A Review of Biogas Production from Small-Scale Anaerobic Digestion Plants

Raghad Maher Wadi, Sroor Atallah Khalifa
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Abstract

One of the most serious problems facing the whole world today is global warming. Their lease of greenhouse gases is exacerbating the effects of global warming. Reduced greenhouse gas emissions and searching for alternative energy sources are becoming increasingly crucial. This study aims to review that one of the effective methods for lowering greenhouse gas emissions is the creation of biogas from agricultural waste using anaerobic digester plants. A lab-scale 5-liter batch fermenter was incubated at room temperature, specifically mesophilic (35°C). Biogas is a clean, reasonably priced, and sustainable energy source produced by the anaerobic fermentation of waste and organic waste. Mixing sludge and waste to react with each other during biogas production is essential. Factors affecting biogas, such as loading rate, retention time, operating ambient temperature, pH, mixing, etc., are also discussed. Asia is a region where the generation of this form of renewable energy is widespread, particularly in nations like China and India. The generation of biogas never has any adverse environmental effects, but it also yields environmentally safe byproducts. Agricultural waste is a large and anthropogenic source of methane in the atmosphere. It can be converted into nutrient-rich fertilizer. Agricultural waste, food waste, animal or human manure, and other organic waste are all converted into energy (in the form of biogas or electricity) using anaerobic digesters. Another advantage of biological fermentation is that it leaves behind a high-quality organic fertilizer
小型厌氧消化厂沼气生产综述
全球变暖是当今世界面临的最严重问题之一。温室气体的排放加剧了全球变暖的影响。减少温室气体排放和寻找替代能源正变得越来越重要。本研究旨在探讨利用厌氧发酵装置从农业废弃物中制造沼气是减少温室气体排放的有效方法之一。实验室规模的 5 升批量发酵罐在室温下培养,特别是在嗜中性(35°C)条件下。沼气是一种清洁、价格合理且可持续的能源,由垃圾和有机废物厌氧发酵产生。在生产沼气的过程中,必须将污泥和废物混合在一起,使其相互反应。此外,还讨论了影响沼气的因素,如装载率、停留时间、操作环境温度、pH 值、混合等。在亚洲,尤其是在中国和印度等国家,这种可再生能源的生产非常普遍。沼气的产生从未对环境造成任何不利影响,而且还能产生对环境安全的副产品。农业废弃物是大气中大量甲烷的人为来源。它可以转化为营养丰富的肥料。农业废弃物、食物残渣、动物或人类粪便以及其他有机废弃物都可以利用厌氧发酵器转化为能源(以沼气或电力的形式)。生物发酵的另一个优势是,它能留下优质的有机肥料
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来源期刊
CiteScore
0.70
自引率
0.00%
发文量
74
审稿时长
50 weeks
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