CIESC Journal ›› 2022, Vol. 73 ›› Issue (12): 5314-5323.DOI: 10.11949/0438-1157.20221304
• Thermodynamics • Previous Articles Next Articles
Tengfei GAO1(), Guoxuan LI2(), Zhigang LEI2
Received:
2022-09-27
Revised:
2022-11-07
Online:
2023-01-17
Published:
2022-12-05
Contact:
Guoxuan LI
通讯作者:
李国选
作者简介:
高腾飞(1988—),男,博士研究生,20039663@chnenergy.com.cn
基金资助:
CLC Number:
Tengfei GAO, Guoxuan LI, Zhigang LEI. Solvents selection for separation of biphenyl from FCC diesel: experimental and computational thermodynamics[J]. CIESC Journal, 2022, 73(12): 5314-5323.
高腾飞, 李国选, 雷志刚. 从催化裂化柴油中分离联苯的溶剂筛选:实验和计算热力学[J]. 化工学报, 2022, 73(12): 5314-5323.
Add to citation manager EndNote|Ris|BibTeX
阳离子 | 阴离子 | ||||
---|---|---|---|---|---|
编号 | 名称 | 阳结构式 | 编号 | 名称 | 结构式 |
C01 | [MMIM]+ | A01 | [Ac]- | ||
C02 | [EMIM]+ | A02 | [NO3] - | ||
C03 | [EEIM]+ | A03 | [Tf2N] - | ||
C04 | [OMIM]+ | A04 | [SCN] - | ||
C05 | [BMIM]+ | A05 | [DCA] - | ||
C06 | [HMIM]+ | A06 | [BF4] - | ||
C07 | [C2OHMIM]+ | A07 | [PF6] - |
Table 1 49 ionic liquids screened
阳离子 | 阴离子 | ||||
---|---|---|---|---|---|
编号 | 名称 | 阳结构式 | 编号 | 名称 | 结构式 |
C01 | [MMIM]+ | A01 | [Ac]- | ||
C02 | [EMIM]+ | A02 | [NO3] - | ||
C03 | [EEIM]+ | A03 | [Tf2N] - | ||
C04 | [OMIM]+ | A04 | [SCN] - | ||
C05 | [BMIM]+ | A05 | [DCA] - | ||
C06 | [HMIM]+ | A06 | [BF4] - | ||
C07 | [C2OHMIM]+ | A07 | [PF6] - |
萃余相 | 萃取相 | D | S | ||||
---|---|---|---|---|---|---|---|
w1 | w2 | w3 | w1 | w2 | w3 | ||
正十二烷 (1) + 联苯 (2) + [BMIM][BF4] (3) | |||||||
0.3100 | 0.6781 | 0.0119 | 0.0025 | 0.2537 | 0.7438 | 0.37 | 46.40 |
0.4220 | 0.5731 | 0.0049 | 0.0024 | 0.2290 | 0.7686 | 0.40 | 69.09 |
0.5133 | 0.4845 | 0.0022 | 0.0023 | 0.2041 | 0.7936 | 0.42 | 93.21 |
0.6013 | 0.3975 | 0.0011 | 0.0022 | 0.1783 | 0.8196 | 0.45 | 125.44 |
0.6835 | 0.3159 | 0.0006 | 0.0019 | 0.1472 | 0.8509 | 0.47 | 164.14 |
0.7892 | 0.2104 | 0.0004 | 0.0017 | 0.1170 | 0.8813 | 0.56 | 253.61 |
0.8771 | 0.1227 | 0.0002 | 0.0015 | 0.0810 | 0.9174 | 0.66 | 376.04 |
0.9482 | 0.0516 | 0.0001 | 0.0014 | 0.0526 | 0.9460 | 1.02 | 704.84 |
正十二烷 (1) + 联苯 (2) + 糠醛 (3) | |||||||
0.7779 | 0.1784 | 0.0437 | 0.0425 | 0.4188 | 0.5387 | 2.35 | 42.95 |
0.7971 | 0.1605 | 0.0425 | 0.0370 | 0.3831 | 0.5799 | 2.39 | 51.37 |
0.8174 | 0.1415 | 0.0412 | 0.0320 | 0.3432 | 0.6249 | 2.43 | 62.01 |
0.8389 | 0.1213 | 0.0398 | 0.0273 | 0.2987 | 0.6740 | 2.46 | 75.60 |
0.8618 | 0.0999 | 0.0384 | 0.0231 | 0.2494 | 0.7275 | 2.50 | 93.09 |
0.8860 | 0.0771 | 0.0369 | 0.0194 | 0.1950 | 0.7857 | 2.53 | 115.87 |
0.9118 | 0.0529 | 0.0354 | 0.0160 | 0.1354 | 0.8486 | 2.56 | 145.79 |
0.9390 | 0.0272 | 0.0338 | 0.0131 | 0.0704 | 0.9165 | 2.59 | 185.31 |
正十二烷 (1) + 联苯 (2) + DMSO (3) | |||||||
0.8841 | 0.1054 | 0.0105 | 0.0325 | 0.3892 | 0.5784 | 3.69 | 100.55 |
0.9008 | 0.0891 | 0.0101 | 0.0320 | 0.3506 | 0.6174 | 3.94 | 110.91 |
0.9175 | 0.0727 | 0.0098 | 0.0320 | 0.3079 | 0.6601 | 4.23 | 121.32 |
0.9340 | 0.0566 | 0.0095 | 0.0328 | 0.2605 | 0.7068 | 4.61 | 131.26 |
0.9499 | 0.0409 | 0.0092 | 0.0345 | 0.2074 | 0.7581 | 5.08 | 139.85 |
0.9651 | 0.0259 | 0.0090 | 0.0376 | 0.1475 | 0.8148 | 5.69 | 145.98 |
0.9790 | 0.0122 | 0.0089 | 0.0430 | 0.0791 | 0.8779 | 6.51 | 148.38 |
Table 2 Experimental LLE data for ternary systems of dodecane(1)+biphenyl(2)+[BMIM][BF4]/furfural/ DMSO (3) at T = 303.2 K and P = 101.3 kPa
萃余相 | 萃取相 | D | S | ||||
---|---|---|---|---|---|---|---|
w1 | w2 | w3 | w1 | w2 | w3 | ||
正十二烷 (1) + 联苯 (2) + [BMIM][BF4] (3) | |||||||
0.3100 | 0.6781 | 0.0119 | 0.0025 | 0.2537 | 0.7438 | 0.37 | 46.40 |
0.4220 | 0.5731 | 0.0049 | 0.0024 | 0.2290 | 0.7686 | 0.40 | 69.09 |
0.5133 | 0.4845 | 0.0022 | 0.0023 | 0.2041 | 0.7936 | 0.42 | 93.21 |
0.6013 | 0.3975 | 0.0011 | 0.0022 | 0.1783 | 0.8196 | 0.45 | 125.44 |
0.6835 | 0.3159 | 0.0006 | 0.0019 | 0.1472 | 0.8509 | 0.47 | 164.14 |
0.7892 | 0.2104 | 0.0004 | 0.0017 | 0.1170 | 0.8813 | 0.56 | 253.61 |
0.8771 | 0.1227 | 0.0002 | 0.0015 | 0.0810 | 0.9174 | 0.66 | 376.04 |
0.9482 | 0.0516 | 0.0001 | 0.0014 | 0.0526 | 0.9460 | 1.02 | 704.84 |
正十二烷 (1) + 联苯 (2) + 糠醛 (3) | |||||||
0.7779 | 0.1784 | 0.0437 | 0.0425 | 0.4188 | 0.5387 | 2.35 | 42.95 |
0.7971 | 0.1605 | 0.0425 | 0.0370 | 0.3831 | 0.5799 | 2.39 | 51.37 |
0.8174 | 0.1415 | 0.0412 | 0.0320 | 0.3432 | 0.6249 | 2.43 | 62.01 |
0.8389 | 0.1213 | 0.0398 | 0.0273 | 0.2987 | 0.6740 | 2.46 | 75.60 |
0.8618 | 0.0999 | 0.0384 | 0.0231 | 0.2494 | 0.7275 | 2.50 | 93.09 |
0.8860 | 0.0771 | 0.0369 | 0.0194 | 0.1950 | 0.7857 | 2.53 | 115.87 |
0.9118 | 0.0529 | 0.0354 | 0.0160 | 0.1354 | 0.8486 | 2.56 | 145.79 |
0.9390 | 0.0272 | 0.0338 | 0.0131 | 0.0704 | 0.9165 | 2.59 | 185.31 |
正十二烷 (1) + 联苯 (2) + DMSO (3) | |||||||
0.8841 | 0.1054 | 0.0105 | 0.0325 | 0.3892 | 0.5784 | 3.69 | 100.55 |
0.9008 | 0.0891 | 0.0101 | 0.0320 | 0.3506 | 0.6174 | 3.94 | 110.91 |
0.9175 | 0.0727 | 0.0098 | 0.0320 | 0.3079 | 0.6601 | 4.23 | 121.32 |
0.9340 | 0.0566 | 0.0095 | 0.0328 | 0.2605 | 0.7068 | 4.61 | 131.26 |
0.9499 | 0.0409 | 0.0092 | 0.0345 | 0.2074 | 0.7581 | 5.08 | 139.85 |
0.9651 | 0.0259 | 0.0090 | 0.0376 | 0.1475 | 0.8148 | 5.69 | 145.98 |
0.9790 | 0.0122 | 0.0089 | 0.0430 | 0.0791 | 0.8779 | 6.51 | 148.38 |
Fig.2 LLE phase diagrams in mass fraction for the dodecane (1) + biphenyl (2) + [BMIM][BF4] / furfural / DMSO (3) systems at T = 303.2 K and P = 101.3 kPa
Fig.3 Distribution coefficients (a) and selectivity coefficients (b) for the ternary systems of dodecane (1) + biphenyl (2) + [BMIM][BF4] / furfural / DMSO (3) at T = 303.2 K and P = 101.3 kPa
1 | Che Y J, Yuan M, Qiao Y Y, et al. Fundamental study of hierarchical millisecond gas-phase catalytic cracking process for enhancing the production of light olefins from vacuum residue[J]. Fuel, 2019, 237: 1-9. |
2 | Wang Z H, Fan W Y, Xu D M, et al. Liquid-liquid-phase equilibrium for quaternary systems (n-decane + 1-tetradecene + 1-methylnaphthalene+sulfolane/dimethyl sulfoxide) for separation of 1-methylnaphthalene from FCC diesel[J]. Journal of Chemical & Engineering Data, 2021, 66(7): 2803-2811. |
3 | Zouad Y, Tarabet L, Khiari K, et al. Effect of heating rate and additives (MgO and Al2O3) on a diesel like-fuel issued from waste engine oil pyrolysis[J]. Petroleum Science and Technology, 2019, 37(10): 1184-1193. |
4 | Shi Q, Zhao S Q, Zhou Y S, et al. Development of heavy oil upgrading technologies in China[J]. Reviews in Chemical Engineering, 2019, 36(1): 1-19. |
5 | Peng C, Du Y Z, Feng X, et al. Research and development of hydrocracking catalysts and technologies in China[J]. Frontiers of Chemical Science and Engineering, 2018, 12(4): 867-877. |
6 | Shin J, Oh Y, Choi Y, et al. Design of selective hydrocracking catalysts for BTX production from diesel-boiling-range polycyclic aromatic hydrocarbons[J]. Applied Catalysis A: General, 2017, 547: 12-21. |
7 | Zhang Y H, Wang Y T, Chen F, et al. Research on a dual solvent to separate olefin/aromatic-sulfide from heavy fluid catalytic cracking naphtha[J]. Energy & Fuels, 2018, 32(3): 4057-4064. |
8 | 陈博, 廖祖维, 王靖岱, 等. 芳烃抽提过程多目标优化[J]. 化工学报, 2012, 63(3): 851-859. |
Chen B, Liao Z W, Wang J D, et al. Multi-objective optimization of aromatic extraction process[J]. CIESC Journal, 2012, 63(3): 851-859. | |
9 | 王凌燕, 孙晓岩, 李忠杰, 等. 基于回归二元交互参数的芳烃抽提过程模拟[J]. 化工学报, 2011, 62(12): 3452-3457. |
Wang L Y, Sun X Y, Li Z J, et al. Simulation of aromatic extraction process based on regressed binary interaction parameters[J]. CIESC Journal, 2011, 62(12): 3452-3457. | |
10 | Wang Q, Chen J Y, Pan M, et al. A new sulfolane aromatic extractive distillation process and optimization for better energy utilization[J]. Chemical Engineering and Processing-Process Intensification, 2018, 128: 80-95. |
11 | 殷梦凡, 唐政, 张睿, 等. 离子液体液液萃取分离正辛烷/邻二甲苯[J]. 化工学报, 2021, 72(12): 6282-6290. |
Yin M F, Tang Z, Zhang R, et al. Separation of n-octane and o-xylene by liquid-liquid extraction with ionic liquids[J]. CIESC Journal, 2021, 72(12): 6282-6290. | |
12 | 姜焱龙, 张妮, 李淡然, 等. 基于COSMO-RS方法筛选离子液体用于焦油脱除[J]. 化工学报, 2022, 73(4): 1704-1713. |
Jiang Y L, Zhang N, Li D R, et al. Selected ionic liquids by COSMO-RS method for tar removal[J]. CIESC Journal, 2022, 73(4): 1704-1713. | |
13 | Meindersma G W, Podt A J, de Haan A B. Selection of ionic liquids for the extraction of aromatic hydrocarbons from aromatic/aliphatic mixtures[J]. Fuel Processing Technology, 2005, 87(1): 59-70. |
14 | Pereiro A B, Rodríguez A. An ionic liquid proposed as solvent in aromatic hydrocarbon separation by liquid extraction[J]. AIChE Journal, 2010, 56(2): 381-386. |
15 | Larriba M, de Riva J, Navarro P, et al. COSMO-based/Aspen Plus process simulation of the aromatic extraction from pyrolysis gasoline using the { [ 4 e m p y ] [ N T f 2 ] + [ e m i m ] [ D C A ] } ionic liquid mixture[J]. Separation and Purification Technology, 2018, 190: 211-227. |
16 | Guo Y C, Shi F M, Shu Q P, et al. Liquid-liquid equilibrium for n-hexane + benzene + sulfolane, + 1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide ([EMIM][NTf2]), + 1-ethyl-3-methylimidazolium ethylsulfate ([EMIM][EtSO4]) and + the mixtures of [EMIM][NTf2] and [EMIM][EtSO4][J]. Fluid Phase Equilibria, 2021, 529: 112882. |
17 | Shaahmadi F, Anbaz M A. The prediction of liquid-liquid equilibria for benzene/alkane/ionic liquids mixtures using intelligent models[J]. Journal of Molecular Liquids, 2017, 232: 396-407. |
18 | García J, Torrecilla J S, Fernández A, et al. (Liquid+liquid) equilibria in the binary systems (aliphatic, or aromatic hydrocarbons+ 1-ethyl-3-methylimidazolium ethylsulfate, or 1-butyl-3-methylimidazolium methylsulfate ionic liquids)[J]. Journal of Chemical Thermodynamics, 2010, 42(1): 144-150. |
19 | Klamt A, Jonas V, Bürger T, et al. Refinement and parametrization of COSMO-RS[J]. The Journal of Physical Chemistry A, 1998, 102(26): 5074-5085. |
20 | 桂成敏, 朱瑞松, 张傑, 等. 离子液体气体干燥技术的研究进展[J]. 化工学报, 2020, 71(1): 92-105. |
Gui C M, Zhu R S, Zhang J, et al. Progress on ionic liquids for gas drying[J]. CIESC Journal, 2020, 71(1): 92-105. | |
21 | Li G X, Gui C M, Zhu R S, et al. Deep eutectic solvents for efficient capture of cyclohexane in volatile organic compounds: thermodynamic and molecular mechanism[J]. AIChE Journal, 2022, 68(3): e17535. |
22 | Li G X, Liu Q H, Gui C M, et al. Thermodynamic and molecular insights into natural gas dehydration using choline chloride-based deep eutectic solvents[J]. AIChE Journal, 2022, 68(7): e17662. |
23 | Fu H, Hou Y P, Sang H N, et al. Carbon dioxide capture by new DBU-based DES: the relationship between ionicity and absorptive capacity[J]. AIChE Journal, 2021, 67(7): e17244. |
24 | Han J L, Dai C N, Lei Z G, et al. Gas drying with ionic liquids[J]. AIChE Journal, 2018, 64(2): 606-619. |
25 | Li G X, Gui C M, Dai C N, et al. Molecular insights into SO2 absorption by [EMIM][Cl]-based deep eutectic solvents[J]. ACS Sustainable Chemistry & Engineering, 2021, 9(41): 13831-13841. |
26 | Lu T, Chen F W. Multiwfn: a multifunctional wavefunction analyzer[J]. Journal of Computational Chemistry, 2012, 33(5): 580-592. |
27 | Zhang J N, Peng D L, Song Z, et al. COSMO-descriptor based computer-aided ionic liquid design for separation processes(Part Ⅰ): Modified group contribution methodology for predicting surface charge density profile of ionic liquids[J]. Chemical Engineering Science, 2017, 162: 355-363. |
28 | Zhang J N, Qin L, Peng D L, et al. COSMO-descriptor based computer-aided ionic liquid design for separation processes(Part Ⅱ): Task-specific design for extraction processes [J]. Chemical Engineering Science, 2017, 162: 364-374. |
29 | Li W X, Xu B, Lei Z G, et al. Separation of benzene and cyclohexane by extractive distillation intensified with ionic liquid[J]. Chemical Engineering and Processing-Process Intensification, 2018, 126: 81-89. |
30 | Dong Y C, Dai C N, Lei Z G. Separation of the methanol-ethanol-water mixture using ionic liquid[J]. Industrial & Engineering Chemistry Research, 2018, 57(32): 11167-11177. |
31 | Ahmady A, Hashim M A, Aroua M K. Density, viscosity, physical solubility and diffusivity of CO2 in aqueous MDEA + [bmim][BF 4]solutions from 303 to 333 K[J]. Chemical Engineering Journal, 2011, 172(2/3): 763-770. |
32 | Othmer D, Tobias P. Liquid-liquid extraction data-the line correlation[J]. Industrial & Engineering Chemistry, 1942, 34(6): 693-696. |
33 | Hand D B. Dineric distribution[J]. The Journal of Chemical Physics, 1930, 34(9): 1961-2000. |
34 | Tamres M. Aromatic compounds as donor molecules in hydrogen bonding[J]. Journal of the American Chemical Society, 1952, 74(13): 3375-3378. |
[1] | Qi WANG, Bin ZHANG, Xiaoxin ZHANG, Hujian WU, Haitao ZHAN, Tao WANG. Synthesis of isoxepac and 2-ethylanthraquinone catalyzed by chloroaluminate-triethylamine ionic liquid/P2O5 [J]. CIESC Journal, 2023, 74(S1): 245-249. |
[2] | Ruimin CHE, Wenqiu ZHENG, Xiaoyu WANG, Xin LI, Feng XU. Research progress on homogeneous processing of cellulose in ionic liquids [J]. CIESC Journal, 2023, 74(9): 3615-3627. |
[3] | Meisi CHEN, Weida CHEN, Xinyao LI, Shangyu LI, Youting WU, Feng ZHANG, Zhibing ZHANG. Advances in silicon-based ionic liquid microparticle enhanced gas capture and conversion [J]. CIESC Journal, 2023, 74(9): 3628-3639. |
[4] | Lizhi WANG, Qiancheng HANG, Yeling ZHENG, Yan DING, Jiaji CHEN, Qing YE, Jinlong LI. Separation of methyl propionate + methanol azeotrope using ionic liquid entrainers [J]. CIESC Journal, 2023, 74(9): 3731-3741. |
[5] | Jie CHEN, Yongsheng LIN, Kai XIAO, Chen YANG, Ting QIU. Study on catalytic synthesis of sec-butanol by tunable choline-based basic ionic liquids [J]. CIESC Journal, 2023, 74(9): 3716-3730. |
[6] | Zehao MI, Er HUA. DFT and COSMO-RS theoretical analysis of SO2 absorption by polyamines type ionic liquids [J]. CIESC Journal, 2023, 74(9): 3681-3696. |
[7] | Minghao SONG, Fei ZHAO, Shuqing LIU, Guoxuan LI, Sheng YANG, Zhigang LEI. Multi-scale simulation and study of volatile phenols removal from simulated oil by ionic liquids [J]. CIESC Journal, 2023, 74(9): 3654-3664. |
[8] | Shaoqi YANG, Shuheng ZHAO, Lungang CHEN, Chenguang WANG, Jianjun HU, Qing ZHOU, Longlong MA. Hydrodeoxygenation of lignin-derived compounds to alkanes in Raney Ni-protic ionic liquid system [J]. CIESC Journal, 2023, 74(9): 3697-3707. |
[9] | Xudong YU, Qi LI, Niancu CHEN, Li DU, Siying REN, Ying ZENG. Phase equilibria and calculation of aqueous ternary system KCl + CaCl2 + H2O at 298.2, 323.2, and 348.2 K [J]. CIESC Journal, 2023, 74(8): 3256-3265. |
[10] | Yuanliang ZHANG, Xinqi LUAN, Weige SU, Changhao LI, Zhongxing ZHAO, Liqin ZHOU, Jianmin CHEN, Yan HUANG, Zhenxia ZHAO. Study on selective extraction of nicotine by ionic liquids composite extractant and DFT calculation [J]. CIESC Journal, 2023, 74(7): 2947-2956. |
[11] | Ke CHEN, Li DU, Ying ZENG, Siying REN, Xudong YU. Phase equilibria and calculation of quaternary system LiCl+MgCl2+CaCl2+H2O at 323.2 K [J]. CIESC Journal, 2023, 74(5): 1896-1903. |
[12] | Zheng ZHANG, Yongping HE, Haidong SUN, Rongzi ZHANG, Zhengping SUN, Jinlan CHEN, Yixuan ZHENG, Xiao DU, Xiaogang HAO. Electrochemically switched ion exchange device with serpentine flow field for selective extraction of lithium [J]. CIESC Journal, 2023, 74(5): 2022-2033. |
[13] | Xiangshang CHEN, Zhenjie MA, Xihua REN, Yue JIA, Xiaolong LYU, Huayan CHEN. Preparation and mass transfer efficiency of three-dimensional network extraction membrane [J]. CIESC Journal, 2023, 74(3): 1126-1133. |
[14] | Jiahui CHEN, Xinze YANG, Guzhong CHEN, Zhen SONG, Zhiwen QI. A critical discussion on developing molecular property prediction models: density of ionic liquids as example [J]. CIESC Journal, 2023, 74(2): 630-641. |
[15] | Jingbo GAO, Qiang SUN, Qing LI, Yiwei WANG, Xuqiang GUO. Hydrate equilibrium model of hydrogen-containing gas considering hydrates structure transformation [J]. CIESC Journal, 2023, 74(2): 666-673. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||