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废水生物固体的自催化热解产物升级。

Autocatalytic Pyrolysis of Wastewater Biosolids for Product Upgrading.

机构信息

Department of Civil, Construction and Environmental Engineering, Marquette University , Milwaukee, Wisconsin 53233, United States.

出版信息

Environ Sci Technol. 2017 Sep 5;51(17):9808-9816. doi: 10.1021/acs.est.7b02913. Epub 2017 Aug 23.

Abstract

The main goals for sustainable water resource recovery include maximizing energy generation, minimizing adverse environmental impacts, and recovering beneficial resources. Wastewater biosolids pyrolysis is a promising technology that could help facilities reach these goals because it produces biochar that is a valuable soil amendment as well as bio-oil and pyrolysis gas (py-gas) that can be used for energy. The raw bio-oil, however, is corrosive; therefore, employing it as fuel is challenging using standard equipment. A novel pyrolysis process using wastewater biosolids-derived biochar (WB-biochar) as a catalyst was investigated to decrease bio-oil and increase py-gas yield for easier energy recovery. WB-biochar catalyst increased the py-gas yield nearly 2-fold, while decreasing bio-oil production. The catalyzed bio-oil also contained fewer constituents based on GC-MS and GC-FID analyses. The energy shifted from bio-oil to py-gas, indicating the potential for easier on-site energy recovery using the relatively clean py-gas. The metals contained in wastewater biosolids played an important role in upgrading pyrolysis products. The Ca and Fe in WB-biochar reduced bio-oil yield and increased py-gas yield. The py-gas energy increase may be especially useful at water resource recovery facilities that already combust anaerobic digester biogas for energy since it may be possible to blend biogas and py-gas for combined use.

摘要

可持续水资源回收的主要目标包括最大限度地发电、最小化对环境的不利影响和回收有益资源。废水生物固体热解是一种很有前途的技术,可以帮助设施实现这些目标,因为它生产的生物炭是一种有价值的土壤改良剂,同时还生产生物油和热解气(py-gas),可用于能源。然而,原始生物油具有腐蚀性;因此,使用标准设备将其用作燃料具有挑战性。本研究考察了一种使用废水生物固体衍生生物炭(WB-biochar)作为催化剂的新型热解工艺,以降低生物油产量并增加 py-gas 产量,从而更轻松地回收能源。WB-biochar 催化剂使 py-gas 产量增加了近 2 倍,同时减少了生物油的产量。催化生物油的 GC-MS 和 GC-FID 分析结果表明其组成成分也较少。能量从生物油转移到 py-gas,表明使用相对清洁的 py-gas 进行现场能源回收的潜力。废水生物固体中的金属在热解产物的升级中发挥了重要作用。WB-biochar 中的 Ca 和 Fe 降低了生物油产量并增加了 py-gas 产量。py-gas 能量的增加对于已经燃烧厌氧消化沼气发电的水资源回收设施可能特别有用,因为可以混合沼气和 py-gas 进行联合使用。

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