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Long term analysis of the biomass content in the feed of a waste-to-energy plant with oxygen-enriched combustion air

机译:长期分析含氧燃烧空气的废物转化为能源的工厂进料中的生物量含量

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Thermal utilization of municipal solid waste and commercial wastes has become of increasing importance in European waste management. As waste materials are generally composed of fossil and biogenic materials, a part of the energy generated can be considered as renewable and is thus subsidized in some European countries. Analogously, CO_2 emissions of waste incinerators are only partly accounted for in greenhouse gas inventories. A novel approach for determining these fractions is the so-called balance method. In the present study, the implementation of the balance method on a waste-to-energy plant using oxygen-enriched combustion air was investigated. The findings of the 4-year application indicate on the one hand the general applicability and robustness of the method, and on the other hand the importance of reliable monitoring data. In particular, measured volume flows of the flue gas and the oxygen-enriched combustion air as well as corresponding O_2 and CO_2 contents should regularly be validated. The fraction of renewable (biogenic) energy generated throughout the investigated period amounted to between 27 and 66% for weekly averages, thereby denoting the variation in waste composition over time. The average emission factor of the plant was approximately 45 g CO_2 MJ~(-1) energy input or 450 g CO_2 kg~(-1) waste incinerated. The maximum error of the final result was about 16% (relative error), which was well above the error (<8%) of the balance method for plants with conventional oxygen supply.
机译:在欧洲废物管理中,城市固体废物和商业废物的热利用已变得越来越重要。由于废料通常由化石和生物材料组成,因此所产生的一部分能量可以被视为可再生的,因此在一些欧洲国家得到了补贴。类似地,废物焚化炉的CO_2排放仅部分计入温室气体清单。确定这些分数的一种新颖方法是所谓的平衡法。在本研究中,研究了平衡方法在使用富氧燃烧空气的垃圾发电厂中的实施方法。四年申请的结果一方面表明了该方法的普遍适用性和稳健性,另一方面表明了可靠监测数据的重要性。特别是,应定期验证烟气和富氧燃烧空气的测量体积流量以及相应的O_2和CO_2含量。在整个调查期间产生的可再生(生物)能源的比例为每周平均值的27%至66%,从而表示了废物组成随时间的变化。该工厂的平均排放因子约为45 g CO_2 MJ〜(-1)能量输入或450 g CO_2 kg〜(-1)焚烧废物。最终结果的最大误差约为16%(相对误差),远高于采用传统供氧设备的平衡法的误差(<8%)。

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