewater treatment: Effect of solution conditions,” Desalination, 270(1–3), 50–56, 2011.
  • [37]. Abadi, S. R. H., Sebzari, M. R., Hemati, M., Rekabdar, F., Mohammadi, T., “Ceramic membrane performance in microfiltration of oily wastewater,” Desalination, 265(1–3), 222–228, 2011.
  • [38]. Mittal, P., Jana, S., Mohanty, K., “Synthesis of low-cost hydrophilic ceramic–polymeric composite membrane for treatment of oily wastewater,” Desalination, 282, 54–62, 2011.
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  • [40]. Madaeni, S. S., Gheshlaghi, A., Rekabdar, F., “Membrane treatment of oily wastewater from refinery processes,” Asia-Pacific Journal of Chemical Engineering, 8(1), 45–53, 2013.
  • [41]. Noshadi, I., Salahi, A., Hemmati, M., Rekabdar, F., Mohammadi, T., “Experimental and ANFIS modeling for fouling analysis of oily wastewater treatment using ultrafiltration,” Asia-Pacific Journal of Chemical Engineering, 8(4), 527–538, 2013.
  • [42]. Karakulski, K., Morawski A. W., “Recovery of process water from spent emulsions generated in copper cable factory,” Journal of Hazardous Materials, 186(2–3), 1667–1671, 2011. Retrieved from https://www.sciencedirect.com/science/article/pii/S0304389410016213.
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There are 59 citations in total.

Details

Primary Language Turkish
Subjects Engineering
Journal Section Derleme Makalesi/Review Article
Authors

Ezgi Güneş Gürdal 0000-0002-0311-1350

Publication Date December 16, 2021
Acceptance Date November 18, 2021
Published in Issue Year 2021 Volume: 10 Issue: 2

Cite

APA Güneş Gürdal, E. (2021). Atık Madeni Yağlar ve Yağlı Atıksu Arıtma Yöntemlerine Dair Bir Araştırma. Nevşehir Bilim Ve Teknoloji Dergisi, 10(2), 73-84. https://doi.org/10.17100/nevbiltek.1005367
AMA Güneş Gürdal E. Atık Madeni Yağlar ve Yağlı Atıksu Arıtma Yöntemlerine Dair Bir Araştırma. Nevşehir Bilim ve Teknoloji Dergisi. December 2021;10(2):73-84. doi:10.17100/nevbiltek.1005367
Chicago Güneş Gürdal, Ezgi. “Atık Madeni Yağlar Ve Yağlı Atıksu Arıtma Yöntemlerine Dair Bir Araştırma”. Nevşehir Bilim Ve Teknoloji Dergisi 10, no. 2 (December 2021): 73-84. https://doi.org/10.17100/nevbiltek.1005367.
EndNote Güneş Gürdal E (December 1, 2021) Atık Madeni Yağlar ve Yağlı Atıksu Arıtma Yöntemlerine Dair Bir Araştırma. Nevşehir Bilim ve Teknoloji Dergisi 10 2 73–84.
IEEE E. Güneş Gürdal, “Atık Madeni Yağlar ve Yağlı Atıksu Arıtma Yöntemlerine Dair Bir Araştırma”, Nevşehir Bilim ve Teknoloji Dergisi, vol. 10, no. 2, pp. 73–84, 2021, doi: 10.17100/nevbiltek.1005367.
ISNAD Güneş Gürdal, Ezgi. “Atık Madeni Yağlar Ve Yağlı Atıksu Arıtma Yöntemlerine Dair Bir Araştırma”. Nevşehir Bilim ve Teknoloji Dergisi 10/2 (December 2021), 73-84. https://doi.org/10.17100/nevbiltek.1005367.
JAMA Güneş Gürdal E. Atık Madeni Yağlar ve Yağlı Atıksu Arıtma Yöntemlerine Dair Bir Araştırma. Nevşehir Bilim ve Teknoloji Dergisi. 2021;10:73–84.
MLA Güneş Gürdal, Ezgi. “Atık Madeni Yağlar Ve Yağlı Atıksu Arıtma Yöntemlerine Dair Bir Araştırma”. Nevşehir Bilim Ve Teknoloji Dergisi, vol. 10, no. 2, 2021, pp. 73-84, doi:10.17100/nevbiltek.1005367.
Vancouver Güneş Gürdal E. Atık Madeni Yağlar ve Yağlı Atıksu Arıtma Yöntemlerine Dair Bir Araştırma. Nevşehir Bilim ve Teknoloji Dergisi. 2021;10(2):73-84.

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