[1] J.C. Kurnia, A. Ahmadihosseini, A.P. Sasmito, Flow behavior and mixing of single-phase laminar Newtonian miscible fluid in T-junction micromixer with twisted mixing channel-A numerical study, Chem. Eng. Process. Process. Intensif. 181(2022) 109171. [2] G.X. Li, M.J. Shang, Y. Song, Y.H. Su, Characterization of liquid-liquid mass transfer performance in a capillary microreactor system, AIChE. J. 64(3) (2018) 1106-1116. [3] X.D. Wang, Y.M. Wang, F. Li, L. Li, X.H. Ge, S.L. Zhang, T. Qiu, Scale-up of microreactor: Effects of hydrodynamic diameter on liquid-liquid flow and mass transfer, Chem. Eng. Sci. 226(2020) 115838. [4] J.Z. Luo, Y. Luo, G.W. Chu, M. Arowo, Y. Xiang, B.C. Sun, J.F. Chen, Micromixing efficiency of a novel helical tube reactor: CFD prediction and experimental characterization, Chem. Eng. Sci. 155(2016) 386-396. [5] C.J. Zhou, B.Q. Xie, J.X. Chen, Y.W. Fan, J.S. Zhang, Enhancement of gas-liquid mass transfer in curved membrane contactors with the generation of Dean vortices, J. Membr. Sci. 636(2021) 119592. [6] L. Sheng, Y. Chang, J. Deng, G.S. Luo, Surfactant effect on mass transfer characteristics in the generation and flow stages of gas-liquid Taylor flow in a microchannel, Sep. Purif. Technol. 312(2023) 123368. [7] Y.B. Wang, Z.F. Yan, J. Deng, W.H. Duan, G.S. Luo, Gas-liquid microdispersion and countercurrent flow in a miniaturized annular rotating device, Chem. Eng. J. 466(2023) 143210. [8] A. Gunther, M. Jhunjhunwala, M. Thalmann, M.A. Schmidt, K.F. Jensen, Micromixing of miscible liquids in segmented gas-liquid flow, Langmuir 21(4) (2005) 1547-1555. [9] J.S. Zhang, K. Wang, X.Y. Lin, Y.C. Lu, G.S. Luo, Intensification of fast exothermic reaction by gas agitation in a microchemical system, AIChE. J. 60(7) (2014) 2724-2730. [10] K. Wang, H.M. Zhang, Y. Shen, A. Adamo, K.F. Jensen, Thermoformed fluoropolymer tubing for in-line mixing, React. Chem. Eng. 3(5) (2018) 707-713. [11] A.D. Stroock, S.K.W. Dertinger, A. Ajdari, I. Mezic, H.A. Stone, G.M. Whitesides, Chaotic mixer for microchannels, Science 295(5555) (2002) 647-651. [12] H.M. Zhang, T. Kopfmuller, R. Achermann, J.S. Zhang, A. Teixeira, Y. Shen, K.F. Jensen, Accessing multidimensional mixing via 3D printing and showerhead micromixer design, AIChE. J. 66(4) (2020) e16873. [13] V. Kumar, M. Aggarwal, K.D.P. Nigam, Mixing in curved tubes, Chem. Eng. Sci. 61(17) (2006) 5742-5753. [14] P. Naphon, S. Wongwises, A review of flow and heat transfer characteristics in curved tubes, Renew. Sustain. Energy Rev. 10(5) (2006) 463-490. [15] X. Chen, S. Du, R.Z. Wang, P. Lin, Experimental study of heat and mass transfer for ammonia-water falling film absorption on novel S-shaped capillary tubes bundle, Int. J. Heat Mass Transf. 164(2021) 120606. [16] A. Roux, G. Koster, M. Lenz, B. Sorre, J.B. Manneville, P. Nassoy, P. Bassereau, Membrane curvature controls dynamin polymerization, Proc. Natl. Acad. Sci. USA 107(9) (2010) 4141-4146. [17] H. Yang, E.M. Akinoglu, L.J. Guo, M.L. Jin, G.F. Zhou, M. Giersig, L.L. Shui, P. Mulvaney, A PTFE helical capillary microreactor for the high throughput synthesis of monodisperse silica particles, Chem. Eng. J. 401(2020) 126063. [18] J.X. Chen, C.J. Zhou, B.Q. Xie, J.S. Zhang, Simulation of the enhancement of Dean flow on the liquid-liquid extraction in membrane contactors, Sep. Purif. Technol. 285(2022) 120384. [19] D. Kaufhold, F. Kopf, C. Wolff, S. Beutel, L. Hilterhaus, M. Hoffmann, T. Scheper, M. Schluter, A. Liese, Generation of Dean vortices and enhancement of oxygen transfer rates in membrane contactors for different hollow fiber geometries, J. Membr. Sci. 423-424(2012) 342-347. [20] S. Zhu, K. Wang, Y.C. Lu, Effects on the mixing process of a coiled tube after a T-junction: Simulation and correlation, Chin. J. Chem. Eng. 26(12) (2018) 2441-2447. [21] S.P. Vanka, G. Luo, C.M. Winkler, Numerical study of scalar mixing in curved channels at low Reynolds numbers, AIChE. J. 50(10) (2004) 2359-2368. [22] M.M. Mandal, P. Aggarwal, K.D.P. Nigam, Liquid-liquid mixing in coiled flow inverter, Ind. Eng. Chem. Res. 50(23) (2011) 13230-13235. [23] J.M. Jani, M. Wessling, R.G.H. Lammertink, Geometrical influence on mixing in helical porous membrane microcontactors, J. Membr. Sci. 378(1-2) (2011) 351-358. [24] Y.B. Wang, J. Li, Y. Jin, J.H. Luo, M. Chen, C. Yan, Mixing efficiency of a rotor-stator spinning disc extractor, Chem. Eng. J. 362(2019) 357-363. [25] Z.D. Liu, Y.C. Lu, J.W. Wang, G.S. Luo, Mixing characterization and scaling-up analysis of asymmetrical T-shaped micromixer: Experiment and CFD simulation, Chem. Eng. J. 181-182(2012) 597-606. [26] Q.C. Chen, Y.B. Wang, C.C. Du, J. Deng, G.S. Luo, Micromixing performance of a miniaturized annular rotating flow mixer (MARFM), Chem. Eng. Process. Process. Intensif. 182(2022) 109181. [27] J.S. Zhang, K. Wang, Y.C. Lu, G.S. Luo, Characterization and modeling of micromixing performance in micropore dispersion reactors, Chem. Eng. Process. 49(7) (2010) 740-747. [28] R.W. Epps, A.A. Volk, K. Abdel-Latif, M. Abolhasani, An automated flow chemistry platform to decouple mixing and reaction times, React. Chem. Eng. 5(7) (2020) 1212-1217. [29] Q.C. Chen, Y.B. Wang, K. Wang, J.A. Deng, G.S. Luo, Experimental and numerical investigation on the scaling-up of microsieve dispersion mixers, Ind. Eng. Chem. Res. 61(36) (2022) 13383-13396. [30] J.M. Commenge, L. Falk, Villermaux-Dushman protocol for experimental characterization of micromixers, Chem. Eng. Process. 50(10) (2011) 979-990. |