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利用甜菜青贮饲料进行按需沼气生产的特性

Characteristics of on-demand biogas production by using sugar beet silage.

作者信息

Ahmed Sharif, Kazda Marian

机构信息

Institute of Systematic Botany and Ecology, Ulm University, Albert-Einstein-Allee 11, 89081, Germany.

出版信息

Anaerobe. 2017 Aug;46:114-121. doi: 10.1016/j.anaerobe.2017.04.016. Epub 2017 Apr 29.

Abstract

On-demand electricity generation can be achieved by just-in-time biogas production instantly utilized in co-generation units. For this goal, easily degradable substrates like sugar beet silage have a high potential. Potential for on-demand biogas production from co-digestion of sugar beet silage (SS) with grass silage (GS) was evaluated in two experiments at organic loading rates (OLRs) of 1.5 kgVS m day and 2.5 kgVS m day, respectively. Each experiment was fed with intermittent feeding system at 8 hrs interval at the same feedstock ratios (volatile solids based) of GS:SS-1:0, 3:1 and 1:3, respectively. Modelling by Gaussian equation was performed in order to understand the effects of SS on biogas production. Addition of sugar beet silage led to maximum biogas production within a short time, but it differed significantly depending on feedstock ratios and OLRs, respectively. At OLR 1.5 kgVS m day, during mono fermentation of grass silage maximum biogas production rate of 0.27 l hr was reached at 2.74 hrs. Production rate did not change at feedstock ratio of GS:SS-3:1 but increased to 0.64 l hr at GS:SS-1:3 within a shorter time span (1.58 hrs). On the contrary, at OLR of 2.5 kgVS m day time span between feedstock input and maximum biogas production did not differ significantly (p > 0.05) among the reactors. Biogas production rates were 0.60 l hr within 2.27 hrs and 0.82 l hr within 2.30 hrs at GS:SS-3:1 and GS:SS-1:3, respectively. Surprisingly, there was no time lag between maximum biogas and methane production rates, irrespectively of OLR. This implies that once the whole microbial community is adapted to intermittent substrate input, the metabolic products are instantly utilized through the all steps of anaerobic substrate degradation. Applying this finding opens new perspectives for on-demand biogas energy production.

摘要

通过即时生产沼气并立即用于热电联产机组,可以实现按需发电。为了实现这一目标,像甜菜青贮饲料这样易于降解的底物具有很大潜力。在两个实验中,分别以1.5 kgVS/m³·天和2.5 kgVS/m³·天的有机负荷率(OLR)评估了甜菜青贮饲料(SS)与青贮牧草(GS)共消化产生按需沼气的潜力。每个实验都采用间歇进料系统,进料间隔为8小时,原料比例(基于挥发性固体)分别为GS:SS - 1:0、3:1和1:3。通过高斯方程进行建模,以了解SS对沼气生产的影响。添加甜菜青贮饲料可在短时间内实现最大沼气产量,但分别因原料比例和OLR的不同而有显著差异。在OLR为1.5 kgVS/m³·天的情况下,青贮牧草单发酵时,在2.74小时达到最大沼气生产率0.27升/小时。在GS:SS - 3:1的原料比例下,生产率没有变化,但在GS:SS - 1:3的情况下,在更短的时间跨度(1.58小时)内增加到0.64升/小时。相反,在OLR为2.5 kgVS/m³·天的情况下,各反应器中原料输入与最大沼气产量之间的时间跨度没有显著差异(p>0.05)。在GS:SS - 3:1和GS:SS - 1:3时,沼气生产率分别在2.27小时内为0.60升/小时和在2.30小时内为0.82升/小时。令人惊讶的是,无论OLR如何,最大沼气产量和甲烷产量之间都没有时间滞后。这意味着一旦整个微生物群落适应了间歇底物输入,代谢产物就会通过厌氧底物降解的所有步骤立即被利用。应用这一发现为按需沼气能源生产开辟了新的前景。

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