Laboratory of Biomass and Bioprocessing Engineering, College of Engineering, China Agricultural University, Beijing 100083, China.
Laboratory of Biomass and Bioprocessing Engineering, College of Engineering, China Agricultural University, Beijing 100083, China.
Bioresour Technol. 2017 Oct;241:190-199. doi: 10.1016/j.biortech.2017.03.144. Epub 2017 Mar 27.
The objective of the present study was to study the changes in compost particle and its relationship with other physicochemical process during aerobic composting employing 5%, 10%, 20% or 0% biochar. Changes of physicochemical and biological parameters and gases emissions indicated that appropriate biochar addition improved both degradation rate and final degree of the organic matter and simultaneously reduced CO, CH, NO and NH emissions. Beneficial properties like stability and high porosity of biochar could optimize composting environment, accelerate the process of composting and facilitate microbial growth during the thermophilic composting stage, with increases of 1.3×10 to 1.5×10cfu/g. Analysis of microstructure characterization of the changes in compost particle indicated that biochar amended contributed to better degradation of compost particle with smaller sizes and a higher degree of looseness. Ultimately, 10% biochar addition optimized organic matter degradation, while reducing ammonia and greenhouse gas emissions and costs.
本研究的目的是研究在好氧堆肥过程中添加 5%、10%、20%或 0%生物炭时堆肥颗粒及其与其他物理化学过程的变化。理化和生物参数以及气体排放的变化表明,适量添加生物炭可提高有机物的降解速率和最终程度,同时减少 CO、CH、NO 和 NH 的排放。生物炭的稳定性和高孔隙率等有益特性可以优化堆肥环境,加速堆肥过程,并在高温堆肥阶段促进微生物生长,cfu/g 增加 1.3×10 到 1.5×10。堆肥颗粒微观结构特征分析表明,添加生物炭有助于更好地降解堆肥颗粒,使其粒径更小,松散度更高。最终,添加 10%的生物炭可以优化有机物的降解,同时减少氨和温室气体排放和成本。