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需氧和微需氧的组合促进了稻草和猪粪的水解和酸化:不溶性和可溶性底物的平衡。

The combination of aerobic and microaerobic promote hydrolysis and acidification of rice straw and pig manure: Balance of insoluble and soluble substrate.

机构信息

State Key Laboratory of Food Science and Technology, Engineering Research Center for Biomass Conversion, Ministry of Education, Nanchang University, Nanchang, Jiangxi 330047, PR China.

Agricultural Ecology and Resources Protection Station of Jiangxi Province, Nanchang 330046, China.

出版信息

Bioresour Technol. 2022 Apr;350:126880. doi: 10.1016/j.biortech.2022.126880. Epub 2022 Feb 21.

Abstract

Separated hydrolysis and acidification is an effective pretreatment method for anaerobic digestion of lignocellulose. However, excess consumption of soluble substrates remains a problem. Rice straw and pig manure were used as substrates with biogas slurry as the inoculum, combined with aerobic and microaerobic conditions in the 14-day hydrolysis and acidification. Aeration can significantly accelerate volatile solid degradation (38.25%), especially the lignocellulose. Soluble chemical oxygen demand (29157 mg/L) and volatile fatty acids (13219 mg/L) of the group with 4 days aerobic treatment, reached their peaks on day 5, obtaining a balanced insoluble substrate degradation and soluble substrate consumption. Candida, Lactobacillus, Bifidobacterium, and Acetobacter were enriched at the balanced point for positive contribution to the degradation of the insoluble substrate and the generation of soluble substrate. This study not only reveals the balance between degradation and consumption, but also provides new insight into biogas slurry recycling and anaerobic digestion precursor substrate production.

摘要

分离水解酸化是一种有效的木质纤维素厌氧消化预处理方法。然而,可溶基质的过度消耗仍然是一个问题。本研究以沼气发酵液为接种物,以水稻秸秆和猪粪为底物,在 14 天的水解酸化过程中结合好氧和微氧条件。曝气可以显著加速挥发性固体降解(38.25%),特别是木质纤维素。经 4 天好氧处理的组的可溶化学需氧量(29157mg/L)和挥发性脂肪酸(13219mg/L)在第 5 天达到峰值,从而实现了平衡的不可溶基质降解和可溶基质消耗。在平衡点处富集了 Candida、Lactobacillus、Bifidobacterium 和 Acetobacter,这对不可溶基质的降解和可溶基质的生成有积极贡献。本研究不仅揭示了降解和消耗之间的平衡,还为沼气发酵液的回收和厌氧消化前体底物的生产提供了新的见解。

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