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Characterization of solid fuel chars recovered from microwave hydrothermal carbonization of human biowaste

机译:从人类生物废物的微波水热碳化中回收的固体燃料炭的表征

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Microwave hydrothermal carbonization (M-HTC) is reported in this study as a viable sanitation technology that can reliably overcome the heterogeneous nature of human faecal biowaste (HBW) and realize its intrinsic energy value. Solid chars produced from the M-HTC process at 180 degrees C and 200 degrees C were characterized to further the understanding of the conversion pathways and their physicochemical, structural and energetic properties. The study revealed solid chars recovered were predominantly via a solid-solid conversion pathway. In terms of yield, more than 50% of solid chars (dry basis) can be recovered using 180 degrees C as a benchmark. Additionally, the carbonized solid chars demonstrated enhanced carbon and energy properties following the M-HTC process: when compared to unprocessed HBW, the carbon content in the solid chars increased by up to 52%, while the carbon densification factor was greater than 1 in all recovered chars. The calorific values of the chars increased by up to 41.5%, yielding heating values that averaged 25 MJ kg(-1). Thermogravimetric studies further revealed the solid fuel chars exhibited greater reactivity when compared with unprocessed HBW, due to improved porosity. This work strengthens the potential of the M-HTC sanitation technology for mitigating poor sanitation impacts while also recovering energy, which can complement domestic energy demands. (C) 2017 Elsevier Ltd. All rights reserved.
机译:这项研究报告了微波水热碳化(M-HTC)是一种可行的卫生技术,可以可靠地克服人类粪便生物垃圾(HBW)的异质性并实现其内在能量价值。从M-HTC工艺在180摄氏度和200摄氏度下产生的固体炭的特征在于进一步了解转化途径及其理化,结构和能量特性。研究表明,回收的固体炭主要是通过固-固转化途径获得的。就产率而言,以180℃为基准可以回收超过50%的固体炭(干基)。此外,碳化的固体焦炭在M-HTC工艺之后表现出增强的碳和能量特性:与未处理的HBW相比,固体焦炭中的碳含量最多增加52%,而所有碳密实度均大于1恢复的字符。炭的热值增加了高达41.5%,产生的热量平均为25 MJ kg(-1)。热重研究进一步表明,与未加工的HBW相比,固体燃料炭表现出更高的反应性,这是由于孔隙率提高了。这项工作增强了M-HTC卫生技术在减轻不良卫生影响的同时还可以回收能源的潜力,这可以补充国内能源需求。 (C)2017 Elsevier Ltd.保留所有权利。

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