Effective macropore diffusivity of carbon dioxide on binderless pellets of Y-type zeolites

IF 3 4区 工程技术 Q3 CHEMISTRY, PHYSICAL
Hassan Azzan, Killian Gmyrek, David Danaci, Ashwin Kumar Rajagopalan, Camille Petit, Ronny Pini
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引用次数: 0

Abstract

The adsorption kinetics of carbon dioxide (CO2) in three cationic forms of binderless pellets of Y-types zeolites (H-Y, Na-Y, and TMA exchanged Na-Y) are studied using the zero-length column (ZLC) technique. The measurements were carried out at \(288.15\,\textrm{K},298.15\,\textrm{K}\) and \({308.15}\,\textrm{K}\) using different flowrates and an initial CO2 partial pressure of \({0.10} \,\textrm{bar}\)– conditions representative of post-combustion CO2 capture applications. The mass transport within the adsorbent pellets was described using a 1-D Fickian diffusion model accounting for intra- and inter-crystalline mass transport. For the latter, the parallel pore model formulation was used to explicitly account for the adsorbent’s macropore size distribution in estimating the volume-averaged diffusivity of the gas. Experiments carried out using different carrier gases, namely helium and nitrogen, were used (i) to determine that these systems are macropore diffusion limited and (ii) to simplify the parameter estimation to a single parameter - the macropore tortuosity. The latter (\(\tau =1.3-2.5\)) was in good agreement with independent measurements using MIP (\(\tau \approx 1.7\)). The associated diffusion coefficient, \(D^\textrm{e}_\textrm{mac}\), was found to vary due to differences in the materials’ macropore size distributions and overall porosity. Upon combining the parallel pore model formulation with the temperature dependencies for the pore diffusivities derived from molecular theories of gases, we predict \(D^\textrm{e}_\textrm{mac}\propto {T^b}\) with \(b=[0.78-0.88]\) depending on the macropore size distribution. Notably, for the range of temperature tested in this study, \(D^\textrm{e}_\textrm{mac}\) varies approximately linearly with temperature (\(b\approx 1\))– in contrast to the commonly reported correlation of \(b=1.75\), which may be more appropriate for systems where molecular diffusion dominates and Knudsen diffusion is negligible. The binderless pellets of Y-type zeolites studied exhibit generally higher values for the effective macropore diffusivity of CO2 compared to previously reported results on commercial FAU zeolites.

二氧化碳在无粘结剂y型沸石球团上的有效大孔扩散系数。
采用零长柱(ZLC)技术研究了无粘结剂y型沸石球团(H-Y、Na-Y和TMA交换Na-Y)对二氧化碳(CO2)的三种阳离子形式的吸附动力学。测量是在[公式:见文本]和[公式:见文本]下进行的,使用不同的流量和[公式:见文本]的初始CO2分压-代表燃烧后CO2捕获应用的条件。采用考虑晶体内和晶体间质量传递的一维菲克扩散模型描述了吸附剂颗粒内的质量传递。对于后者,在估计气体的体积平均扩散系数时,采用平行孔隙模型公式明确地考虑了吸附剂的大孔隙尺寸分布。使用不同的载气,即氦气和氮气进行实验,(i)确定这些系统是大孔扩散受限的,(ii)将参数估计简化为单一参数-大孔扭曲度。后者([公式:见文本])与使用MIP([公式:见文本])的独立测量结果非常吻合。相关的扩散系数[公式:见文],由于材料的大孔径分布和整体孔隙率的不同而变化。将平行孔隙模型公式与气体分子理论导出的孔隙扩散系数的温度依赖关系结合起来,我们根据大孔隙大小分布预测[公式:见文]与[公式:见文]。值得注意的是,对于本研究中测试的温度范围,[公式:见文]与温度([公式:见文])近似呈线性变化——与通常报道的[公式:见文]的相关性相反,这可能更适合于分子扩散占主导地位而克努森扩散可以忽略不计的系统。与之前报道的商用FAU沸石相比,所研究的y型沸石无粘结剂球团具有更高的CO2有效大孔扩散系数。补充信息:在线版本包含补充资料,可在10.1007/s10450-025-00599-3获得。
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来源期刊
Adsorption
Adsorption 工程技术-工程:化工
CiteScore
8.10
自引率
3.00%
发文量
18
审稿时长
2.4 months
期刊介绍: The journal Adsorption provides authoritative information on adsorption and allied fields to scientists, engineers, and technologists throughout the world. The information takes the form of peer-reviewed articles, R&D notes, topical review papers, tutorial papers, book reviews, meeting announcements, and news. Coverage includes fundamental and practical aspects of adsorption: mathematics, thermodynamics, chemistry, and physics, as well as processes, applications, models engineering, and equipment design. Among the topics are Adsorbents: new materials, new synthesis techniques, characterization of structure and properties, and applications; Equilibria: novel theories or semi-empirical models, experimental data, and new measurement methods; Kinetics: new models, experimental data, and measurement methods. Processes: chemical, biochemical, environmental, and other applications, purification or bulk separation, fixed bed or moving bed systems, simulations, experiments, and design procedures.
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