Biomass Combustion Fly Ash-Derived Nanoporous Zeolites for Post-Combustion Carbon Capture

B. Petrovic, M. Gorbounov, A. Lahiri, S. Soltani
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引用次数: 5

Abstract

Achieving negative CO2 emissions via the combustion of sustainable biomass - known as bioenergy with carbon capture and storage - is inherently linked to the co-production of a significant amount of potentially hazardous waste combustion fly ash. Valorisation of this solid waste stream presents obvious economic, social, and environmental incentives within the context of waste utilisation and environmental protection. However, the origin of the biomass (the regional plantation) used during the combustion, dictates the physicochemical properties of this solid residue, making it suitable for specific applications while rendering it less favourable for others. In this study, a nanoporous zeolite as a CO2 adsorbent has been synthesised from industrial-grade biomass combustion fly ash generated in one of the largest biomass combustion power plants in the UK. The method of nanoporous zeolite synthesis follows a fusion-assisted hydrothermal procedure and the produced nanoporous zeolite has been characterised by X-ray diffraction. The CO2 adsorption investigations were conducted via thermogravimetric analysis to estimate the uptake capacity of the prepared adsorbents. TGA studies suggest that the nanoporous adsorbent, run under 100 mol% CO2 at atmospheric pressure, has an equilibrium capacity of over 0.8 mmolCO2/g at 50°C. The characterisation results are in good agreement with our CO2 adsorption data, demonstrating the nanoporous structure of our synthesised waste-derived zeolites.
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生物质燃烧粉煤灰衍生的纳米多孔沸石用于燃烧后碳捕获
通过燃烧可持续生物质(被称为具有碳捕获和储存的生物能源)实现负二氧化碳排放,与联合生产大量潜在危险的废物燃烧飞灰有着内在的联系。在废物利用和环境保护的背景下,这种固体废物流的增值提供了明显的经济、社会和环境激励。然而,燃烧过程中使用的生物质(区域种植)的来源决定了这种固体残留物的物理化学性质,使其适合特定应用,而使其对其他应用不利。在这项研究中,一种纳米多孔沸石作为二氧化碳吸附剂已经由英国最大的生物质燃烧发电厂之一产生的工业级生物质燃烧飞灰合成。纳米多孔沸石的合成方法采用熔融辅助水热法,制备的纳米多孔沸石经x射线衍射表征。通过热重分析对制备的吸附剂的CO2吸附能力进行了研究。TGA研究表明,纳米多孔吸附剂在100 mol% CO2大气压下运行,在50°C时具有超过0.8 mmol /g的平衡容量。表征结果与我们的CO2吸附数据很好地一致,证明了我们合成的废物衍生沸石的纳米孔结构。
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