[1] K. Jähnisch, V. Hessel, H. Löwe, M. Baerns, Chemistry in microstructured reactors, Angew. Chem. Int. Ed. 43 (4) (2004) 406-446 [2] G. Kolb, V. Hessel, Micro-structured reactors for gas phase reactions, Chem. Eng. J. 98 (1-2) (2004) 1-38 [3] H.H. Shi, K.X. Nie, B. Dong, M.Q. Long, H. Xu, Z.C. Liu, Recent progress of microfluidic reactors for biomedical applications, Chem. Eng. J. 361 (2019) 635-650 [4] Elvira K.S., Casadevall i Solvas X., Wootton R.C., deMello A.J., The past, present and potential for microfluidic reactor technology in chemical synthesis, Nat. Chem. 5 (11) (2013) 905-915 [5] Z. Chen, Y.D. Wang, Solvent extraction kinetics of Sm(III), Eu(III) and Gd(III) with 2-ethylhexyl phosphoric acid-2-ethylhexyl ester, Chin. J. Chem. Eng. 26 (2) (2018) 317-321 [6] D.Q. Li, Development course of separating rare earths with acid phosphorus extractants:Acritical review, J. Rare Earths 37 (5) (2019) 468-486 [7] R. Ma, C.X. Fan, Y.B. Wang, J.H. Luo, J. Li, S. Komarneni, Gas-liquid-liquid extraction in a novel rotating microchannel extractor, Chin. J. Chem. Eng. 28 (10) (2020) 2523-2532 [8] X.J. Yao, Y. Zhang, L.Y. Du, J.H. Liu, J.F. Yao, Review of the applications of microreactors, Renew. Sustain. Energy Rev. 47 (2015) 519-539 [9] F. Jiang, S.H. Yin, C. Srinivasakannan, S.W. Li, J.H. Peng, Separation of lanthanum and cerium from chloride medium in presence of complexing agent along with EHEHPA (P507) in a serpentine microreactor, Chem. Eng. J. 334 (2018) 2208-2214 [10] T.L. Xie, M.X. Chen, C. Xu, J. Chen, High-throughput extraction and separation of Ce(III) and Pr(III) using a chaotic advection microextractor, Chem. Eng. J. 356 (2019) 382-392 [11] S.H. Yin, K.H. Chen, C. Srinivasakannan, S.W. Li, J.W. Zhou, J.H. Peng, L.B. Zhang, Microfluidic solvent extraction of Ce (III) and Pr (III) from a chloride solution using EHEHPA (P507) in a serpentine microreactor, Hydrometallurgy 175 (2018) 266-272 [12] S.H. Yin, L.B. Zhang, J.H. Peng, S.W. Li, S.H. Ju, L.H. Zhang, Microfluidic solvent extraction of La(III) with 2-ethylhexyl phosphoric acid-2-ethylhexyl ester (P507) by a microreactor, Chem. Eng. Process.:Process. Intensif. 91 (2015) 1-6 [13] K. Ward, Z.H. Fan, Mixing in microfluidic devices and enhancement methods, J. Micromech. Microeng. 25 (9) (2015) 094001 [14] E.V. Rebrov, J.C. Schouten, M.H.J.M. de Croon, Single-phase fluid flow distribution and heat transfer in microstructured reactors, Chem. Eng. Sci. 66 (7) (2011) 1374-1393 [15] J. Zhao, C. Yang, S. Shimai, X.P. Guan, G.H. Zhou, J. Zhang, J. Liu, S.W. Wang, The effect of wet foam stability on the microstructure and strength of porous ceramics, Ceram. Int. 44 (1) (2018) 269-274 [16] B. Zhang, H.M. Huang, X.L. Lu, X.L. Xu, J. Yao, Fabrication and properties of SiC porous ceramics using a polyurethane preparation process, Ceram. Int. 44 (14) (2018) 16589-16593 [17] W.L. Huo, X.Y. Zhang, Y.G. Chen, D. Wang, J.J. Liu, S. Yan, J.L. Yang, Mechanical strength of highly porous ceramic foams with thin and lamellate cell wall from particle-stabilized foams, Ceram. Int. 44 (5) (2018) 5780-5784 [18] K.K. Singh, A.U. Renjith, K.T. Shenoy, Liquid-liquid extraction in microchannels and conventional stage-wise extractors:Acomparative study, Chem. Eng. Process.:Process. Intensif. 98 (2015) 95-105 [19] S. Dai, J.H. Luo, J. Li, X.H. Zhu, Y. Cao, S. Komarneni, Liquid-liquid microextraction of Cu2+ from water using a new circle microchannel device, Ind. Eng. Chem. Res. 56 (44) (2017) 12717-12725 [20] F. Jiang, J.N. Pei, S.H. Yin, L.B. Zhang, J.H. Peng, S.H. Ju, J.D. Miller, X.M. Wang, Solvent extraction and stripping of copper in a Y-Y type microchannel reactor, Miner. Eng. 127 (2018) 296-304 [21] B.B. Li, B.X. Mao, T. He, X.B. Wang, H.Q. Huang, Effect of SiC layer on microwave absorption properties of novel three-dimensional interconnected SiC foam with double-layer hollow skeleton, Mater. Res. Express 7 (1) (2020) 015073 [22] S.J. Yu, Z.F. Chen, Y. Wang, R.Y. Luo, B.B. Li, Z. Chen, Y. Pan, Preparation and thermal insulation analysis of SiCw-SiC foam with hollow skeletons via carbon foam template CVI method, Mater. Charact. 134 (2017) 296-301 [23] Y. Wang, Z.F. Chen, S.J. Yu, M.U. Saeed, T.Z. Xu, W.W. Wang, Y. Pan, A novel ultra-light reticulated SiC foam with hollow skeleton, J. Eur. Ceram. Soc. 37 (1) (2017) 53-59 [24] X.L. Ye, Z.F. Chen, M. Li, T. Wang, C. Wu, J.X. Zhang, Q.B. Zhou, H.Z. Liu, S. Cui, Hollow SiC foam with a double interconnected network for superior microwave absorption ability, J. Alloy. Compd. 817 (2020) 153276 [25] A. Diani, K.K. Bodla, L. Rossetto, S.V. Garimella, Numerical investigation of pressure drop and heat transfer through reconstructed metal foams and comparison against experiments, Int. J. Heat Mass Transf. 88 (2015) 508-515 [26] X.L. Fan, X.X. Ou, F. Xing, G.A. Turley, P. Denissenko, M.A. Williams, N. Batail, C. Pham, A.A. Lapkin, Microtomography-based numerical simulations of heat transfer and fluid flow through β-SiC open-cell foams for catalysis, Catal. Today 278 (2016) 350-360 [27] S.S. Ye, Q. Tang, Y.D. Wang, W.Y. Fei, Structural optimization of a settler via CFD simulation in a mixer-settler, Chin. J. Chem. Eng. 28 (4) (2020) 995-1015 [28] X.Y. Chen, T.C. Li, H. Zeng, Z.L. Hu, B.D. Fu, Numerical and experimental investigation on micromixers with serpentine microchannels, Int. J. Heat Mass Transf. 98 (2016) 131-140 [29] Z.W. Nie, Y.Y. Lin, Q.B. Tong, Numerical investigation of pressure drop and heat transfer through open cell foams with 3D Laguerre-Voronoi model, Int. J. Heat Mass Transf. 113 (2017) 819-839 [30] F. Lucci, A. Della Torre, G. Montenegro, R. Kaufmann, P.D. Eggenschwiler, Comparison of geometrical, momentum and mass transfer characteristics of real foams to Kelvin cell lattices for catalyst applications, Int. J. Heat Mass Transf. 108 (2017) 341-350 [31] W.G. Xu, H.T. Zhang, Z.M. Yang, J.S. Zhang, Numerical investigation on the flow characteristics and permeability of three-dimensional reticulated foam materials, Chem. Eng. J. 140 (1-3) (2008) 562-569 [32] F. Xie, T.A. Zhang, D. Dreisinger, F. Doyle, A critical review on solvent extraction of rare earths from aqueous solutions, Miner. Eng. 56 (2014) 10-28 [33] M. Bayareh, M.N. Ashani, A. Usefian, Active and passive micromixers:A comprehensive review, Chem. Eng. Process.-Process. Intensif. 147 (2020) 107771 [34] E.A. Mansur, M.X. Ye, Y.D. Wang, Y.Y. Dai, A state-of-the-art review of mixing in microfluidic mixers, Chin. J. Chem. Eng. 16 (4) (2008) 503-516 [35] P. Hermann, J. Timmermann, M. Hoffmann, M. Schlüter, C. Hofmann, P. Löb, D. Ziegenbalg, Optimization of a split and recombine micromixer by improved exploitation of secondary flows, Chem. Eng. J. 334 (2018) 1996-2003 [36] E. Borovinskaya, V. Khaydarov, N. Strehle, A. Musaev, W. Reschetilowski, Experimental studies of ethyl acetate saponification using different reactor systems:The effect of volume flow rate on reactor performance and pressure drop, Appl. Sci. 9 (3) (2019) 532 [37] X. Wang, Y.M. Yong, C. Yang, Z.S. Mao, D.D. Li, Investigation on pressure drop characteristic and mass transfer performance of gas-liquid flow in micro-channels, Microfluid. Nanofluidics 16 (1-2) (2014) 413-423 [38] Y. Zhang, Y. Gao, Z.M. Yang, J.S. Zhang, CFD simulation of single-phase flow characteristics and pressure drop in SiC hollow-strut foam microchannel reactors, in:Fifth International Conference on Materials Science, Energy Technology and Environmental Engineering, Shanghai, China, 2020. [39] R. Nayak, O.J. Lobo, D. Chatterjee, S.K. Das, Effect of geometrical parameters on slug behaviour and two phase pressure drop in microchannel T-junctions, Chem. Eng. Process.-Process. Intensif. 130 (2018) 76-87 [40] J. Yue, G.W. Chen, Q. Yuan, L.G. Luo, Y. Gonthier, Hydrodynamics and mass transfer characteristics in gas-liquid flow through a rectangular microchannel, Chem. Eng. Sci. 62 (7) (2007) 2096-2108 [41] K.P. Nichols, R.R. Pompano, L. Li, A.V. Gelis, R.F. Ismagilov, Toward mechanistic understanding of nuclear reprocessing chemistries by quantifying lanthanide solvent extraction kinetics via microfluidics with constant interfacial area and rapid mixing, J. Am. Chem. Soc. 133 (39) (2011) 15721-15729 [42] S.H. Yin, J.N. Pei, J.H. Peng, L.B. Zhang, C. Srinivasakannan, Study on mass transfer behavior of extracting La(III) with EHEHPA (P507) using rectangular cross-section microchannel, Hydrometallurgy 175 (2018) 64-69 [43] H. Zhang, M.J. Shang, C. Shen, G.X. Li, Y.H. Su, Continuous extraction of gold(III) using pyridine ionic liquid-based water-in-oil microemulsion in microreactors, Ind. Eng. Chem. Res. 58 (28) (2019) 12729-12740 [44] H.L. Hou, Y. Jing, Y. Wang, Y.D. Wang, J.H. Xu, J.N. Chen, Solvent extraction performance of Ce(III) from chloride acidic solution with 2-ethylhexyl phosphoric acid-2-ethylhexyl ester (EHEHPA) by using membrane dispersion micro-extractor, J. Rare Earths 33 (10) (2015) 1114-1121 [45] G.S. Lee, M. Uchikoshi, K. Mimura, M. Isshiki, Distribution coefficients of La, Ce, Pr, Nd, and Sm on Cyanex 923-, D2EHPA-, and PC88A-impregnated resins, Sep. Purif. Technol. 67 (1) (2009) 79-85 [46] Z. Chen, W.T. Wang, F.N. Sang, J.H. Xu, G.S. Luo, Y.D. Wang, Fast extraction and enrichment of rare earth elements from waste water via microfluidic-based hollow droplet, Sep. Purif. Technol. 174 (2017) 352-361 |