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Optimization of recovery and utilization pathway of chemical energy from wastewater pollutants by a net-zero energy wastewater treatment model

机译:净零能量污水处理模型优化废水污染物中化学能量的回收利用途径

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摘要

Recovering chemical energy from wastewater is an important route to reduce the electricity input in wastewater treatment plants (WWTPs), which can significantly decrease the carbon footprint of wastewater treatment. Existing evaluation models of energy self-sufficiency focused on macroscopic substance-energy flow and considered the overall energy balance of WWTPs but ignored the substance and energy conversion process via microbial metabolism. In this study, a net-zero energy (NZE) model was established based on microbial metabolism and energy balance to estimate the potential for chemical-energy recovery from wastewater pollutants and the optimization of metabolic substrate allocation, which was implemented in a large WWTP with anaerobic digestion. The results indicate that temperature and Delta COD were key influence factors for specific energy consumption mu. The average energy self-sufficiency rate was 43.9% under the existing operations in the WWTP. The energy self-sufficiency rates with optimized substrate allocation ranged from 58.3% to 110.6%, with an average value of 78.8%. The energy self-sufficiency rates obtained in July and August were higher than 100%, indicating that the WWTP could achieve NZE status and output electric energy in July and August, but not in other months. Seasonal variation significantly affected the potential of chemical energy recovery from wastewater pollutants in the WWTP. The average reduction in greenhouse gas emissions with energy recovery under optimal operation conditions reached 76.4% in the WWTP studied herein. The enhanced anaerobic digestion efficiency and optimization of substrate allocation between catabolism and anabolism could increase the possibility of achieving NZE status based on the model.
机译:从废水中回收化学能是减少废水处理厂(WWTPS)中电力输入的重要途径,这可以显着降低废水处理的碳足迹。能源自给自足的现有评估模型集中在宏观物质 - 能量流动上,并考虑了WWTPS的整体能量平衡,但通过微生物代谢忽略了物质和能量转化过程。在这项研究中,基于微生物代谢和能量平衡建立了净零能量(NZE)模型,以估计从废水污染物和代谢底物分配的优化的化学能源回收潜力,其在大型涡旋​​中实施厌氧消化。结果表明,温度和达德氏鳕鱼是特定能耗亩的关键影响因素。在WWTP的现行行动下,平均能源自给自足率为43.9%。优化底物分配的能量自给率范围为58.3%至110.6%,平均值为78.8%。 7月和8月获得的能源自给率高于100%,表明妇女署可以在7月和8月实现氮气现状和输出电能,但在其他几个月内。季节性变化显着影响了WWTP中废水污染物的化学能源回收的潜力。在本文研究的WWTP中,在最佳运行条件下的能量回收率的平均降低达到76.4%。增强的厌氧消化效率和分解代谢与合成代谢物之间的底物分配的优化可以增加基于模型实现NZE状态的可能性。

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  • 来源
    《Renewable & Sustainable Energy Reviews》 |2020年第11期|110160.1-110160.12|共12页
  • 作者单位

    Chongqing Univ Minist Educ Key Lab Three Gorges Reservoir Reg Ecoenvironm Chongqing 400045 Peoples R China|Chongqing Univ Coll Environm & Ecol Chongqing 400045 Peoples R China;

    Chongqing Univ Minist Educ Key Lab Three Gorges Reservoir Reg Ecoenvironm Chongqing 400045 Peoples R China|Chongqing Univ Coll Environm & Ecol Chongqing 400045 Peoples R China;

    Chongqing Univ Minist Educ Key Lab Three Gorges Reservoir Reg Ecoenvironm Chongqing 400045 Peoples R China|Chongqing Univ Coll Environm & Ecol Chongqing 400045 Peoples R China;

    Chongqing Technol & Business Univ Natl Res Base Intelligent Mfg Serv Chongqing 400067 Peoples R China;

    Chongqing Univ Minist Educ Key Lab Three Gorges Reservoir Reg Ecoenvironm Chongqing 400045 Peoples R China|Chongqing Univ Coll Environm & Ecol Chongqing 400045 Peoples R China;

    Chongqing Univ Minist Educ Key Lab Three Gorges Reservoir Reg Ecoenvironm Chongqing 400045 Peoples R China|Chongqing Univ Coll Environm & Ecol Chongqing 400045 Peoples R China;

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

    Chemical energy recovery; Carbon footprint reduction; Energy self-sufficiency; Net-zero energy model; Anaerobic digestion; Substrate allocation;

    机译:化学能量回收;碳足迹减少;能源自给自足;净零能量模型;厌氧消化;基板分配;

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