论文标题
水热液化和碳捕获和存储的整合,用于生产具有阴性二氧化碳排放的晚期液体生物燃料
Integration of hydrothermal liquefaction and carbon capture and storage for the production of advanced liquid biofuels with negative CO2 emissions
论文作者
论文摘要
在本文中评估了通过水热液化(HTL)提供可持续液体生物辐射的技术和经济可行性,同时可以评估负面二氧化碳排放,从而在负面排放技术(NET)的背景下研究了缓解气候变化的过程中的潜力。在HTL过程中,主要由二氧化碳组成的气相是作为侧产品,推动了在现有文献中尚未探索的过程中实施碳捕获和储存的潜力,并在本研究中进行了。为此,该过程分为标准的HTL底座和碳捕获附加组件,林子残留物作为原料。 SELEXOL技术适用于一种新型方案,可以同时将CO2与HTL气体分开,并回收多余的氢以进行生物升级。成本评估表明,碳捕获的额外成本可以通过过量过程热量和欧洲碳津贴市场的收入来补偿。 HTL基本案例的MFSP的影响范围为-7%至3%,在最有利的情况下为-15%,与化石基线相比,GHG排放量降低了102-113%。这些结果表明,从技术,经济和环境角度来看,在未来的情况下,在HTL过程中实施CC是一种有希望的替代方法,在将来的情况下,预计先进的液体生物燃料和网络将在能源系统的脱碳中发挥作用。
The technical and economic feasibility to deliver sustainable liquid biocrude through hydrothermal liquefaction (HTL) while enabling negative carbon dioxide emissions is evaluated in this paper, looking into the potential of the process in the context of negative emission technologies (NETs) for climate change mitigation. In the HTL process, a gas phase consisting mainly of carbon dioxide is obtained as a side product driving a potential for the implementation of carbon capture and storage in the process (BECCS) that has not been explored yet in the existing literature and is undertaken in this study. To this end, the process is divided in a standard HTL base and a carbon capture add-on, having forestry residues as feedstock. The Selexol technology is adapted in a novel scheme to simultaneously separate the CO2 from the HTL gas and recover the excess hydrogen for biocrude upgrading. The cost evaluation indicates that the additional cost of the carbon capture can be compensated by revenues from the excess process heat and the European carbon allowance market. The impact in the MFSP of the HTL base case ranges from -7% to 3%, with -15% in the most favorable scenario, with a GHG emissions reduction potential of 102-113% compared to the fossil baseline. These results show that the implementation of CCS in the HTL process is a promising alternative from technical, economic and environmental perspective in future scenarios in which advanced liquid biofuels and NETs are expected to play a role in the decarbonization of the energy system.