[1] H.R. Yue, Y.J. Zhao, X.B. Ma, J.L. Gong, Ethylene glycol:properties, synthesis, and applications, Chem. Soc. Rev. 41(11) (2012) 4218-4244. [2] L.H. Zhang, W.H. Wu, Y.L. Sun, L.Q. Li, B. Jiang, X.G. Li, N. Yang, H. Ding, Isobaric vapor-liquid equilibria for the binary mixtures composed of ethylene glycol, 1, 2-propylene glycol, 1, 2-butanediol, and 1, 3-butanediol at 10.00 kPa, J. Chem. Eng. Data 58(5) (2013) 1308-1315. [3] J.F. Pang, M.Y. Zheng, R.Y. Sun, A.Q. Wang, X.D. Wang, T. Zhang, Synthesis of ethylene glycol and terephthalic acid from biomass for producing PET, Green. Chem. 18(2) (2016) 342-359. [4] Y.J. Zhao, S.M. Li, Y. Wang, B. Shan, J. Zhang, S.P. Wang, X.B. Ma, Efficient tuning of surface copper species of Cu/SiO2 catalyst for hydrogenation of dimethyl oxalate to ethylene glycol, Chem. Eng. J. 313(2017) 759-768. [5] M.R. Altiokka, S. Akyalçin, Kinetics of the hydration of ethylene oxide in the presence of heterogeneous catalyst, Ind. Eng. Chem. Res. 48(24) (2009) 10840-10844. [6] F.E. Celik, H. Lawrence, A.T. Bell, Synthesis of precursors to ethylene glycol from formaldehyde and methyl formate catalyzed by heteropoly acids, J. Mol. Catal. A:Chem. 288(1-2) (2008) 87-96. [7] Z.B. Shen, S.J. Xie, W.Q. Fan, Q.H. Zhang, Z.K. Xie, W.M. Yang, Y.D. Wang, J.C. Lin, X.J. Wu, H.L. Wan, Y. Wang, Direct conversion of formaldehyde to ethylene glycol via photocatalytic carbon-carbon coupling over bismuth vanadate, Catal. Sci. Technol. 17(2016) 6485-6489. [8] S.L. Li, Y.F. Zan, Y.Y. Sun, Z.C. Tan, G. Miao, L.Z. Kong, Y.H. Sun, Efficient one-pot hydrogenolysis of biomass-derived xylitol into ethylene glycol and 1, 2-propylene glycol over Cu-Ni-ZrO2 catalyst without solid bases, J. Energy. Chem. 28(1) (2019) 101-106. [9] J.X. Xi, D.Q. Ding, Y. Shao, X.H. Liu, G.Z. Lu, Y.Q. Wang, Production of ethylene glycol and its monoether derivative from cellulose, ACS Sustain. Chem. Eng. 2(10) (2014) 2355-2362. [10] J. Ding, H.M. Liu, H.Y. Fan, S.Y. Chen, Y.X. Wang, W.X. He, G.W. Yu, L.T. Ma, J.G. Chen, Effective "exfoliation" of Cu/ZrO2 by varying Cu content as high performance catalysts for dimethyl oxalate hydrogenation to ethylene glycol, Catal. Commun. 121(2019) 62-67. [11] R.P. Ye, L. Lin, J.X. Yang, M.L. Sun, F. Li, B. Li, Y.G. Yao, A new low-cost and effective method for enhancing the catalytic performance of Cu-SiO2 catalysts for the synthesis of ethylene glycol via the vapor-phase hydrogenation of dimethyl oxalate by coating the catalysts with dextrin, J. Catal. 350(2017) 122-132. [12] R.X. Wei, C.L. Yan, A. Yang, W.F. Shen, J. Li, Improved process design and optimization of 200 kt/a ethylene glycol production using coal-based syngas, Chem. Eng. Res. Des. 132(2018) 551-563. [13] G.Q. Cui, X.Y. Meng, X. Zhang, W.L. Wang, S.L. Xu, Y.C. Ye, K.J. Tang, W.M. Wang, J.H. Zhu, M. Wei, D.G. Evans, X. Duan, Low-temperature hydrogenation of dimethyl oxalate to ethylene glycol via ternary synergistic catalysis of Cu and acid-base sites, Appl. Catal. B-Environ. 248(2019) 394-404. [14] Y. Huang, H. Ariga, X.L. Zheng, X.P. Duan, S. Takakusagi, K. Asakura, Y.Z. Yuan, Silver-modulated SiO2-supported copper catalysts for selective hydrogenation of dimethyl oxalate to ethylene glycol, J. Catal. 307(2013) 74-83. [15] H.J. Huang, B. Wang, Y. Wang, Y.J. Zhao, S.P. Wang, X.B. Ma, Partial hydrogenation of dimethyl oxalate on Cu/SiO2 catalyst modified by sodium silicate, Catal. Today (2019). [16] S.M. Li, Y. Wang, J. Zhang, S.P. Wang, Y. Xu, Y.J. Zhao, X.B. Ma, Kinetics study of hydrogenation of dimethyl oxalate over Cu/SiO2 catalyst, Ind. Eng. Chem. Res. 54(4) (2015) 1243-1250. [17] L.Q. Wu, J.L. Li, Effects of impurities on UV value of coal-based ethylene glycol and its improving methods, Nat. Gas Chem. Ind. 36(6) (2011) 66-70. [18] H. Li, W.J. Huang, X.G. Li, X. Gao, Application of the aldolization reaction in separating the mixture of ethylene glycol and 1,2-butanediol:Thermodynamics and new separation process, Ind. Eng. Chem. Res. 55(37) (2016) 9994-10003. [19] A. König, M. Stepanski, A. Kuszlik, P. Keil, C. Weller, Ultra-purification of ionic liquids by melt crystallization, Chem. Eng. Res. Des. 86(7) (2008) 775-780. [20] S. Cong, X.G. Li, J. Wu, C.C. Xu, Optimization of parameters for melt crystallization of p-cresol, Chin. J. Chem. Eng. 20(4) (2012) 649-653. [21] M. Ahmad, J. Ulrich, Separation of complex feed streams of a product by layer melt crystallization, Chem. Eng. Technol. 39(7) (2016) 1341-1345. [22] T.F. Wang, X. Li, J.X. Dong, Ethylene glycol purification by melt crystallization:removal of short-chain glycol impurities, Ind. Eng. Chem. Res. 59(18) (2020) 8805-8812. [23] X.B. Jiang, W. Xiao, G.H. He, Falling film melt crystallization (III):model development, separation effect compared to static melt crystallization and process optimization, Chem. Eng. Sci. 117(2014) 198-209. [24] B.M. Yu, J.H. Li, A geometry model for tortuosity of flow path in porous media, Chin. Phys. Lett. 21(8) (2004) 1569-1571. [25] J. Ulrich, J. Bierwirth, S. Henning, Solid layer melt crystallization, Sep. Purif. Methods 25(1) (2006) 1-45. |