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Fermentative hydrogen and methane co-production from anaerobic co-digestion of organic wastes at high loading rate coupling continuously and sequencing batch digesters

机译:从高负载速率连续耦合和测序批量消化器的有机废物中的发酵氢和甲烷共产生来自有机废物

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The anaerobic co-digestion of the most abundant organic wastes was investigated for enhancing biogas production rate and quality. The used feedstock was composed of fruit and vegetable waste (FVW), waste-activated sludge (WAS), olive mill wastewater (OMW) and cattle manure (CM). A considerable methane yield of 340?L/kg volatile solid (VS) inlet was obtained using single-stage anaerobic sequencing batch reactors (ASBRs). However, VS biodegradation becomes difficult at high organic loading rate (OLR). Therefore, a continuously stirred tank reactor (CSTR) was integrated to the ASBR for waste pre-digestion. The dark fermentation leads to the improvement of organic matter solubilisation and bio-hydrogen productivity, reaching 0.73?L/L/day (H~(2)content of 49.8%) when pH decreased to 5.8. Therefore, methane productivity increased from 0.6 to 1.86?L/L/day in the methanogenic reactor with a better VS biodegradation (91.1%) at high OLR. Furthermore, the bio-hythane production was performed through a controlled biogas recirculation from the dark fermentation stage into the methaniser to reach 842.4?L/kg VS inlet. The produced biogas was composed of 8% H~(2), 28.5% CO~(2)and 63.5% CH~(4). Therefore, two-stage anaerobic co-digestion with coupled CH~(4)and H~(2)recuperation may be an important contribution for pollution control and high-rate bioenergy recovery (21.1?kJ/g VS inlet) from organic wastes.
机译:研究了厌氧共同消化最丰富的有机废物,以提高沼气生产率和质量。使用的原料由水果和蔬菜废物(FVW),废物活性污泥(Am),橄榄磨废水(OMW)和牛粪(CM)组成。使用单级厌氧测序批量反应器(ASBR)获得相当大的甲烷产率为340〜L / kg挥发性固体(Vs)入口。然而,在高有机加载速率(OLR)中,VS生物降解变得困难。因此,将连续搅拌的罐式反应器(CSTR)整合到ASBR中,用于废物预消化。黑暗发酵导致有机物溶解和生物氢生产率的提高,达到0.73〜L / L /天(H〜(2)含量为49.8%),当pH降至5.8时。因此,甲烷的生产率从甲基反应器中的0.6〜1.86〜1.86?L / L /天,在高OLR中具有更好的VS生物降解(91.1%)。此外,通过从黑暗发酵阶段的受控的沼气再循环到甲烷机中进行生物膦生产,达到842.4〜1 / kg V​​s入口。产生的沼气由8%H〜(2),28.5%CO〜(2)和63.5%CH〜(4)组成。因此,具有偶联CH〜(4)和H〜(2)次恢复的两级厌氧共消化可能是来自有机废物的污染控制和高速生物能量恢复(21.1 kJ / g vs入口)的重要贡献。

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