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利用食物垃圾与污水污泥共消化提高厌氧消化性能的综述

A Review on Performance Improvement of Anaerobic Digestion Using Co-Digestion of Food Waste and Sewage Sludge.

作者信息

Paranjpe Archana, Saxena Seema, Jain Pankaj

机构信息

University Institute of Technology, Rajiv Gandhi Prodyogiki Vishwavidhyalaya, Bhopal, 462033, India.

School of Energy and Environmental Management,(UTD), Rajiv Gandhi Prodyogiki Vishwavidhyalaya, Bhopal, 462033, India.

出版信息

J Environ Manage. 2023 Jul 15;338:117733. doi: 10.1016/j.jenvman.2023.117733. Epub 2023 Mar 31.

Abstract

Anaerobic co-digestion (AcoD) is a vital technology in the decarburization of the economy because of its ability to process organic waste, recover nutrients, and create biogas as a sustainable biofuel all at the same time. This attribute also makes this technology a viable partner in pursuing a circular economic model. However, the poor biogas output of typical substrates like sewage sludge and animal manure and the hefty installation costs limit its viability. This review paper with literature analysis provides a good grasp of the anaerobic co-digesting process with diverse food digestion methods. In this survey, we have analyzed the Anaerobic Digestion of water waste, food waste, and animal manure and the anaerobic co-digestion of animal waste with water waste and food waste with water waste. This analysis demonstrates that anaerobic co-digestion produces more methane biogas than anaerobic digestion. Also, it has been shown that by adjusting the ratio of food and animal waste to water waste, we can produce more methane. In the future, we would like to supplement anaerobic co-digestion by altering the proportion of different wastes that are mixed with water waste in order to increase methane production.

摘要

厌氧共消化(AcoD)是经济脱碳中的一项重要技术,因为它能够同时处理有机废物、回收养分并生产沼气作为可持续生物燃料。这一特性也使该技术成为追求循环经济模式的可行伙伴。然而,污水污泥和动物粪便等典型底物的沼气产量低以及安装成本高昂限制了其可行性。这篇带有文献分析的综述文章有助于很好地理解采用不同食物消化方法的厌氧共消化过程。在本次调查中,我们分析了废水、食物垃圾和动物粪便的厌氧消化以及动物粪便与废水、食物垃圾与废水的厌氧共消化。该分析表明,厌氧共消化产生的甲烷沼气比厌氧消化更多。此外,研究表明,通过调整食物和动物粪便与废水的比例,可以产生更多的甲烷。未来,我们希望通过改变与废水混合的不同废物的比例来补充厌氧共消化,以提高甲烷产量。

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