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Release characteristics of polycyclic aromatic hydrocarbons and dioxins during co-processing multi-source organic wastes in a coal-water slurry gasifier |
CUI Chang-hao1, ZHANG Lei2, LIU Mei-jia1, LI Li1, CHEN Chao1, WANG Hao-xiang2, YAN Da-hai1, MA Xiao-feng2 |
1. Research Institute of Solid Waste Management, Chinese Research Academy of Environmental Sciences, Beijing 100012, China; 2. Shaoxing Fengdeng Environmental Protection Co., LTD, Shaoxing 312300, China |
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Abstract Field studies were conducted to investigate the release characteristics of polycyclic aromatic hydrocarbons (PAHs) and dioxins (PCDD/Fs) during the co-processing of anthraquinone dye, distillation residue, waste activated carbon and waste organic solvents in a coal water slurry gasifier. Results indicate that co-processing organic wastes showed minimal impact on gasification parameters but altered the gas composition of CO and CO2 in syngas, in which the gas composition of CO decreased from 40.9% to 31.5%, while the gas composition of CO2 increased from 23.4% to 31.0%. The reason may attribute to the enhanced combustion facilitated by the addition of organic wastes. Naphthalene and low-chlorinated PCDD/Fs were predominant in the gaseous samples under blank and co-processing condition. Under co-processing condition, the TEQ levels of PAHs and PCDD/Fs are in the range of 0.12-0.49ng-TEQ/m3 and 1.22~3.82pg-TEQ/m3, respectively, which showed marginal increases compared to the blank conditions (0.06~0.11ng-TEQ/m3 for PAHs and 1.34~2.97ng-TEQ/m3 for PCDD/Fs), and also well below the relevant standard limits. Under co-processing condition, PAHs and PCDD/Fs in solid samples are predominantly low, medium-ring and low-chlorinated congeners. The TEQ levels of PAHs, including sulfur (0.49ng-TEQ/kg) and carbon black (0.37ng-TEQ/kg), as well as the TEQ levels of PCDD/Fs, including ammonium bicarbonate (8.3pg-TEQ/kg), are higher than those of other solid samples. Moreover, the TEQ levels of PAHs and PCDD/Fs does not significantly increase compared to blank condition, indicating lower environmental risk.
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Received: 11 February 2024
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