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A novel flameless oxidation and in-chamber melting system coupled with advanced scrubbers for a laboratory waste plant

机译:一种新型无毛氧化和室内熔融系统,与实验室废厂的先进洗涤器相连

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摘要

This is the first study integrate the flameless oxidation (FO) and in-chamber melting (ICM) processes in a primary chamber of a laboratory waste incinerator to improve energy and emission performances. Two liquid burners created a twin-cyclonic fluid field that achieved the FO and ICM in the same chamber. The first cyclone provided a well-mixed and lower temperature FO to reduce auxiliary diesel consumption, NOx and PM emissions by 25.8%, 30.9%, and 79.2%, respectively, from the original system. The hot gases produced by FO enhance the ICM process and transformed the bottom ashes to stabler slags, in turn meeting the regulations for nonhazardous wastes. The other cyclone enhanced the drying and water-gas shift reaction in the drying zone by recirculating the CO and enthalpy from FO and ICM. Eventually, the residual CO, hydrocarbons, and H_2 were sent to the secondary chamber for further oxidation. A computational fluid dynamic simulation supported the fluid field assumption posed in this study. Moreover, advanced scrubbers were employed after thermal treatments to reduce HC1 and SO_2 by 81.8% and 38.8% and further retarded the corrosion rate in the baghouse supporting cage by 87.7%. The precursors of condensable paniculate matter were reduced by condensation and finally removed in the bag-house. Nevertheless, the emissions of the high- and mid-molecular-weight polycyclic aromatic hydrocarbons were greatly reduced by 60.8-93.1% and 80.2-99.9%, respectively. Consequently, the new system reduced annual emissions by 40.7-87.6% and operating costs by 41.5%, allowing recovery of the remodification investment in 20.5 months.
机译:这是第一研究将无焰氧化(FO)和室内熔化(ICM)工艺集成在实验室废物焚烧炉的主腔室中,以改善能量和排放性能。两个液体燃烧器产生了一条双旋风流体领域,在同一室中达到了FO和ICM。第一个旋风分离器提供良好的混合和较低的温度FO,以将辅助柴油消耗,NOx和PM排放量分别从原始系统中的25.8%,30.9%和79.2%。通过Fo提高ICM工艺生产的热气体,并将底部变为底部灰渣,反过来符合非危险废物的规定。另一个旋风通过从FO和ICM循环和ICM循环和焓来增强干燥区中的干燥和水气移反应。最终,将残留的CO,烃和H_2送到次级室以进一步氧化。计算流体动态模拟支持本研究中提出的流体场假设。此外,在热处理后使用先进的洗涤器,以将HC1和SO_2减少81.8%和38.8%,并进一步延迟了袋式箱支护笼中的腐蚀速率87.7%。通过冷凝降低可冷凝的容量物质的前体,最后在袋房中除去。然而,高中和中间分子量多环芳烃的排放分别大大降低了60.8-93.1%和80.2-99.9%。因此,新系统将年度排放量减少40.7-87.6%,运营成本降低了41.5%,允许在20.5个月内恢复再发改投资。

著录项

  • 来源
    《Waste Management》 |2021年第5期|706-718|共13页
  • 作者单位

    School of Mechanical Engineering Beijing Institute of Technology Beijing 100081 China Center for Environmental Toxin and Emerging-contaminant Research Cheng Shiu University Kaohsiung 83347 Taiwan;

    Environmental Resource and Management Research Center National Cheng Kung University Tainan 70101 Taiwan;

    Department of Engineering and System Science National Tsing Hua University Hsinchu 300044 Taiwan;

    School of Mechanical Engineering Beijing Institute of Technology Beijing 100081 China;

    School of Mechanical Engineering Beijing Institute of Technology Beijing 100081 China;

    Environmental Resource and Management Research Center National Cheng Kung University Tainan 70101 Taiwan Department of Resource Engineering National Cheng Kung University Tainan 70101 Taiwan;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Flameless oxidation; In-chamber melting; Infinity fluid field; Particulate matter; Nitrogen oxides; Polycyclic aromatic hydrocarbons;

    机译:无毛氧化;室内熔化;无限流体场;颗粒物质;氮氧化物;多环芳烃;

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