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Effects of Biochar-Amendment to Landfill Cover Soil on Microbial Methane Oxidation: Initial Results

机译:生物炭修正对微生物甲烷氧化的垃圾填埋场土壤的影响:初始结果

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Biochar amendments to landfill covers have been proposed as an economic solution to reduce methane emissions from landfills without gas recovery systems, or in conjunction with gas recovery for near-complete methane removal in new landfills. In this study, column experiments are used to simulate the effects of biochar amendments to landfill cover soils for methane mitigation. Acrylic columns were packed with coarse gravel, and filled with either soil or 20% biochar/80% soil. Measurements of CH_4, CO_2 and temperature along the depth of the column allowed the determination of gas profiles and oxidation efficiencies over the course of the experiment. DNA-based assays and isotopic measurements (δ~(13)CH_4 and δ~(13)CO_2 [‰]) were used to infer the extent of microbial oxidation and to evaluate the distribution of methanotrophs within each column. qPCR targeting the pmoA (particulate methane monoxygenase) gene indicate a higher number of methanotrophs exist in the biochar-amended column, supporting the observed higher rates of methane oxidation. Batch incubation experiments were conducted to determine Michaelis-Menten kinetic parameters for methane oxidation. Initial results indicate that biochar is effective in increasing methanotrophic activity and promoting methane oxidation.
机译:生物炭修订垃圾填埋场覆盖已经被提议作为一个经济的解决方案,以减少垃圾填埋场的甲烷排放量无气回收系统,或与几乎完全甲烷去除在新的垃圾填埋气回收相结合。在这项研究中,列试验用于模拟的生物炭修订填埋场覆盖土的甲烷减排效果。丙烯酸柱填充有粗砂砾,并且填充有任一土壤或20%的生物炭/ 80%的土壤。 CH_4,CO_2的测量值和温度沿着列的深度允许的气体型材和氧化效率的确定在实验的过程中。基于DNA的测定法和同位素测量(δ〜(13)和CH_4δ〜(13)CO_2 [‰])被用来推断微生物的氧化的程度,并评价甲烷营养中的每一列内的分布。的qPCR靶向pmoA(微粒甲烷单加氧酶)基因指示所述生物炭修订的列中存在较高数量的甲烷营养的,支持甲烷氧化所观察到的更高的速率。批量培养实验,以确定甲烷氧化米氏动力学参数。初步结果表明,生物炭可有效地提高甲烷的活动,促进甲烷氧化。

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