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Sludge-to-energy approaches based on pathways that couple pyrolysis with anaerobic digestion (thermal hydrolysis pre/post-treatment):Energy efficiency assessment and pyrolysis kinetics analysis

机译:基于肺泡与厌氧消化的途径的污泥到能源方法(热水解前/后处理):能效评估和热解动力学分析

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摘要

In this study, the apparent energy efficiencies (AEEs) of four sludge-to-energy pathways (raw sludge (RS)→ pyrolysis; RS→anaerobic digestion (AD)→pyrolysis; RS→thermal hydrolysis process (THP)→ AD→pyrolysis; and RS→AD→THP→pyrolysis) were analyzed and the yields of the pyrolysis products were examined. Compared with simple RS pyrolysis, the other three pathways yielded significantly more biochar and pyrolysis gas (py-gas), but the tar yield was reduced. The pathways that combined AD, THP, and pyrolysis achieved higher energy efficiencies than the pyrolysis of RS. The RS→AD→THP→ pyrolysis pathway had the highest AEE (91.3%). Thermogravimetric analysis and the Coats-Redfern model were used to explore the pyrolysis kinetic characteristics of the different sludge-to-energy pathways. The results showed that AD and THP reduced the activation energy of sludge pyrolysis. The activation energy of the pyrolysis of sludge tteated by AD after being treated with THP was the lowest of the treated sludge samples (15.30 kJ/mol and 19.04 kJ/mol at 180.04°C-337.50°C and 337.50°C-550.03 °C, respectively).
机译:在这项研究中,四种污泥到能量途径的表观能量效率(AEE)(原料污泥(RS)→热解; RS→厌氧消化(AD)→热解; RS→热水解过程(THP)→AD→热解;和Rs→Ad→THP→热解)进行了分析,检查了热解产物的产率。与简单的RS热解相比,其他三种途径产生了更多的生物炭和热解气(Py气),但焦油产率降低。组合AD,THP和热解的途径比Rs的热解实现了更高的能量效率。 RS→AD→THP→热解途径具有最高的AEE(91.3%)。热重分析和涂层 - 铁丝模型用于探索不同污泥到能量通路的热解动力学特性。结果表明,广告和THP降低了污泥热解的活化能。用THP处理后通过AD进行的污泥热解的激活能量是经过处理的污泥样品中最低(15.30kJ / mol和19.04kJ / mol,在180.04℃-337.50°C和337.50°C-550.03°C和337.50°C-550.03°C , 分别)。

著录项

  • 来源
    《Energy》 |2020年第1期|116240.1-116240.9|共9页
  • 作者单位

    School of Environmental Science and Engineering. Tongji University Shanghai 200092 PR China;

    School of Environmental Science and Engineering. Tongji University Shanghai 200092 PR China;

    School of Environmental Science and Engineering. Tongji University Shanghai 200092 PR China Shanghai Institute of Pollution Control and Ecological Security Shanghai 200092 PR China;

    School of Environmental Science and Engineering. Tongji University Shanghai 200092 PR China Shanghai Institute of Pollution Control and Ecological Security Shanghai 200092 PR China;

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

    Anaerobic digestion; Thermal hydrolysis; Pyrolysis; Apparent energy efficiency; Coats-redfern model;

    机译:厌氧消化;热水解;热解;表观能效;外套 - Redifern模型;

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