Mass transport, kinetic model, and application of CO2 adsorption on zeolite 5A granules

IF 1.5 4区 环境科学与生态学 Q4 ENVIRONMENTAL SCIENCES
Supawon Sangsuradet, Patcharin Worathanakul
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Abstract

Environmental damage ranges from soil degradation, air pollution, and wastewater from human-induced activity. In this study, to reduce CO2 emission, zeolite granules were prepared manually. In addition, the mass transfer and kinetic adsorption were analyzed to understand the mechanism of CO2 adsorption using mathematical models. We studied the effects of amount of binder, temperature, granule size, and flow rate of CO2 on efficient CO2 adsorption on zeolite 5A granules of different sizes (3–4 and 6–7 mm). The kinetics of CO2 adsorption and mass transfer of zeolite 5A granules were evaluated for the rate-limiting step. The results showed that decreasing the temperature and the amount of binder increased the CO2 adsorption capacity. We observed the highest CO2 adsorption capacity of 2.84 mmol g−1 at 298 K with 4 wt% of the binder at a flow rate of 2 L h−1. The pseudo-first-order sorption behavior was the best model with R2 > 0.9832, whereas the root mean square error model showed an R2 < 0.2136. The Biot number and film diffusion model were used to investigate the importance of external mass transfer on intraparticle diffusion. It was confirmed that the adsorption on sustainable zeolite 5A granules was controlled by film diffusion.

Abstract Image

沸石5A颗粒吸附CO2的传质、动力学模型及应用
环境破坏包括土壤退化、空气污染和人类活动产生的废水。在本研究中,为了减少CO2的排放,人工制备沸石颗粒。此外,利用数学模型分析了CO2吸附的传质和动力学吸附机理。研究了黏合剂用量、温度、粒径、CO2流速对不同粒径(3-4 mm和6-7 mm) 5A沸石对CO2的高效吸附的影响。对5A沸石颗粒的CO2吸附和传质动力学进行了评价。结果表明,降低温度和粘结剂用量可提高CO2吸附能力。在298 K、4 wt%的黏合剂、2 L h−1的流速下,我们观察到最高的CO2吸附量为2.84 mmol g−1。拟一阶吸附行为为最佳模型,R2 >0.9832,均方根误差模型显示R2 <0.2136. 采用Biot数和膜扩散模型研究了外传质对颗粒内扩散的影响。结果表明,在可持续沸石5A颗粒上的吸附受膜扩散控制。
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来源期刊
Clean-soil Air Water
Clean-soil Air Water 环境科学-海洋与淡水生物学
CiteScore
2.80
自引率
5.90%
发文量
88
审稿时长
3.6 months
期刊介绍: CLEAN covers all aspects of Sustainability and Environmental Safety. The journal focuses on organ/human--environment interactions giving interdisciplinary insights on a broad range of topics including air pollution, waste management, the water cycle, and environmental conservation. With a 2019 Journal Impact Factor of 1.603 (Journal Citation Reports (Clarivate Analytics, 2020), the journal publishes an attractive mixture of peer-reviewed scientific reviews, research papers, and short communications. Papers dealing with environmental sustainability issues from such fields as agriculture, biological sciences, energy, food sciences, geography, geology, meteorology, nutrition, soil and water sciences, etc., are welcome.
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