Improving landfill liner performance with bentonite-slag blend permeated with ammonia for a Municipal solid waste landfill

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Date

2024

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Academic Press

Abstract

Leachate emanating from landfills contains ammonia which may cause serious health effects on living things. An effectively designed clay barrier should not allow the contaminant to infiltrate the soil and groundwater systems. The utilization of certain industrial by-products in engineered landfill barriers, not only reduces the need for conventional liner materials but also helps in sustainable waste management. This study investigated the hydraulic conductivity, unconfined compressive strength, compaction, and adsorption characteristics of lithomargic clay blended with an optimum percentage of bentonite (10%) and granulated blast furnace slag (15%) permeated with ammonia. The results revealed that increasing the content of granulated blast furnace slag decreased the maximum dry density while increasing the optimum moisture content. In comparison to lithomargic clay, the hydraulic conductivity of the amended soil liner permeated with ammonia decreased from a value of 3 × 10−8 m/s to 5 × 10−10 m/s. The unconfined compressive strength of the amended soil specimens showed an increasing trend with curing times (i.e., 0, 14, 28, and 56 days). The batch adsorption results revealed that Freundlich and Langmuir's isotherm fits the equilibrium adsorption data and the adsorption of ammonia on clay liner follows non-linear behaviour. Overall, the experimental results implied that lithomargic clay blended with 10% bentonite and 15% granulated blast furnace slag can be used as an impermeable soil reactive barrier in engineered landfills. © 2024 Elsevier Ltd

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Keywords

Adsorption, Bentonite, Blast furnaces, Compressive strength, Groundwater, Groundwater pollution, Hydraulic conductivity, Leachate treatment, Municipal solid waste, Slags, Amended soil, Granulated blast furnace slag, Granulated blast-furnace slags, Landfill liner, Leachates, Lithomargic clays, Municipal solid wastes landfill, Performance, Reactive barriers, Unconfined compressive strength, Ammonia, aluminum oxide, aluminum silicate, ammonia, bentonite, calcium oxide, chloride, ferric oxide, magnesium oxide, manganese oxide, silicon dioxide, clay, compressive strength, landfill liner, municipal solid waste, performance assessment, reactive barrier, slag, soil amendment, waste management, adsorption, Article, chemical composition, chemical reaction, comparative study, energy dispersive X ray spectroscopy, furnace, granulated blast furnace slag, hydraulic conductivity, isotherm, landfill leachate, particle size, porosity, scanning electron microscopy, soil compaction, soil structure, surface property, ultraviolet spectrophotometry, X ray diffraction, chemistry, procedures, soil, solid waste, waste disposal, waste disposal facility, water pollutant, Clay, Refuse Disposal, Soil, Solid Waste, Waste Disposal Facilities, Waste Management, Water Pollutants, Chemical

Citation

Journal of Environmental Management, 2024, 367, , pp. -

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