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Batch and Continuous Adsorptive Desulfurization of Model Diesel Fuels Using Graphene Nanoplatelets

机译:利用石墨烯纳米孔的批量和连续吸附脱硫模型柴油燃料

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An experimental investigation on adsorptive desulfurization for model diesel fuels (MDFs) is described using graphene nanoplatelets (GNPs) as an adsorbent. Batch experiments for a single component as well as a multicomponent system were conducted. The single-component adsorption isothermal experimental results for the batch process were well represented by the Freundlich isotherm (thiophene (T), 2-methylthiophene (2-MT)) and the Langmuir isotherm (dibenzothiophene (DBT)) models. The adsorption process kinetics fits with the pseudosecond-order model for T, 2-MT, and DBT on GNPs. Both surface and pore diffusions controlled the sorption process. A process design of a single-stage batch-adsorber for the adsorption of T, 2-MT, and DBT onto GNPs was also studied using the calculated adsorption isotherm parameters. In addition, a fixed-bed adsorber was used for studying the continuous system at ambient conditions for multicomponent MDFs. The main objective of continuous studies was to investigate the process variables' effect on the desulfurization. The effect of flow rate, bed height, and initial sulfur concentration on the adsorptive capacity of the adsorbent for T, 2-MT, and DBT were evaluated. The breakthrough time and adsorptive capacity increased with increasing the bed height and decreasing the flow rate and initial sulfur concentration. For continuous studies, more than 90% of the bed was saturated for all thio-compounds within 100 min for the feed flow rate of 3 mL/min and adsorbent weight of 3 g. The Adam-Bohart model was used to check the performance of the adsorption breakthrough curves. The Adam-Bohart model rate constant and adsorption capacity were found to be 0.006 (mg/kg)(-1) h(-1) and 117.21 mg S/kg, respectively.
机译:使用石墨烯纳米片(GNPS)作为吸附剂描述了模型柴油燃料(MDF)的吸附脱硫的实验研究。进行了单个组分以及多组分系统的批量实验。间歇法的单组分吸附等温实验结果由Freundlich等温线(噻吩(T),2-甲基噻吩(2-MT))和Langmuir等温线(Digent噻吩(DBT))模型提供良好。吸附过程动力学适用于GNPS上的T,2-MT和DBT的伪级顺序模型。表面和孔隙扩散都控制了吸附过程。还使用计算的吸附等温度参数研究了用于吸附T,2-MT和DBT的单级批量吸附剂的过程设计。此外,使用固定床吸附器用于在多组分MDF的环境条件下研究连续系统。持续研究的主要目标是调查过程变量对脱硫的影响。评价流速,床高度和初始硫浓度对T,2-MT和DBT吸附剂的吸附容量的影响。随着床的高度增加并降低流速和初始硫浓度,突破时间和吸附容量增加。对于连续的研究,在100分钟内为所有硫代化合物饱和90%的床,供进给流速为3ml / min,吸附重量为3g。 ADAM-BOHART模型用于检查吸附突破曲线的性能。发现ADAM-BOHART模型速率常数和吸附能力分别为0.006(mg / kg)( - 1)h(-1)和117.21 mg s / kg。

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