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Optimization of alkaline hydrothermal pretreatment of biological sludge for enhanced methane generation under anaerobic conditions

机译:厌氧条件下增强甲烷生物污泥碱性水热预处理的优化

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摘要

This paper investigated the effect of alkaline hydrothermal pretreatment (HTP) on the hydrolysis, biodegradation and methane generation potential of waste activated sludge (WAS). A multi-variable experimental approach was designed, where initial solids content (1-5%), reaction temperature (130-190 °C), reaction time (10-30 min.) and caustic concentration (0-0.2 mgNaOH/mgVS) were varied in different combinations to assess the impact of alkaline HTP. This process significantly enhanced the hydrolysis of organic compounds in sludge into soluble fractions, whereby increasing the chemical oxygen demand (COD) leakage up to 200-900% with the 17-99% solubility. It boosted volatile solids (VS) biodegradation up to 40%, which resulted in a parallel increase in methane generation from 216 mLCH_4/gVS to as high a 456 mLCH_4/gVS methane generation basically relied on the conversion of solu-bilized COD. Alkaline HTP process was optimized for the maximum methane production. Optimum conditions were obtained at 190 °C reaction temperature, 10 min. reaction time, 0.2 mgNaOH/mgVS and 5% dry matter content. Under these conditions, 453.8 mLCH_4/gVS was predicted. Biochemical methane potential (BMP) value was determined as 464 mLCH_4/gVS supporting predictive power of the BMP model. The biodegradability compared to the untreated raw WAS was enhanced 78.2%.
机译:本文研究了碱性水热预处理(HTP)对废物活性污泥的水解,生物降解和甲烷发电潜力的影响。设计了一种多变量的实验方法,其中初始固体含量(1-5%),反应温度(130-190℃),反应时间(10-30分钟)和苛性浓度(0-0-2mgnaOH / MgV)以不同的组合而变化,以评估碱性HTP的影响。该方法显着增强了污泥中有机化合物的水解,进入可溶性级分,从而增加了高达200-900%的化学需氧量(COD)渗漏,其溶解度为17-99%。它增强了高达40%的挥发性固体(Vs)生物降解,导致从216mLCH_4 / GV的甲烷产生并平行增加,高于456mLCH_4 / GVS甲烷生成,基本依赖于溶解鳕鱼的转化率。碱性HTP方法针对最大甲烷生产进行了优化。在190℃反应温度下获得最佳条件,10分钟。反应时间,0.2mgnaOH / mgVs和5%干物质含量。在这些条件下,预测了453.8mLCH_4 / GV。生物化学甲烷电位(BMP)值确定为支持BMP模型的预测力的464mLCH_4 / GVS。与未处理的原料相比的生物降解性得到了78.2%。

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