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首页> 外文期刊>Energy & fuels >Co-hydrothermal Carbonization of Water Hyacinth and Sewage Sludge: Effects of Aqueous Phase Recirculation on the Characteristics of Hydrochar
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Co-hydrothermal Carbonization of Water Hyacinth and Sewage Sludge: Effects of Aqueous Phase Recirculation on the Characteristics of Hydrochar

机译:水葫芦和污水污泥的碳化碳化:水相再循环对氢乙酸特性的影响

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摘要

Co-hydrothermal carbonization (Co-HTC) of sewage sludge (SS) and lignocellulosic biomass has been reported as a promising technology for SS pretreatment, in terms of sterilization, deodorization, and enhancing fuel properties. However, in current research, the aqueous phase from Co-HTC was generally dumped directly as a waste liquid, which was not conducive to the effective utilization of energy and environmental protection. Therefore, for the purpose of further improving the above process, Co-HTC of sewage sludge and water hyacinth (WH, a lignocellulosic biowaste) was employed in our study, coupling with aqueous phase recirculation during the Co-HTC process, aiming at harvesting value-added solid fuels and identifying the upgradation effects of aqueous phase recirculation on hydrochar fuel characteristics. The results demonstrated that excellent synergistic effects occurred during Co-HTC. Moreover, synergistic effects would be further enhanced during the aqueous phase recirculation process due to strengthened Maillard and Mannich reactions, contributing to superior experimental hydrochar yield, a higher heating value (HHV), energy yield, and a power consumption index compared with that of calculated values. The hydrochar from Co-HTC and the recirculation process showed lower ignition and burnout temperatures, facilitating the rapid release of heat during the combustion of hydrochar. Meanwhile, synergistic effects during Co-HTC and recirculation facilitated transforming the speciation of Cd and Pb from F1 and F2 fractions to F3 and F4 fractions, thereby reducing their direct ecotoxicity to the environment. The reaction mechanism during Co-HTC and the recirculation process was inferred by further characterizing components in the aqueous phase. In summary, these findings could provide referential information for the resource utilization of the aqueous phase during the Co-HTC process as well as scaling up the thermal utilization paths of SS and WH.
机译:污水污泥(SS)和木质纤维素生物量的冷冻热碳化(CO-HTC)被报告为SS预处理的有希望的技术,即灭菌,除臭和增强燃料特性。然而,在目前的研究中,来自CO-HTC的水相通常直接倾倒为废液,这不利于能量和环境保护的有效利用率。因此,为了进一步改善上述方法,我们的研究中使用污水污泥和水葫芦(WH,木质纤维素生物酸盐)的CO-HTC,与辅助HTC过程中的水相再循环偶联,旨在收获价值 - 一种固体燃料,并确定水相再循环对氢碳燃料特性的升级效果。结果表明,在CO-HTC期间发生了出色的协同作用。此外,在加强的美丽和曼尼希反应导致的水相再循环过程中将进一步提高协同效应,导致优异的实验性氢碳产量,更高的加热值(HHV),能量产量和功耗指数与计算出来价值观。来自CO-HTC的氢乙酸和再循环过程显示出较低的点火和烧坏温度,促进了水溶液燃烧过程中的热量快速释放。同时,在共hTC和再循环期间的协同作用促进了将CD和Pb的形态从F1和F2分数转变为F3和F4级分,从而降低了它们对环境的直接生态毒性。通过进一步表征水相中的组分,推断在CO-HTC期间的反应机理。总之,这些发现可以提供在CO-HTC过程中提供水相的资源利用的参考信息,以及缩放SS和WH的热利用路径。

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  • 来源
    《Energy & fuels》 |2020年第11期|14147-14158|共12页
  • 作者单位

    Guangdong Province Key Laboratory of Efficient and Clean Energy Utilization School of Electric Power South China University of Technology;

    Guangdong Province Key Laboratory of Efficient and Clean Energy Utilization School of Electric Power South China University of Technology;

    Guangdong Province Key Laboratory of Efficient and Clean Energy Utilization School of Electric Power South China University of Technology;

    Guangdong Province Key Laboratory of Efficient and Clean Energy Utilization School of Electric Power South China University of Technology;

    Guangdong Province Key Laboratory of Efficient and Clean Energy Utilization School of Electric Power South China University of Technology;

    Guangdong Province Key Laboratory of Efficient and Clean Energy Utilization School of Electric Power South China University of Technology;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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