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Gasification of Sewage Sludge Enriched with Plant Biomass - Modeling and Tests

机译:污水污泥的气化富含植物生物量 - 建模和测试

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The article presents results from experimental and numerical investigation on gasification of dried sewage sludge enriched with biomass from Virginia Mallow at a mass ratio of 0/100%, 50/50% and 100/0% in tests and in the range from 0 to 100% in theoretical analysis. in order to effective utilization of sewage sludge. The dried sludge can be subjected to thermal processing of gasification at temperature above 850°C. However, there are some difficulties in obtaining this temperature due to high content of mineral substances transforming into large amounts of ash during gasification. Unfavorable feature of sewage sludge being significant impediment to gasification process is its high ash content up to 40% by mass. As observed, one of the main characteristics of lignocellulosic biomass like Virginia Mallow, which makes it appropriate for thermal processing, is the low amount of mineral content below 2%. It contributes to more stable and efficient gasification process (less combustibles found in ash). Furthermore, due to large ballast of ash in sewage sludge, it was not possible to obtain sufficiently high gasification temperature (observed maximum was 800°C). In turn, addition of Virginia Mallow caused that the process temperature possible to achieve, was 950°C. Thus, sewage sludge was mixed with high energy component in order to improve the gasification parameters and obtain better quality syngas. A zero-dimensional, two-zone model was developed with aid of the kinetics mechanism by CREEK Modeling Group to model and predict gasification of low calorific substances enriched with high calorific biomass. Obtained results showed that sewage sludge can be completely gasified at presence of Virginia Mallow leading to production of syngas with its calorific value of approximately 4 MJ/Nm3. Furthermore, calculations performed for the case of gasification of the sewage sludge without biomass enrichment showed much smaller content of hydrogen in syngas.
机译:本文介绍了实验性和数值调查的结果,对干污水污泥的气化富含生物质的钙化污泥,以0/100%,50/50%和100/0%的质量比,在0至100的范围内%在理论分析中。为了有效利用污水污泥。干燥的污泥可以在850℃的温度下进行气化的热处理。然而,由于在气化过程中转化为大量灰分的矿物质的高含量,获得这种温度存在一些困难。污水污泥的不利特征是气化过程的显着障碍是其高达40质量%的灰分含量。如所观察到的,木质纤维素生物量的主要特征之一,如弗吉尼亚州的肺炎,这使得适合热处理,是矿物质含量低于2%。它有助于更​​稳定和高效的气化过程(少量消化灰烬)。此外,由于污水污泥中的灰镇流器,不可能获得足够高的气化温度(观察到的最大值为800℃)。反过来,添加弗吉尼亚州的肺炎锦葵使得可以实现的过程温度为950℃。因此,将污水污泥与高能量成分混合,以改善气化参数并获得更好的质量合成气。通过Creek Modeling组的动力学机制通过Creek Modeling组来制定零维,双区域模型来模拟和预测富含高热量生物量的低热量物质的气化。得到的结果表明,污水污泥可以在弗吉尼亚锦葵的存在下完全气化,导致合成气的产生约4 mJ / nm 3 。此外,对没有生物量富集的污水污泥的气化的情况进行的计算显示了合成气中的氢含量大得多。

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