{"title":"Carbon Dioxide Capture under Low-Pressure Low-Temperature Conditions Using Shaped Recycled Fly Ash Particles","authors":"Sherif Fakher, A. Khlaifat, Abdullah Hassanien","doi":"10.3390/gases4020007","DOIUrl":null,"url":null,"abstract":"Carbon-capture technologies are extremely abundant, yet they have not been applied extensively worldwide due to their high cost and technological complexities. This research studies the ability of polymerized fly ash to capture carbon dioxide (CO2) under low-pressure and low-temperature conditions via physical adsorption. The research also studies the ability to desorb CO2 due to the high demand for CO2 in different industries. The adsorption–desorption hysteresis was measured using infrared-sensor detection apparatus. The impact of the CO2 injection rate for adsorption, helium injection rate for desorption, temperature, and fly ash contact surface area on the adsorption–desorption hysteresis was investigated. The results showed that change in the CO2 injection rate had little impact on the variation in the adsorption capacity; for all CO2 rate experiments, the adsorption reached more than 90% of the total available adsorption sites. Increasing the temperature caused the polymerized fly ash to expand, thus increasing the available adsorption sites, thus increasing the overall adsorption volume. At low helium rates, desorption was extremely lengthy which resulted in a delayed hysteresis response. This is not favorable since it has a negative impact on the adsorption–desorption cyclic rate. Based on the results, the polymerized fly ash proved to have a high CO2 capture capability and thus can be applied for carbon-capture applications.","PeriodicalId":513760,"journal":{"name":"Gases","volume":"112 5","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-05-23","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Gases","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.3390/gases4020007","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Carbon-capture technologies are extremely abundant, yet they have not been applied extensively worldwide due to their high cost and technological complexities. This research studies the ability of polymerized fly ash to capture carbon dioxide (CO2) under low-pressure and low-temperature conditions via physical adsorption. The research also studies the ability to desorb CO2 due to the high demand for CO2 in different industries. The adsorption–desorption hysteresis was measured using infrared-sensor detection apparatus. The impact of the CO2 injection rate for adsorption, helium injection rate for desorption, temperature, and fly ash contact surface area on the adsorption–desorption hysteresis was investigated. The results showed that change in the CO2 injection rate had little impact on the variation in the adsorption capacity; for all CO2 rate experiments, the adsorption reached more than 90% of the total available adsorption sites. Increasing the temperature caused the polymerized fly ash to expand, thus increasing the available adsorption sites, thus increasing the overall adsorption volume. At low helium rates, desorption was extremely lengthy which resulted in a delayed hysteresis response. This is not favorable since it has a negative impact on the adsorption–desorption cyclic rate. Based on the results, the polymerized fly ash proved to have a high CO2 capture capability and thus can be applied for carbon-capture applications.
碳捕集技术极为丰富,但由于其成本高、技术复杂,尚未在全球广泛应用。本研究探讨了聚合粉煤灰在低压低温条件下通过物理吸附捕获二氧化碳(CO2)的能力。由于不同行业对 CO2 的需求量很大,本研究还对 CO2 的解吸能力进行了研究。使用红外传感器检测仪器测量了吸附-解吸滞后现象。研究了吸附时的二氧化碳注入率、解吸时的氦气注入率、温度和粉煤灰接触表面积对吸附-解吸滞后的影响。结果表明,二氧化碳注入率的变化对吸附容量的变化影响不大;在所有二氧化碳注入率实验中,吸附量都达到了总可用吸附位点的 90% 以上。温度升高会导致聚合粉煤灰膨胀,从而增加可用吸附位点,进而增加总吸附量。在低氦气速率下,解吸时间极长,导致滞后反应。这对吸附-解吸循环速率不利,因为它会产生负面影响。根据研究结果,聚合粉煤灰被证明具有很高的二氧化碳捕获能力,因此可用于碳捕获应用。