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首页> 外文期刊>Waste Disposal & Sustainable Energy >Study on the resource utilization of high fluorine-containing organic waste through fluidized incineration
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Study on the resource utilization of high fluorine-containing organic waste through fluidized incineration

机译:研究通过流化的焚烧含氟有机废物的资源利用

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摘要

Abstract In this study, the method of fluidized incineration and water washing to recover hydrogen fluoride (HF) was proposed to dispose of?high fluorine-containing organic waste. The resource utilization of the waste was investigated in a fluidized bed incinerator with a disposal capability of 10 t/d. The evolution characteristics of fluorine, operation conditions of the incineration system, absorption coefficient for HF by water washing, and HF corrosion during combustion were assessed. The?results showed that HF and fluorocarbons were detected as the initial gaseous fluorides released during combustion. The release of HF could be divided into three stages, in which HF was generated from the volatilization of HF in the waste and the hydrolysis of fluorine in water-soluble salts (60–220?°C), oxidative decomposition of fluorinated organic components and residual carbon (220–800?°C), and hydrolysis of insoluble fluorinated inorganic minerals (800–1000?°C). Fluorocarbons could be destroyed through reactions with free radicals H, O, and OH or through single-molecule decomposition. Enhancing the?temperature in the furnace and increasing the content of oxygen and hydrogen in the incineration materials were conducive to reducing the generation of fluorocarbons. By sampling and analyzing the bottom slag, bag filter ash and exhaust gas during the field test, the relevant pollutant discharge could meet the national emission standards. The waste heat utilization of high-temperature flue gas and the recovery of hydrofluoric acid and hydrochloric acid were realized. In the recovery of HF by water washing, the total absorption coefficients for 1# to 4# packed absorbers were 52.38?kg/(h?m2), 39.96?kg/(h?m2), 5.98?kg/(h?m2) and 3.89?kg/(h?m2), respectively. In the actual operation, alumina showed good corrosion resistance to high-temperature HF and could be used as bed materials or refractory materials. Low-temperature corrosion of HF occurred in?the quenching heat exchanger, which was damaged after 6?months of continuous operation. High-temperature corrosion of HF occurred in?the waste heat boiler. No significant corrosion was observed in the 24?months of operation.
机译:摘要在这项研究中,提出了恢复氟化氢(HF)的流化焚化和洗水方法,以处置高含氟的有机废物。在流化的床焚化炉中研究了废物的资源利用,其处置能力为10 t/d。评估了氟的进化特征,焚烧系统的运行条件,洗涤HF的吸收系数以及燃烧过程中的HF腐蚀。结果表明,在燃烧过程中释放的初始气态氟化物被检测到HF和碳氟化合物。 HF的释放可以分为三个阶段,其中HF在废物中的挥发和水溶性盐(60-220?°C)中氟的水解产生,氟化有机成分和有机成分和氧化分解残留的碳(220–800?°C),以及不溶性氟无机矿物(800-1000?°C)的水解。可以通过自由基H,O和OH或通过单分子分解来破坏氟化碳。增强炉中的温度并增加焚化材料中氧气和氢的含量,有助于减少氟化合物的产生。通过在现场测试期间采样和分析底层,袋滤清器和废气,相关污染物排放可以符合国家排放标准。实现了高温烟气的废热以及氢氟酸和盐酸的回收。在水洗恢复HF时,1#至4#包装吸收器的总吸收系数是52.38?kg/(h?m2),39.96?kg/(h?m2),5.98?kg/(h?m2 )和3.89 kg/(h?m2)。在实际操作中,氧化铝对高温HF表现出良好的耐腐蚀性,可以用作床材料或难治材料。 HF的低温腐蚀发生在Quenching热交换器中,在连续工作6个月后损坏了。 HF的高温腐蚀发生在废热锅炉中。在操作的24个月中未观察到明显的腐蚀。

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