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Phytocapping: An Alternative Technology for the Sustainable Management of Landfill Sites

机译:植物封顶技术:填埋场可持续管理的替代技术

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Landfill remains the predominant means of waste disposal throughout the globe. Numerous landfills exist in developed and underdeveloped countries, engineered with contrasting degrees of effectiveness. Modern landfill closure in developed countries involves the conventional capping of waste with materials such as compacted clay or geosynthetic clay liners, typically overlain with other soil materials. Conventional capping technologies are now accepted to be increasingly ineffective in reducing percolation into waste. Cost-effective alternative systems are of increasing interest, including the use of plants to control and limit water entry into waste, otherwise known as "Phytocapping". Phytocapping reduces percolation through three main mechanisms: (a) canopy interception of rainfall, (b) storage of moisture in the soil layers, and (c) evapotranspiration (i.e., hydraulic lift) of stored water. Phytocapping has been shown to be at least as effective as clay capping in reducing percolation through landfill cover materials, provided site specific conditions are factored into design, and providing many additional benefits, including increased cap stability, reduced erosion of capping materials, reduction of wind-blown dust, enhanced biological diversity, increased opportunity to establish commercial plants, carbon sequestration, and enhanced methane oxidation from microbial communities. Phytocapping has been suggested as having potential in phytoremediation of landfill leachate. The most common phytocapping approach to date is the construction of vegetation assemblages for the purposes of creating natural vegetation nodes. Phytocapping technology can be enhanced by appropriate selection of soil amendments such as biosolids, biochar, compost, or other materials. Appropriate selection of plant species and soil amendment products can enhance methane oxidation in capping soils. There is considerable potential for the use of high biomass energy plants but further work is needed in choosing appropriate plant species that will serve both purposes of site water balance as well as commercial (e.g., timber, bioenergy) and biodiversity needs of the community.
机译:垃圾掩埋仍然是全球废物处理的主要手段。在发达国家和不发达国家中,存在大量的垃圾填埋场,其工程设计的效果各不相同。在发达国家,现代垃圾填埋场的封闭涉及对废物的常规封盖,例如压实粘土或土工合成粘土衬里,通常覆盖其他土壤材料。现在,公认的常规封盖技术在减少渗入废物方面越来越无效。具有成本效益的替代系统越来越引起人们的关注,包括使用植物来控制和限制水进入废物中,也就是所谓的“封顶技术”。植物封盖作用通过三个主要机制来减少渗滤作用:(a)遮盖降雨,(b)将水分存储在土壤层中,以及(c)蒸发蒸腾量(即水力提升)。如果在设计中考虑了特定地点的条件,那么在减少填埋场覆盖材料的渗滤方面,植物封盖技术至少与粘土封盖一样有效,并提供许多其他好处,包括提高封盖稳定性,减少封盖材料的侵蚀,减少风-扬尘,增加生物多样性,增加建立商业植物的机会,固碳和增加微生物群落的甲烷氧化。已经有人提出将植物封盖技术用于垃圾渗滤液的植物修复。迄今为止,最常见的植物诱捕方法是构造植被组合,以创建天然植被节点。可以通过适当选择土壤改良剂(例如生物固体,生物炭,堆肥或其他材料)来增强植物封盖技术。适当选择植物物种和土壤改良剂产品可以增强覆盖土壤中的甲烷氧化。高生物质能植物的使用潜力巨大,但在选择合适的植物物种时将需要做进一步的工作,这些植物既可满足场地用水平衡的需求,又可满足社区的商业(例如木材,生物能源)和生物多样性需求。

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