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Wet flue gas desulfurization performance of 330 MW coal-fired power unit based on computational fluid dynamics region identification of flow pattern and transfer process

机译:基于计算流体动力学区域的流体动力学区域识别330 MW燃煤电源湿烟气脱硫性能及流动模式

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摘要

Wet Flue Gas Desulfurization(WFGD)unit based upon spray scrubber has beenwidely employed to control SO_(2) emissions from flue gas in coal-fired power plant.To clarify the dependence of desulfurization performance on inter-phase transfer behaviors with non-ideal contacting patterns of flue gas and slurry droplets,three regions in spray scrubber are distinguished in terms of gas-slurry flow structures using CFD method in the Eulerian-Lagrangian framework.A comprehensive model is established by involving the transfer process between two phases and chemical reactions in aqueous phase,which is validatedwith the measured data froma WFGD scrubber of 330 MW coal-fired power unit.Numerical results show that the overall uniformity degree of flue gas in whole scrubber is largely determined by the force-balanced droplets in the middle part of scrubber,which is dominated by counter-current mode.Both momentum transfer behavior and SO_(2) chemical absorption process present the synchronicity with the evolution of gas-slurry flow pattern,whilst the heat transfer together with H_(2)O evaporation has little effect on overall absorption process.Three regions are firstly defined as Gas Inlet Region(GIR),Dominant Absorption Region(DAR)and Slurry Dispersed Region(SDR)from the bottom to top of scrubber.SO_(2) is mainly scrubbed in DAR,which provides much more intensive interaction between two phases compared to GIR or SDR.A better understanding of the desulfurization process is obtained from the fundamental relationship between transport phenomena and chemical reactions based upon the complicated hydrodynamics of gas-slurry two-phase flow,which should be useful for designing and optimizing the scrubber in coal-fired power unit.

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  • 来源
    《中国化学工程学报(英文版)》 |2021年第1期|13-26|共14页
  • 作者单位

    Beijing Key Laboratory of Emission Surveillance and Control for Thermal Power Generation North China Electric Power University Beijing 102206 China;

    Key Laboratory of Power Station Energy Transfer Conversion and System (North China Electric Power University) Ministry of Education Beijing 102206 China;

    Beijing Key Laboratory of Emission Surveillance and Control for Thermal Power Generation North China Electric Power University Beijing 102206 China;

    Key Laboratory of Power Station Energy Transfer Conversion and System (North China Electric Power University) Ministry of Education Beijing 102206 China;

    Beijing Key Laboratory of Emission Surveillance and Control for Thermal Power Generation North China Electric Power University Beijing 102206 China;

    Key Laboratory of Power Station Energy Transfer Conversion and System (North China Electric Power University) Ministry of Education Beijing 102206 China;

    Shanxi Hepo Power Generation Company Limited Yangquan 045011 China;

    Shanxi Hepo Power Generation Company Limited Yangquan 045011 China;

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  • 正文语种 eng
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  • 入库时间 2022-08-19 04:56:41
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