沼气
原材料
环境科学
营养物
食物垃圾
农业
厌氧消化
废物管理
生物降解
制浆造纸工业
发酵
化学
甲烷
食品科学
工程类
生物
生态学
有机化学
作者
Josef Maroušek,Otakar Strunecký,Ladislav Kolář,Marek Vochоzka,Marek Kopecký,Anna Maroušková,Jana Batt,Miloš Poliak,Miloslav Šoch,Petr Bartoš,Tomáš Klieštik,Martin Filip,Petr Konvalina,Jan Moudrý,Jiří Peterka,Karel Suchý,Tomáš Zoubek,Edmond Çera
标识
DOI:10.1080/15567036.2020.1776796
摘要
Foodwaste (hereinafter, FW) is the most voluminous solid waste and its amount is growing rapidly all over the world. The turning of FW into biogas via anaerobic fermentation is widely recognized as an environmentally responsible and economically reasonable option. Based on the knowledge obtained from agricultural biogas stations, the current methods of FW fermentation management are based on balancing the ratio of total carbon and nitrogen. However, it was repeatedly and independently reported that the stability of this process is low, resulting in many concessions in terms of prolonged hydraulic retention time or reduced biogas yield. Hence, biochemical as well as economic performance of the process is balanced by mixing of FW with agricultural residues. FW samples of various origin were collected and biochemically analyzed. The data indicate that FW originating from homes and luxury restaurants tends to be lignocellulose-based, whereas the levels of crude fiber (25% up to 27%) are higher than those from agricultural feedstock (18%). In contrast, FW from school canteens and inexpensive restaurants tends to be starch-based with high levels of amyloids (21% up to 23%) and fat (5% up to 7%). A novel method better reflecting the bioavailability of carbon and nitrogen to anaerobic consortia is proposed. It is demonstrated that the previous optimization methods could somehow reflect the availability of nutrients in agricultural feedstock, as carbonaceous and nitrogen sources are relatively equally biodegradable. Nevertheless, the biodegradability of FW is considerably different, which is why higher amounts of proteins and lipids lead to increased levels of ammonia and sulfide, resulting in an inhibitory effect on the metabolism of anaerobic consortia. Optimizing the anaerobic fermentation of FW by the new method outperforms the previous technique and makes it possible to process FW more intensively, or, more precisely, with higher profitability and lower proportion of ballast agricultural feedstock.
科研通智能强力驱动
Strongly Powered by AbleSci AI