Co-Benefits of Pollutant Removal, Water, and Heat Recovery from Flue Gas through Phase Transition Enhanced by Corona Discharge.
Lingyu ShaoYifan WangCan ZhouZhengda YangWenchao GaoZhicheng WuLianming LiYonglong YangYang YangChenghang ZhengXiang GaoPublished in: Environmental science & technology (2022)
Pollutant removal and resource recovery from high-humidity flue gas after desulfurization in a thermal power plant are crucial for improving air quality and saving energy. This study developed a flue gas treatment method involving phase transition enhanced by corona discharge based on laboratory research and established a field-scale unit for demonstration. The results indicate that an adequate increase in size will improve the ease of particle capture. A wet electrostatic precipitator is applied before the condensing heat exchangers to enhance the particle growth and capture processes. This results in an increase of 58% in the particle median diameter in the heat exchanger and an emission concentration below 1 mg/m 3 . Other pollutants, such as SO 3 and Hg, can also be removed with emission concentrations of 0.13 mg/m 3 and 1.10 μg/m 3 , respectively. Under the condensation enhancement of the method, it is possible to recover up to 3.26 t/h of water from 200 000 m 3 /h saturated flue gas (323 K), and the quality of the recovered water meets the standards stipulated in China. Additionally, charge-induced condensation is shown to improve heat recovery, resulting in the recovery of more than 43.34 kJ/h·m 3 of heat from the flue gas. This method is expected to save 2628 t of standard coal and reduce carbon dioxide emission by 2% annually, contributing to environmental protection and global-warming mitigation.