R115/NaX的吸附动力学及其因素显著性分析
收稿日期: 2020-03-13
网络出版日期: 2021-06-08
Analysis of Factors and Significances of Adsorption Kinetics R115/NaX System
Received date: 2020-03-13
Online published: 2021-06-08
为了认识五氟一氯乙烷(R115)在NaX上的吸附动力学机理,以指导R115吸附脱除和催化转化等工业应用,分别利用准一级、准二级和内扩散模型研究R115浓度(指体积分数)和吸附剂粒径对R115吸附的影响.对比Thomas和Yan模型对穿透曲线的适用性,采用二水平三因子实验方法分析R115浓度、吸附剂质量和体积流速对吸附性能影响的显著性和相关性.研究结果显示,吸附过程主要受膜扩散控制;Yan和准一级吸附动力学模型对实验数据拟合度较高;吸附剂质量是最关键因素,显著影响穿透时间、饱和时间、吸附剂处理量和床层利用率;吸附剂质量和体积流速的交互作用对吸附剂处理量影响显著.
张金柯, 缪光武, 金佳敏, 陈银飞, 卢晗锋, 宁文生, 白占旗, 刘武灿 . R115/NaX的吸附动力学及其因素显著性分析[J]. 上海交通大学学报, 2021 , 55(9) : 1071 -1079 . DOI: 10.16183/j.cnki.jsjtu.2020.065
To understand the adsorption kinetic mechanism of chloropentafluoroethane (R115) on NaX and then to guide the industrial applications of R115 adsorption removal and catalytic conversion, the effect of R115 concentration (referring to volume fraction) and adsorbent particle size on adsorption performance are studied by using pseudo-first-order, pseudo-second-order, and intraparticle diffusion models. The applicability of the Thomas model and Yan model for breakthrough curve analysis are compared. A two-level three-factor experimental method is implemented to evaluate the significance and possible correlations of R115 concentration, adsorbent mass, and flow rate on adsorption performance. The results indicate that the adsorption process is mainly controlled by R115 external film diffusion. The Yan model and the pseudo-first-order adsorption kinetic model fit the experimental data better. The adsorbent mass is the most important factor significantly affecting the breakthrough time, saturation time, volume of effluent treated per gram of adsorbate, and fractional bed utilization. The interaction of adsorbent mass and flow rate has a significant effect on the volume of effluent treated per gram of adsorbate.
[1] | LOVELOCK J E. Atmospheric fluorine compounds as indicators of air movements[J]. Nature, 1971, 230(5293):379. |
[2] | 张金柯, 白占旗, 徐娇, 等. 一种六氟丁二烯的纯化方法: CN107032949A[P]. 2017-08-11[2020-07-13]. |
[2] | ZHANG Jinke, BAI Zhanqi, XU Jiao, et al. Purification method of hexafluoro-1,3-butadiene: CN 107032949A[P]. 2017-08-11[2020-07-13]. |
[3] | MOON D J, CHUNG M J, PARK K Y, et al. Adsorption equilibrium and catalytic reaction of CFC-115 on Pd/activated carbon powder[J]. Carbon, 1999, 37(1):123-128. |
[4] | KOBAYASHI S, MIZUNO K, KUSHIYAMA S, et al. Adsorption behavior of chlorofluorocarbons in zeolitic pores. 1. Adsorption isotherm[J]. Industrial & Engineering Chemistry Research, 1991, 30(10):2340-2344. |
[5] | SALEH T A, SARI A, TUZEN M. Optimization of parameters with experimental design for the adsorption of mercury using polyethylenimine modified-activated carbon[J]. Journal of Environmental Chemical Engineering, 2017, 5(1):1079-1088. |
[6] | MOON D J, CHUNG M J, CHO S Y, et al. Adsorption equilibria of chloropentafluoroethane and pentafluoroethane on activated carbon pellet[J]. Journal of Chemical & Engineering Data, 1998, 43(5):861-864. |
[7] | YANG R T. Adsorbents: Fundamentals and applications[M]. Hoboken, New Jersey, USA: John Wiley & Sons, 2003. |
[8] | PENG Y, ZHANG F M, ZHENG X, et al. Comparison study on the adsorption of CFC-115 and HFC-125 on activated carbon and silicalite-1[J]. Industrial & Engineering Chemistry Research, 2010, 49(20):10009-10015. |
[9] | PARK H M, MOON D J. Adsorption equilibria of CFC-115 on activated charcoal[J]. Journal of Chemical & Engineering Data, 2003, 48(4):908-910. |
[10] | 张金柯, 金佳敏, 缪光武, 等. 六氟乙烷和五氟一氯乙烷在NaX上的吸附平衡[J]. 高校化学工程学报, 2020, 34(2):311-317. |
[10] | ZHANG Jinke, JIN Jiamin, MIAO Guangwu, et al. Adsorption equilibria of hexafluoroethane and chloropentafluoroethane on NaX[J]. Journal of Chemical Engineering of Chinese Universities, 2020, 34(2):311-317. |
[11] | 张金柯, 白占旗, 齐海, 等. 一种改性的吸附剂及其在超高纯六氟乙烷制备中的应用: CN105327676A[P]. 2016-02-17[2020-07-13]. |
[11] | ZHANG Jinke, BAI Zhanqi, QI Hai, et al. Modified adsorbent and its application in preparation of ultra-pure hexafluoroethane: CN105327676A[P]. 2016-02-17[2020-07-13]. |
[12] | HOLMER A E. Purification of hexafluoroethane: US6346138[P]. 2002-02-12[2020-07-13]. |
[13] | YANG X Y, AL-DURI B. Kinetic modeling of liquid-phase adsorption of reactive dyes on activated carbon[J]. Journal of Colloid and Interface Science, 2005, 287(1):25-34. |
[14] | SRIVASTAVA V C, SWAMY M M, MALL I D, et al. Adsorptive removal of phenol by bagasse fly ash and activated carbon: Equilibrium, kinetics and thermodynamics[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2006, 272(1/2):89-104. |
[15] | OFOMAJA A E. Kinetics and mechanism of methylene blue sorption onto palm kernel fibre[J]. Process Biochemistry, 2007, 42(1):16-24. |
[16] | HAMEED B H, RAHMAN A A. Removal of phenol from aqueous solutions by adsorption onto activated carbon prepared from biomass material[J]. Journal of Hazardous Materials, 2008, 160(2/3):576-581. |
[17] | MAIA G S, DE ANDRADE J R, DA SILVA M G C, et al. Adsorption of diclofenac sodium onto commercial organoclay: Kinetic, equilibrium and thermodynamic study[J]. Powder Technology, 2019, 345:140-150. |
[18] | BOYD G E, ADAMSON A W, MYERS L S JR. The exchange adsorption of ions from aqueous solutions by organic zeolites. II. Kinetics1[J]. Journal of the American Chemical Society, 1947, 69(11):2836-2848. |
[19] | GARCIA-MATEOS F J, RUIZ-ROSAS R, MARQUES M D, et al. Removal of paracetamol on biomass-derived activated carbon: Modeling the fixed bed breakthrough curves using batch adsorption experiments[J]. Chemical Engineering Journal, 2015, 279:18-30. |
[20] | ALHAMED Y A. Adsorption kinetics and performance of packed bed adsorber for phenol removal using activated carbon from dates’ stones[J]. Journal of Hazardous Materials, 2009, 170(2/3):763-770. |
[21] | DE FRANCO M A E, DE CARVALHO C B, BONETTO M M, et al. Diclofenac removal from water by adsorption using activated carbon in batch mode and fixed-bed column: Isotherms, thermodynamic study and breakthrough curves modeling[J]. Journal of Cleaner Production, 2018, 181:145-154. |
[22] | AKSU Z, GÖNEN F. Biosorption of phenol by immobilized activated sludge in a continuous packed bed: Prediction of breakthrough curves[J]. Process Biochemistry, 2004, 39(5):599-613. |
[23] | DOUGLAS C M. Design and Analysis of Experiments[M]. 7th ed. New York, NY, USA: John Wiley & Sons, 2008. |
[24] | MONDAL S, AIKAT K, HALDER G. Ranitidine hydrochloride sorption onto superheated steam activated biochar derived from mung bean husk in fixed bed column[J]. Journal of Environmental Chemical Engineering, 2016, 4(1):488-497. |
[25] | MENG M J, FENG Y H, ZHANG M, et al. Highly efficient adsorption of salicylic acid from aqueous solution by wollastonite-based imprinted adsorbent: A fixed-bed column study[J]. Chemical Engineering Journal, 2013, 225:331-339. |
[26] | DE FRANCO M A E, DE CARVALHO C B, BONETTO M M, et al. Removal of amoxicillin from water by adsorption onto activated carbon in batch process and fixed bed column: Kinetics, isotherms, experimental design and breakthrough curves modelling[J]. Journal of Cleaner Production, 2017, 161:947-956. |
[27] | CHEN S H, YUE Q Y, GAO B Y, et al. Adsorption of hexavalent chromium from aqueous solution by modified corn stalk: A fixed-bed column study[J]. Bioresource Technology, 2012, 113:114-120. |
[28] | ÁLVAREZ-TORRELLAS S, RODRÍGUEZ A, OVEJERO G, et al. Comparative adsorption performance of ibuprofen and tetracycline from aqueous solution by carbonaceous materials[J]. Chemical Engineering Journal, 2016, 283:936-947. |
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