Fair Friend Institute of Intelligent Manufacturing, Hangzhou Vocational and Technical College, Hangzhou, 310018, China.
Hangzhou Huaxin Mechanical and Electrical Engineering Co., Ltd, Hangzhou, 310030, China.
Sci Rep. 2024 May 25;14(1):11967. doi: 10.1038/s41598-024-62998-w.
Anaerobic co-digestion is an effective method for addressing the issue of a single substrate not being able to achieve optimal conditions for anaerobic digestion. By adjusting the mixture ratio of sewage sludge and food waste to achieve the optimal carbon to nitrogen ratio, the effectiveness of thermophilic-mesophilic temperature phase anaerobic co-digestion (TPAcD) was evaluated in comparison to single phase mesophilic anaerobic co-digestion (MAcD) and thermophilic anaerobic co-digestion (TAcD). The results indicated that TPAcD increased methane yield by 50.3% and 32.7% compared to MAcD and TAcD, respectively. The variation in VFA, pH, and ammonia nitrogen levels demonstrated that TPAcD combines the advantages of both MAcD and TAcD, with a higher hydrolysis rate in the early stage under thermophilic conditions (55 °C) and a suitable environment in the later stage under mesophilic conditions (35 °C). The kinetic parameters of anaerobic co-digestions also demonstrated that TPAcD performs better. Therefore, further research on TPAcD of sewage sludge and food waste is warranted due to its significant improvements in methane production rate, total methane yield, and system stability. Additionally, TPAcD contributes to reducing carbon emissions and supports the realization of "carbon neutrality".
厌氧共消化是解决单一底物无法达到最佳厌氧消化条件的有效方法。通过调整污水污泥和食物垃圾的混合比例,以达到最佳碳氮比,评估了高温-中温温度阶段厌氧共消化(TPAcD)与单相中温厌氧共消化(MAcD)和高温厌氧共消化(TAcD)相比的效果。结果表明,与 MAcD 和 TAcD 相比,TPAcD 分别提高了甲烷产量 50.3%和 32.7%。VFA、pH 和氨氮水平的变化表明,TPAcD 结合了 MAcD 和 TAcD 的优点,在高温条件(55°C)下具有更高的水解率,在中温条件(35°C)下具有更适宜的环境。厌氧共消化的动力学参数也表明,TPAcD 的性能更好。因此,由于 TPAcD 显著提高了甲烷产率、总甲烷产量和系统稳定性,有必要进一步研究污水污泥和食物垃圾的 TPAcD。此外,TPAcD 有助于减少碳排放,支持实现“碳中和”。