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LIFE CYCLE ASSESSMENT OF ACTIVATED CARBON FROM WOODY BIOMASS

机译:木质生物质活性炭的生命周期评估

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Activated carbon (AC) developed and marketed for water and gas purification is traditionally made from hard coals (fossil-based materials). However, increasing awareness of environmental impacts caused by fossil fuel consumption and fossil-based products has provided a market opportunity for renewable and low-impact biobased products as alternatives including AC. The huge volumes of woody biomass generated from forest management activities could be used as feedstocks for these new bioproducts. These new bioproducts require evaluation to determine if they are low impact. To aid in quantifying environmental impacts of a new bioproduct (such as AC), this study developed the cradle-to-gate life cycle inventory (LCI) data for the carbon activation of biochar in a rotary calciner by collecting operational and direct emission data while conforming to the internationally accepted life cycle assessment method. The LCI datawere then modeled to develop the life cycle impact assessment profile of biochar-based carbon activation and compared with commercial coal-based carbon activation. The results showed about 35% less cradle-to-product gate cumulative energy demand for the biochar AC system compared with the coal AC system. Consequentially, the greenhouse gas emissions for biochar AC production were less than half that of coal AC production (8.60 kg CO2 eq vs 18.28 kg CO2 eq per kg of AC produced). This was because of both lower energy consumption and the biogenic carbon benefit from using woody biomass for both feedstock and processing. To ensure substitution of the two ACs, the physical properties for the AC from biochar and coal were compared for their Brunauer-Emmett-Teller surface area and iodine number, which showed that both indicators were superior for biochar AC compared with coal AC. Therefore, biochar AC results from this study suggest a potential high-value market for woody biomass derived from forest restoration and wildfire suppression activities.
机译:用于水和气体净化的活性炭(AC)传统上由硬煤(化石材料)制成。然而,由于化石燃料消耗和化石产品造成的环境影响的认识,为可再生和低影响的生物产品作为包括AC等替代方案提供了市场机会。从森林管理活动产生的巨大的木质生物量可以用作这些新生物制造的原料。这些新的生物制作需要评估,以确定它们是否有低影响。为了帮助量化新的生物程度(如AC)的环境影响,本研究通过收集运营和直接排放数据,开发了摇篮到栅极寿命循环库存(LCI)在旋转煅烧炉中的BioChar碳激活符合国际公认的生命周期评估方法。然后,LCI DataWere建模以制定生物炭碳活化的生命周期影响评估概况,并与商业煤基碳激活相比。与煤交流系统相比,对BioChar AC系统的摇篮到产品栅极累计能量需求较高了35%的35%。因此,Biochar AC生产的温室气体排放量小于煤交流产生的一半(8.60kg CO2 EQ与每千克AC产生的18.28kg CO2 eq)。这是因为较低的能量消耗和生物碳,从使用木质生物质进行原料和加工。为了确保替代两种ACS,比较了Biochar和煤的AC的物理性质,并与他们的Brunauer-Emmett-extrese地区和碘数量进行了比较,这表明两种指示器与煤交流相比,Biochar AC都优越。因此,本研究的Biochar AC结果表明了源自森林恢复和野火抑制活动的木本生物量的潜在高价值市场。

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