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Case study on sampling, processing and characterization of landfilled municipal solid waste in the view of landfill mining

机译:垃圾填埋开采视角下的垃圾填埋场生活垃圾取样,处理与表征的案例研究

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Landfilling has been the major method for municipal solid waste (MSW) disposal during recent decades. Recently utilization of deposited materials, commonly referred to as landfill mining, has been increasingly considered due to increasing raw material costs and environmental reasons. When mining municipal solid waste (MSW) landfills, finding suitable treatment and utilization routes for different types of materials is essential because of the economic aspects and to minimize the re-landfilled fraction of the waste. This paper describes a case study to sample, characterize and process wastes of a potential landfill mining site. The study combines manual sorting with full-scale mechanical treatment to better assess the treatability of the landfilled wastes. The approach also aimed at complying with the challenges of the heterogenous nature of the landfilled MSW. An approximately 30 m high and 10-year-old Finnish landfill was sampled in connection with the drilling of three gas collections wells, producing samples from two layers of waste of slightly different ages (ca. 5-10 years). Manual sieving and sorting into seven waste fractions as well as full-scale mechanical processing was performed. Further characterization included the fuel properties of the calorific fractions and the leaching properties of the fine materials. Manual sorting of the materials yielded 40-45% (w/w) of the possible fuel fraction in the landfilled waste with a net calorific value of approximately 20 MJ/kg dry matter. The metal fractions recovered in the manual sorting amounted to 3-4% (w/w). The landfilled waste was also processable by full-scale mechanical processes, including shredding, magnetic separation, screens and a wind sieve, despite the moisture and impurities in the landfilled waste. Results from the mechanical process showed that approximately 30% (w/w) of the material could be recovered as solid recovered fuel with similar calorific values to the fuel fraction from the manual sorting. Approximately 1% (w/w) could be recovered as magnetic metals in the mechanical process. The yields of fuel and metal fractions are site-specific but could likely be improved by optimizing the mechanical process for landfill mining purposes, as is indicated by the results from the manual sorting of the materials. The amount of fine materials (<20 mm in the manual sorting and <30 mm in the mechanical process) was found to be ca. 50% (w/w) which supports previous reports of the amount of the fines. The fine materials require attention to minimize the waste remaining from landfill mining. The Fe and Al contents of the fine fraction, at approximately 5% (w/w) both in the manually sorted and mechanically treated waste, are interesting for recovery purposes. The findings from this study highlight the importance of proper exploration stage in a landfill mining project in order to plan the best applicable full-scale processes for material recovery.
机译:近几十年来,填埋一直是处理城市固体废物(MSW)的主要方法。由于原材料成本增加和环境原因,近来越来越多地考虑使用沉积材料,通常称为垃圾填埋场开采。在开采城市固体废物(MSW)垃圾填埋场时,由于经济方面的原因,并且要最大程度地减少垃圾的重新填埋量,找到适合不同类型材料的适当处理和利用途径至关重要。本文介绍了一个案例研究,以对潜在的垃圾掩埋采矿场的废物进行采样,表征和处理。该研究将人工分拣与全面机械处理相结合,以更好地评估垃圾填埋场的可处理性。该方法还旨在应对垃圾填埋场垃圾的异质性挑战。与三个气体收集井的钻探有关,对一个约30 m高,有十年历史的芬兰垃圾填埋场进行了采样,从年龄略有不同(约5-10年)的两层废物中产生了样本。进行了手动筛分和分类为七个废物部分以及全面的机械处理。进一步的表征包括发热量的燃料性质和细料的浸出性质。手工分拣物料可在填埋垃圾中产生40-45%(w / w)的可能燃料分数,其净热值约为20 MJ / kg干物质。在手动分选中回收的金属分数为3-4%(w / w)。尽管垃圾填埋场中有水分和杂质,但垃圾填埋场的垃圾也可以通过全面的机械工艺进行处理,包括切碎,磁选,筛子和风筛。机械过程的结果表明,大约30%(w / w)的材料可以固体回收的燃料形式回收,其发热量与手动分拣的燃料分数相似。在机械过程中,大约1%(w / w)可以作为磁性金属被回收。燃料和金属馏分的产量是针对特定地点的,但可以通过优化用于垃圾掩埋开采目的的机械工艺来提高,如材料的手动分拣结果所示。发现细料的量(手动分拣中小于20毫米,机械过程中小于30毫米)大约为。 50%(w / w)支持以前的罚款金额报告。精细材料需要引起注意,以尽量减少垃圾填埋场开采所产生的废物。手工回收和机械处理的废物中的细小部分的铁和铝含量均约为5%(w / w),对于回收目的是令人感兴趣的。这项研究的结果强调了在垃圾填埋场采矿项目中适当进行勘探的重要性,以便为材料回收计划最佳适用的全面过程。

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