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利用集成的水热碳化和厌氧消化工艺对螺旋压榨分离出的食物垃圾固相进行转化。

Conversion of the solid fraction of food waste separated by a screw press using an integrated hydrothermal carbonization and anaerobic digestion process.

机构信息

Energy, Mining and Environment Research Centre, National Research Council Canada, 6100 Royalmount Ave, Montreal, QC H4P 2R2, Canada.

Aquatic and Crop Resource Development Research Centre, National Research Council Canada, 6100 Royalmount Ave, Montreal, QC H4P 2R2, Canada.

出版信息

Waste Manag. 2024 Dec 15;190:676-686. doi: 10.1016/j.wasman.2024.10.019. Epub 2024 Nov 16.

DOI:10.1016/j.wasman.2024.10.019
PMID:39550995
Abstract

The treatment of food waste by anaerobic digestion (AD) still faces several challenges. Fractionating the waste, with a screw press separator, into a liquid phase rich in soluble compounds and a solid fraction could contribute to reduce these challenges, provided that the solid fraction is valorized. To do so, hydrothermal carbonization was shown to be a promising option. Indeed, HTC produced a hydrochar having an energy content 8-38 % higher than the initial feedstock and a process water that could be further converted to methane through anaerobic digestion, with a yield of 160-230 mL CH per g of COD. The methane production was shown to be influenced by the recalcitrance of certain HTC products, with hardly no inhibition detected. The integrated 3-step process produces as much energy as conventional anaerobic digestion, while reducing challenges associated to low loading rate and digestate handling.

摘要

厌氧消化(AD)处理食物垃圾仍然面临着一些挑战。通过螺旋压榨机将废物分为富含可溶性化合物的液相和固体部分,可以有助于减少这些挑战,前提是固体部分得到了有效利用。为此,水热碳化被证明是一种很有前途的选择。事实上,HTC 生产的水热炭的能量含量比初始原料高出 8-38%,而且工艺水可以通过厌氧消化进一步转化为甲烷,每克 COD 的甲烷产量为 160-230 毫升。甲烷的产生受到某些 HTC 产品的抗降解性的影响,几乎没有检测到抑制作用。这个集成的 3 步工艺产生的能量与传统的厌氧消化一样多,同时减少了与低负荷率和消化物处理相关的挑战。

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