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Separation of Sulfur Hexafluoride from a Nitrogen/Sulfur Hexafluoride Mixture Using a Polymer Hollow Fiber Membrane

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Abstract

Sulfur hexafluoride (SF6) has been evaluated by the Intergovernmental Panel on Climate Change (IPCC) as the substance with the highest global warming index. Because of its superior insulating and arc clearing capacities, it is commonly used as an insulator in electrical machines. SF6 waste products form in the process of storing, maintaining, and repairing the machines. SF6 emitted into the atmosphere remains for 3,200 years, causing global warming. Release into the mesosphere leads to photolysis and creation of highly toxic and corrosive by-products. A review of the literature related to the retrieval and separation of SF6 using a separating membrane indicates that research on the permeability of the separating membrane material is lacking. Additionally, research on the concentrations of the SF6 waste products and the separation/retrieval with operating conditions with optimal energy efficiency is only in the initial stages. Therefore, this research assessed the permeability of commercialized separation membranes polysulfone (PSf), polycarbonate (PC), and polyimide (PI) using the gases SF6 and N2. Using an SF6/N2 mixture with the same concentration as the SF6 waste products, we studied the separation and retrieval capacities of PSf, PC, and PI separation membranes under varying operating conditions. The permeability tests showed that the selective permeability of N2/SF6 is highest for the PI membrane and lowest for the PC membrane. When the concentrations of SF6 retrieved from the mixture separation process were compared, the PC membrane was found to be the highest, with 95.6 % at 0.5 MPa. The retrieval percentage of SF6 was highest for PSf, with 97.8 % at an operating pressure of 0.3 MPa and a waste production of 150 cm3/min. The retrieval rates and retrieval failure rates have an inverse relationship. In total, 99 % of the supply of SF6 was identified via the retrieval rates and retrieval failure rates, so it could be confirmed that the separation of the SF6/N2 mixture using a macromolecular hollow fiber separation membrane works properly.

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References

  • Cashion, S. P., Ricketts, N. J., & Hayes, P. C. (2002). Characterisation of protective surface films formed on molten magnesium protected by air/SF6 atmospheres. Journal of Light Metals, 2(1), 37–42.

    Article  Google Scholar 

  • Cho, J. S., Kim, J. S., & Lee, K. R. (1999). Sorption and permeation characteristics of oxygen and nitrogen for polysulfone hollow-fiber membrane. Membrane Journal, 9(1), 25–35.

    CAS  Google Scholar 

  • Chung, I. J., Lee, K. R., & Hwang, S. T. (1995). Separation of CFC-12 from air by polyimide hollow-fiber membrane module. Journal of Membrane Science, 105(3), 177–185.

    Article  CAS  Google Scholar 

  • Electric Technology Research Association (1998). SF6 recycling guide: standards for handling SF6 gas in the power industry. Denki-Kyodo-Kenkyu (Electric Cooperative Research), vol. 54, issue 3.

  • International Standard (2004). Guidelines for the checking and treatment of sulfur hexafluoride (SF6) taken from electrical equipment and specification for its re-use (3rd ed.). IEC 60480. Geneva: International Electrotechnical Commission.

  • KEMCO (2005). An analysis on the emissions from petrochemical industry and consumption of HFCs, PFCs and SF6. KEMCO-2005-32-Y: 9–49. Seika: KEMCO.

  • Kim, J. H., Rhim, J. W., & Lee, S. B. (2002). Research trend of membrane technology for separation of carbon dioxide from flue gas. Membrane Journal, 12(4), 121–142.

    CAS  Google Scholar 

  • Kim, D. H., An, Y. M., Jo, H. D., Park, J. S., & Lee, H. K. (2009). Studies on the N2/SF6 permeation behaviors using the polyethersulfone hollow fiber membranes. Membrane Journal, 19(3), 244–251.

    CAS  Google Scholar 

  • Kurte, R., Heise, H. M., & Klockow, D. (2001). Quantitative infrared spectroscopic analysis of SF6 decomposition products obtained by electrical partial discharges and sparks using PLS-calibrations. Journal of Molecular Structure, 565–566, 505–513.

    Article  Google Scholar 

  • Lee, S.H. (2009). Research project final report, “Development of SF6 Gas Recycling System for Warming Reduction” (pp. 12–52). Seoul: Ministry of Knowledge Economy.

  • Montzka, S.A., & Fraser, P.J. (2003). Scientific assessment of ozone depletion: 2002, controlled substances and other source gases. Geneva: World Meteorological Organization. 1.22–1.61.

  • Mulder, M. (1996). Basic principles of membrane technology (pp. 210–415). Dordrecht: Kluwer.

    Book  Google Scholar 

  • Nakicenovic, N., Alcamo, J., Davis, G., & de Vries. (2001). Special report on emissions scenarios: 2000. Geneva: Intergovernmental Panel on Climate Change. Complete online versions.

  • Paciornik, N., & Rypdal, K. (2006). Draft 2006 IPCC guidelines for national greenhouse gas inventories (vol. 1, pp. 1.1–1.5). Geneva: Intergovernmental Panel on Climate Change.

  • Paul, D. R., & Yampol’skii, Y. (1994). Polymeric gas separation membranes (pp. 209–271). Boca Raton: CRC.

    Google Scholar 

  • Pepi, F., Ricci, A., Di Stefano, M., & Rosi, M. (2003). Sulfur hexafluoride corona discharge decomposition: gas-phase ion chemistry of SOF χ +(χ = 1–3) ions. Chemical Physics Letters, 381(1–2), 168–176.

    Article  CAS  Google Scholar 

  • Rhiemeier, J.M., Wartmann, S., Pagnotta, M., Makowska, N., & Li, X. (2010). Update on global SF 6 emissions trends from electrical equipment (1.1st ed.). Utrecht: Ecofys Germany.

  • The Membrane Society of Korea (1996). Membrane separation—basic (pp. 291–354). Seoul: Freedom Academy.

  • Tsai, W. T. (2007). The decomposition products of sulfur hexafluoride (SF6): reviews of environmental and health risk analysis. Journal of Fluorine Chemistry, 128(11), 1345–1352.

    Article  CAS  Google Scholar 

  • UNFCCC (2011). Project 3333: Samsung Electronics SF6 abatement project. In: Clean development mechanism project. New York: UNFCCC.

  • U.S. Climate Change Technology Program (2005). 4.3.3 Semiconductors and magnesium: recovery and recycle. U.S. Climate Change Technology Program—technology options for the near and long term, 4.3–4.6. Washington, DC: U.S. Climate Change Technology Program.

  • Wang, Y. F., Shih, M., Tsai, C. H., & Tsai, P. J. (2006). Total toxicity equivalents emissions of SF6, CHF3, and CCl2F2 decomposed in a RF plasma environment. Chemosphere, 62(10), 1681–1688.

    Article  CAS  Google Scholar 

  • Yamamoto, O., Takkuma, T., & Kinouchi, M. (2002). Recovery of SF6 from N2/SF6 gas mixtures by using a polymer membrane. IEEE Electrical Insulation Magazine, 18(3), 32–37.

    Article  Google Scholar 

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Acknowledgments

This work was supported by Energy Efficiency and Resources R&D program (2012T100100528) under the Ministry of Knowledge Economy and the National Research Foundation of Korea Grant funded by the Korean Government (Ministry of Science, ICT & Future Planning) (2013, University-Institute Cooperation Program).

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Correspondence to Sang-Hyup Lee.

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Choi, JW., Lee, S., An, B. et al. Separation of Sulfur Hexafluoride from a Nitrogen/Sulfur Hexafluoride Mixture Using a Polymer Hollow Fiber Membrane. Water Air Soil Pollut 225, 1807 (2014). https://doi.org/10.1007/s11270-013-1807-7

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  • DOI: https://doi.org/10.1007/s11270-013-1807-7

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