1 |
Ganapathy H , Al-hajri E , Ohadi M . Mass transfer characteristics of gas-liquid absorption during Taylor flow in mini/microchannel reactors[J]. Chem. Eng. Sci., 2013, 101: 69-80.
|
2 |
Dutcher B , Fan M , Russell A G . Amine - based CO2 capture technology development from the beginning of 2013—a review [J]. ACS Appl. Mater. Interfaces, 2015, 7(4): 2137-2148.
|
3 |
马学虎, 兰忠, 王凯, 等 . 舞动的液滴:界面现象与过程调控[J]. 化工学报, 2018, 69(1): 9-43.
|
|
Ma X H , Lan Z , Wang K , et al . Dancing droplet: interface phenomena and progress regulation[J]. CIESC Journal, 2018, 69(1): 9-43.
|
4 |
陈光文, 袁权 . 微化工技术[J]. 化工学报, 2003, 54(4): 427-439.
|
|
Chen G W , Yuan Q . Micro-chemical technology[J]. Journal of Chemical Industry and Engineering (China), 2003, 54(4): 427-439.
|
5 |
袁权, 陈光文, 赵玉潮 . 微化工过程中的传递现象[J]. 化工学报, 2013, 64(1): 63-75.
|
|
Yuan Q , Chen G W , Zhao Y C . Transport phenomena in micro-chemical engineering[J]. CIESC Journal, 2013, 64(1): 63-75.
|
6 |
尧超群, 乐军, 赵玉潮,等 . 微通道内气-液状流动及传质特性研究进展[J]. 化工学报, 2015, 66 (8): 2759-2766.
|
|
Yao C Q , Yue J , Zhao Y C , et al . Review on flow and mass transfer characteristics of gas-liquid slug flow in microchannels[J].CIESC Journal, 2015,66(8): 2759-2766
|
7 |
Guzowski J , Garstecki P . Droplet clusters: exploring the phase space of soft mesoscale atoms[J]. Phys. Rev. Lett.,2015, 114(18): 188302.
|
8 |
Costantini M , Colosi C , Jaroszewicz J , et al . Microfluidic foaming: a powerful tool for tailoring the morphological and permeability properties of sponge-like biopolymeric scaffolds[J]. ACS Appl. Mat. Interfaces, 2015, 7(42): 23660-23671.
|
9 |
Li W , Liu K , Simms R , et al . Microfluidic study of fast gas-liquid reactions[J]. J. Am. Chem. Soc., 2012, 134(6): 3127-3132.
|
10 |
Hao T T , Ma X H , Lan Z , et al . Effects of hydrophilic surface on heat transfer performance and oscillating motion for an oscillating heat pipe[J]. Int. J. Heat Mass Transfer, 2014, 72: 50-65.
|
11 |
Hao T T , Ma X H , Lan Z , et al . Effects of superhydrophobic and superhydrophilic surfaces on heat transfer and oscillating motion of an oscillating heat pipe[J]. J. Heat Transfer, 2014, 136(8):082001.
|
12 |
Liang Q Q , Hao T T , Wang K , et al . Startup and transport characteristics of oscillating heat pipe using ionic liquids[J]. Int. Commun. Heat Mass, 2018, 94: 1-13.
|
13 |
Tumarkin E , Nie Z , Park J I , et al . Temperature- controlled “breathing” of carbon dioxide bubbles[J]. Lab Chip, 2011, 11(20): 3545-3450.
|
14 |
Lefortier S G , Hamersma P J , Bardow A , et al . Rapid microfluidic screening of CO2 solubility and diffusion in pure and mixed solvents[J]. Lab Chip, 2012, 12(18): 3387-3391.
|
15 |
梁倩卿, 春江, 王凯, 等 . 弯曲型微通道吸收CO2/N2 混合气的传质性能[J]. 高校化学工程学报, 2017, 31(4): 784-793.
|
|
Liang Q Q , Chun J , Wang K , et al . Mass transfer characteristics during CO2 /N2 mixture absorption in a meandering-microchannel[J]. J. Chem. Eng. Chin. Univ., 2017, 31(4): 784-793.
|
16 |
马学虎, 梁倩卿, 王凯, 等 . 基于微吸收器的CO2吸收过程研究进展[J]. 化工进展, 2018, 37(4): 1229-1246.
|
|
Ma X H , Liang Q Q , Wang K , et al . Progress of CO2 absorption process in micro-absorbers[J].Chem. Ind. Eng. Prog., 2018, 37(4): 1229-1246.
|
17 |
Yao C Q , Zhao Y C , Dang M H , et al . Characteristics of slug flow with inertial effects in a rectangular microchannel[J]. Chem. Eng. Sci., 2013, 95: 246-256.
|
18 |
van Steijn V , Kreutzer M T , Kleijn C R . μ-PIV study of the formation of segmented flow in microfluidic T-junctions[J]. Chem. Eng. Sci., 2007, 62(24): 7505-7514.
|
19 |
Kuhn S , Jensen K F . A pH-sensitive laser-induced fluorescence technique to monitor mass transfer in multiphase flows in microfluidic devices[J]. Ind. Eng. Chem. Res., 2012, 51(26): 8999-9006.
|
20 |
Tan J , Lu Y C , Xu J H , et al . Mass transfer performance of gas-liquid segmented flow in microchannels[J]. Chem. Eng. J., 2012, 181/182: 229-235.
|
21 |
Zaloha P , Kristal J , Jiricny V , et al . Characteristics of liquid slugs in gas- liquid Taylor flow in microchannels[J]. Chem. Eng. Sci., 2012, 68(1): 640-649.
|
22 |
Fries D M , von Rohr P R . Liquid mixing in gas-liquid two-phase flow by meandering microchannels[J].Chem. Eng. Sci., 2009, 64(6): 1326-1335.
|
23 |
Fries D , Waelchli S , Rudolfvonrohr P . Gas-liquid two-phase flow in meandering microchannels[J]. Chem. Eng. J., 2008, 135: S37-S45
|
24 |
Günther A , Khan S A , Thalmann M , et al . Transport and reaction in microscale segmented gas-liquid flow[J]. Lab Chip, 2004, 4(4): 278-286.
|
25 |
Günther A , Jhunjhunwala M , Thalmann M . Micromixing of miscible liquids in segmented gas-liquid flow[J]. Langmuir, 2005, 21: 1547-1555.
|
26 |
Mac Giolla Eain M , Egan V , Howard J , et al . Review and extension of pressure drop models applied to Taylor flow regimes[J]. Int. J. Multiphase Flow, 2015, 68: 1-9.
|
27 |
Triplett K A , Ghiaasiaan S M , Abdel-Khalik S I , et al . Gas-liquid two-phase flow in microchannels (Ⅱ): Void fraction and pressure drop [J]. Int. J. Multiphase Flow, 1999, 25(3): 395-410.
|
28 |
Lockhart R W , Martinelli R C . Proposed correlation of data for isothermal two- phase, two- component flow in pipes [J]. Chem. Eng. Prog., 1949, 45(1): 39-48.
|
29 |
Ratulowski J , Chang H C . Transport of gas bubbles in capillaries[J]. Phys. Fluid A: Fluid Dynamics, 1989, 1(10): 1642-1655.
|
30 |
Bretherton F P . The motion of long bubbles in tubes[J]. J. Fluid Mech., 1961, 10: 166-188.
|
31 |
Kreutzer M T , Kapteijn F , Moulijn J A . Inertial and interfacial effects on pressure drop of Taylor flow in capillaries[J]. AIChE J., 2005, 51(9): 2428-2440.
|
32 |
Walsh E , Muzychka Y , Walsh P , et al . Pressure drop in two phase slug/bubble flows in mini scale capillaries[J]. Int. J. Multiphase Flow, 2009, 35(10): 879-884.
|
33 |
Warnier M J F , de Croon M H J M , Rebrov E V , et al . Pressure drop of gas-liquid Taylor flow in round micro-capillaries for low to intermediate Reynolds numbers[J]. Microfluid Nanofluid, 2009, 8(1): 33-45.
|
34 |
Yue J , Luo L G , Gonthier Y , et al . An experimental study of air-water Taylor flow and mass transfer inside square microchannels[J]. Chem. Eng. Sci., 2009, 64(16): 3697-3708.
|
35 |
Garstecki P , Fuerstman M J , Whitesides G M . Oscillations with uniquely long periods in a microfluidic bubble generator[J]. Nature. Phys., 2005,1:168-171.
|
36 |
Won Y S , Chung D K , Mills A F . Density, viscosity, surface tension, and carbon dioxide solubility and diffusivity of methanol, ethanol, aqueous propanol, and aqueous ethylene glycol at 25℃ [J]. J. Chem. Eng. Data, 1981, 26: 140-141.
|
37 |
Chalfi T Y , Ghiaasiaan S M . Pressure drop caused by flow area changes in capillaries under low flow conditions [J]. Int. J. Multiphase Flow, 2008, 34(1):2-12.
|
38 |
Carey V P . Liquid-vapor Phase-change Phenomena [M]. New York : Hemisphere, 1992:521-550.
|
39 |
Kreutzer M T , Kapteijn F , Moulijn J A , et al . Multiphase monolith reactors: chemical reaction engineering of segmented flow in microchannels[J]. Chem. Eng. Sci., 2005, 60(22): 5895-5916.
|
40 |
Berthier J , Silberzan P . Microfluidics for Biotechnology [M]. Boston, London: Artech House, 2010:42-44.
|
41 |
Abiev R S . Bubbles velocity, Taylor circulation rate and mass transfer model for slug flow in milli- and microchannels[J]. Chem. Eng. J., 2013, 227: 66-79.
|
42 |
Kuo J S , Chiu D T . Controlling mass transport in microfluidic devices[J]. Annu. Rev. Anal. Chem., 2011, 4: 275-296.
|
43 |
Waelchli S , von Rohr P R . Two-phase flow characteristics in gas-liquid microreactors[J]. Int. J. Multiphase Flow, 2006, 32(7): 791-806.
|