通过与厨余垃圾共同发酵,提高猪粪的磷释放量。

IF 3.5 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Bioprocess and Biosystems Engineering Pub Date : 2024-12-13 DOI:10.1007/s00449-024-03118-w
Chang Su, Shun Wang, Jizhong Meng, Xinmin Zhan
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引用次数: 0

摘要

由于动物粪便中磷含量高,因此被认为具有很大的磷回收潜力,而磷的回收受到磷从固相转移到液相的限制。通过添加化学酸性试剂的传统溶解工艺对动物粪便不具有经济可行性。本研究以食物垃圾(FW)为共底物,对猪粪(PM)进行厌氧发酵,实现磷的释放,优化了操作参数,并对酸化和磷释放机理进行了进一步研究。结果表明,FW促进了乳酸的生成和快速酸化。当FW从0增加到80%时,乳酸浓度从0.12±0.04 g/L增加到11.95±1.37 g/L, pH从7.55降低到4.43。以FW/PM = 1:2为最佳条件,72 h可溶磷酸盐浓度最高(350.39±8.59 mg/L), TP释放率为74.24±1.81%。多元回归分析建立了预测反应器pH变化的关键关系。
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Enhanced phosphorus release from pig manure by co-fermentation with food waste.

Animal manure is considered to have great potential for phosphorus (P) recovery due to its high P content, while P recovery is limited by the transfer of P from the solid phase to the liquid phase. The conventional dissolution process by adding chemical acid reagents is not economically feasible for animal manure. This study used food waste (FW) as a co-substrate for the anaerobic fermentation of pig manure (PM) to achieve the release of P. The operational parameters were optimized, and the mechanisms of acidification and P release were further studied. The results showed FW promoted lactic acid production and rapid acidification. As FW increased from 0 to 80%, the concentrations of lactic acid rose from 0.12 ± 0.04 to 11.95 ± 1.37 g/L, with pH decreasing from 7.55 to 4.43. The ratio with FW/PM = 1:2 was the optimal condition, which led to the highest soluble phosphate concentration (350.39 ± 8.59 mg/L) in 72 h, with a TP release rate of 74.24 ± 1.81%. Multiple regression analyses established key relationships to predict pH changes in the reactor.

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来源期刊
Bioprocess and Biosystems Engineering
Bioprocess and Biosystems Engineering 工程技术-工程:化工
CiteScore
7.90
自引率
2.60%
发文量
147
审稿时长
2.6 months
期刊介绍: Bioprocess and Biosystems Engineering provides an international peer-reviewed forum to facilitate the discussion between engineering and biological science to find efficient solutions in the development and improvement of bioprocesses. The aim of the journal is to focus more attention on the multidisciplinary approaches for integrative bioprocess design. Of special interest are the rational manipulation of biosystems through metabolic engineering techniques to provide new biocatalysts as well as the model based design of bioprocesses (up-stream processing, bioreactor operation and downstream processing) that will lead to new and sustainable production processes. Contributions are targeted at new approaches for rational and evolutive design of cellular systems by taking into account the environment and constraints of technical production processes, integration of recombinant technology and process design, as well as new hybrid intersections such as bioinformatics and process systems engineering. Manuscripts concerning the design, simulation, experimental validation, control, and economic as well as ecological evaluation of novel processes using biosystems or parts thereof (e.g., enzymes, microorganisms, mammalian cells, plant cells, or tissue), their related products, or technical devices are also encouraged. The Editors will consider papers for publication based on novelty, their impact on biotechnological production and their contribution to the advancement of bioprocess and biosystems engineering science. Submission of papers dealing with routine aspects of bioprocess engineering (e.g., routine application of established methodologies, and description of established equipment) are discouraged.
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