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富氧燃烧使碳捕集更高效。

Oxyfuel Combustion Makes Carbon Capture More Efficient.

作者信息

Talei Saeed, Fozer Daniel, Varbanov Petar Sabev, Szanyi Agnes, Mizsey Peter

机构信息

Institute of Chemistry, University of Miskolc, H-3515 Miskolc, Hungary.

Department of Environmental and Resource Engineering, Technical University of Denmark, 2800 Kgs. Lyngby, Denmark.

出版信息

ACS Omega. 2024 Jan 10;9(3):3250-3261. doi: 10.1021/acsomega.3c05034. eCollection 2024 Jan 23.

Abstract

Fossil energy carriers cannot be totally replaced, especially if nuclear power stations are stopped and renewable energy is not available. To fulfill emission regulations, however, points such as emission sources should be addressed. Besides desulfurization, carbon capture and utilization have become increasingly important engineering activities. Oxyfuel technologies offer new options to reduce greenhouse gas emissions; however, the use of clean oxygen instead of air can be dangerous in the case of certain existing technologies. To replace the inert effect of nitrogen, carbon dioxide is mixed with oxygen gas in the case of such air combustion processes. In this work, the features of carbon capture in five different flue gases of air combustion and such oxyfuel combustion where additional carbon dioxide is mixed with clean oxygen are studied and compared. The five different flue gases originate from the gas-fired power plant, coal-fired power plant, coal-fired combined heat and power plant, the aluminum production industry, and the cement manufacturing industry. Monoethanolamine, which is an industrially preferred solvent for carbon dioxide capture from gas streams at low pressures, is selected as an absorbent, and the same amount of carbon dioxide is captured; that is, always that amount of carbon dioxide is captured, which is the result of the fossil combustion process. ASPEN Plus is used for mathematical modeling. The results show that the oxyfuel combustion cases need significantly less energy, especially at high carbon dioxide removal rates, e.g., higher than 90%, than that of the air combustion cases. The savings can even be as high as 84%. Moreover, 100% carbon capture was also be completed. This finding can be due to the fact that in the oxyfuel combustion cases, the carbon dioxide concentration is much higher than that of the air combustion cases because of the inert carbon dioxide and that higher carbon dioxide concentration results in a higher driving force for the mass transfer. The oxyfuel combustion processes also show another advantage over the air combustion processes since no nitrogen oxides are produced in the combustion process.

摘要

化石能源载体无法被完全替代,特别是在核电站停运且可再生能源无法获取的情况下。然而,为了满足排放法规,诸如排放源等问题需要得到解决。除了脱硫,碳捕获与利用已成为日益重要的工程活动。富氧燃烧技术为减少温室气体排放提供了新选择;然而,在某些现有技术中,使用纯净氧气而非空气可能存在危险。在此类空气燃烧过程中,为了替代氮气的惰性作用,会将二氧化碳与氧气混合。在这项工作中,研究并比较了空气燃烧的五种不同烟气以及在纯净氧气中混入额外二氧化碳的富氧燃烧过程中的碳捕获特性。这五种不同的烟气分别来自燃气发电厂、燃煤发电厂、燃煤热电联产厂、铝生产行业和水泥制造业。单乙醇胺是工业上从低压气流中捕获二氧化碳的首选溶剂,被选作吸收剂,并且捕获相同量的二氧化碳;也就是说,始终捕获化石燃烧过程产生的那一定量的二氧化碳。使用ASPEN Plus进行数学建模。结果表明,富氧燃烧情况所需能量显著更少,特别是在二氧化碳去除率较高时,例如高于90%,相比空气燃烧情况。节省甚至可达84%。此外,还实现了100%的碳捕获。这一发现可能是由于在富氧燃烧情况下,由于二氧化碳的惰性,二氧化碳浓度远高于空气燃烧情况,且更高的二氧化碳浓度导致传质驱动力更高。富氧燃烧过程相较于空气燃烧过程还展现出另一个优势,即燃烧过程中不产生氮氧化物。

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