Comprehensive modeling of HFC-23 incineration in a CDM incinerator

Considering that a significant part of used refrigerants have to be destroyed in an environmentally friendly manner together with the high global warming potential (GWP) of HFCs (hydrofluorocarbons), the development of a proper incineration method of HFCs becomes one of the viable methods in the ref...

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Veröffentlicht in:Journal of material cycles and waste management 2017-04, Vol.19 (2), p.754-762
Hauptverfasser: Shin, Misoo, Jang, Dongsoon, Lee, Yongguk, Kim, Yongju, Kim, Eungyong
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Sprache:eng
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Zusammenfassung:Considering that a significant part of used refrigerants have to be destroyed in an environmentally friendly manner together with the high global warming potential (GWP) of HFCs (hydrofluorocarbons), the development of a proper incineration method of HFCs becomes one of the viable methods in the refrigeration and air-conditioning industry. To this end, in this study, the development of a comprehensive modeling of CHF 3 (HFC-23 or R-23) incineration is made to assist in the proper design and determination of optimal operating condition of a practical HFCs incinerator, since the refrigerant of CHF 3 is one of typical HFCs. For this, numerical investigation was performed by the development of a predictive model for the thermal destruction of the CHF 3 using CH 4 –air flames in an incinerator designed for CDM (clean development mechanism) project. First of all, comparison between calculation and operation data was made to evaluate the program developed in this study. Numerical calculation of CHF 3 –CH 4 –air flame predicts successfully the operation data of a CDM incinerator such as temperature, CHF 3 destruction rate more than 99.99 % and other species concentrations such as CO and NO at the exit of the incinerator. Further parametric study was performed also in terms of important variables such as excess air, amount of steam and incinerator size. In general, the results obtained appear physically acceptable and give a clear physical insight into the role of the important variables. Further work is strongly recommended for the development of a general turbulent reaction model for the thermal destruction of HFCs, especially for the condition of non-equilibrium turbulent reaction dominance.
ISSN:1438-4957
1611-8227
DOI:10.1007/s10163-016-0476-1