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通过响应面法优化化学改性碳纳米纤维涂层整体柱用于CO捕集的过程。

Optimization the Process of Chemically Modified Carbon Nanofiber Coated Monolith via Response Surface Methodology for CO Capture.

作者信息

Malekbala Mohamad Rasool, Soltani Soroush, Abdul Rashid Suraya, Abdullah Luqman Chuah, Rashid Umer, Nehdi Imededdine Arbi, Choong Thomas Shean Yaw, Teo Siow Hwa

机构信息

Department of Chemical and Environmental Engineering, Universiti Putra Malaysia, Selangor 43400, Malaysia.

Materials Processing and Technology Laboratory, Institute of Advanced Technology, Universiti Putra Malaysia, Serdang 43400, Selangor, Malaysia.

出版信息

Materials (Basel). 2020 Apr 10;13(7):1775. doi: 10.3390/ma13071775.

Abstract

In the present study, a sequence of experiments was performed to assess the influence of the key process parameters on the formation of a carbon nanofiber-coated monolith (CNFCM), using a four-level factorial design in response surface methodology (RSM). The effect of reaction temperature, hydrocarbon flow rate, catalyst and catalyst promoter were examined using RSM to enhance the formation yield of CNFs on a monolith substrate. To calculate carbon yield, a quadratic polynomial model was modified through multiple regression analysis and the best possible reaction conditions were found as follows: a reaction temperature of 800 °C, furfuryl alcohol flow of 0.08525 mL/min, ferrocene catalyst concentration of 2.21 g. According to the characterization study, the synthesized CNFs showed a high graphitization which were uniformly distributed on a monolith substrate. Besides this, the feasibility of carbon dioxide (CO) adsorption from the gaseous mixture (N/CO) under a range of experimental conditions was investigated at monolithic column. To get the most out of the CO capture, an as-prepared sample was post-modified using ammonia. Furthermore, a deactivation model (DM) was introduced for the purpose of studying the breakthrough curves. The CO adsorption onto CNFCM was experimentally examined under following operating conditions: a temperature of 30-50 °C, pressure of 1-2 bar, flow rate of 50-90 mL/min, and CO feed amount of 10-40 vol.%. A lower adsorption capacity and shorter breakthrough time were detected by escalating the temperature. On the other hand, the capacity for CO adsorption increased by raising the CO feed amount, feed flow rate, and operating pressure. The comparative evaluation of CO uptake over unmodified and modified CNFCM adsorbents confirmed that the introduced modification procedure caused a substantial improvement in CO adsorption.

摘要

在本研究中,进行了一系列实验,以评估关键工艺参数对碳纳米纤维涂层整体式载体(CNFCM)形成的影响,采用响应面法(RSM)中的四级析因设计。使用RSM研究了反应温度、烃流速、催化剂和催化剂促进剂对在整体式载体上形成碳纳米纤维的产率的影响。为了计算碳产率,通过多元回归分析修改了二次多项式模型,并找到了最佳反应条件如下:反应温度800℃,糠醇流速0.08525 mL/min,二茂铁催化剂浓度2.21 g。根据表征研究,合成的碳纳米纤维显示出高石墨化程度,且均匀分布在整体式载体上。除此之外,在整体式柱上研究了在一系列实验条件下从气态混合物(N₂/CO₂)中吸附二氧化碳(CO₂)的可行性。为了充分实现CO₂捕获,对制备好的样品用氨进行后改性。此外,引入了失活模型(DM)来研究穿透曲线。在以下操作条件下对CNFCM上的CO₂吸附进行了实验研究:温度30 - 50℃,压力1 - 2 bar,流速50 - 90 mL/min,以及CO₂进料量10 - 40 vol.%。通过升高温度检测到较低的吸附容量和较短的穿透时间。另一方面,通过提高CO₂进料量、进料流速和操作压力,CO₂吸附容量增加。对未改性和改性CNFCM吸附剂上的CO₂吸收进行的比较评估证实,引入的改性程序显著提高了CO₂吸附性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c913/7179043/12b9c00e2e45/materials-13-01775-g001.jpg

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