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Valorizing municipal solid waste: Waste to energy and activated carbons for water treatment via pyrolysis

机译:对城市固体废物进行估价:将废物转化为能源和活性炭,用于通过热解进行水处理

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Globally, as societies urbanize and demand for energy increases, the need to manage mounting quantities of municipal solid waste (MSW), produce renewable energy, and insure dean water supplies becomes more pressing each year. These issues could be addressed by integrating pyrolysis of MSW to recover liquid and gaseous biofuels and a solid biochar, with CO2 activation of the latter to produce activated biochars for water treatment. This potential conversion pathway is experimentally demonstrated by pyrolyzing a model MSW stream at 408 degrees C, the peak mass loss rate pyrolysis temperature and compared to pyrolysis at 900 degrees C. As pyrolysis temperature increases, we see conversion of plastic intermediaries into paraffins and polycyclic aromatic compounds, though the desirable gas components (methane, hydrogen, carbon monoxide) of the pyrolysis gas increase substantially. The CO2 activated biochars (activated at 600 degrees C and 900 degrees C) show surface areas over 300 m(2)/g, with the lower pyrolysis temperature and higher activation temperature yielding the highest areas. Adsorption experiments were performed with methylene blue to determine the ability of the activated MSWbiochar to remove organic pollutants from water. Adsorption is well described by the Langmuir isotherm, with equilibrium adsorption capacities upwards of 250 mg(dy)e/g for all activated biochars.
机译:在全球范围内,随着社会城市化和能源需求的增长,管理市政固体废物(MSW)数量增加,生产可再生能源以及确保院长供水的需求每年都变得越来越紧迫。这些问题可以通过将城市固体废弃物的热解回收液态和气态生物燃料和固体生物炭,再将后者的CO2活化以生产用于水处理的活化生物炭来解决。通过在408摄氏度(峰值质量损失率热解温度)下热解模型MSW流并将其与900摄氏度下的热解进行比较,实验证明了这种潜在的转化途径。随着热解温度的升高,我们看到塑料中间体转化为链烷烃和多环芳烃尽管热解气体中所需的气体成分(甲烷,氢,一氧化碳)显着增加,但这些化合物仍会增加。 CO2活化的生物炭(在600摄氏度和900摄氏度下活化)显示表面积超过300 m(2)/ g,较低的热解温度和较高的活化温度产生最高的面积。用亚甲基蓝进行吸附实验,以确定活化的MSWbiochar去除水中有机污染物的能力。 Langmuir等温线很好地描述了吸附,对于所有活化的生物炭,平衡吸附容量均高达250 mg(dy)e / g。

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