CIESC Journal ›› 2020, Vol. 71 ›› Issue (9): 3905-3918.DOI: 10.11949/0438-1157.20200542
• Reviews and monographs • Previous Articles Next Articles
Xiaobin JIANG(),Guoxin SUN,Gaohong HE()
Received:
2020-05-09
Revised:
2020-07-14
Online:
2020-09-05
Published:
2020-09-05
Contact:
Gaohong HE
通讯作者:
贺高红
作者简介:
姜晓滨(1984—),男,博士,教授,基金资助:
CLC Number:
Xiaobin JIANG, Guoxin SUN, Gaohong HE. Research progress of high-efficiency membrane distillation crystallization process[J]. CIESC Journal, 2020, 71(9): 3905-3918.
姜晓滨, 孙国鑫, 贺高红. 高效膜蒸馏结晶过程的研究进展[J]. 化工学报, 2020, 71(9): 3905-3918.
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Fig.2 SEM image of C-D35-2 film prepared on the surface of hollow yttrium-stabilized zirconia (YSZ) tube (a); FIB-SEM image of the square in Fig.2(a)(The clear interface between carbon and YSZ is clearly visible. You can also see the nanopores on the carbon side. The pore size near the carbon fiber-ceramic interface is considered to be the smallest, which is determined to be about 31 nm by gas penetration) (b); HRTEM image of typical single carbon nanofibers in C-D35-2 film (The arrow points to the “slubby” structure inside the carbon fiber, which divides the internal space into multiple compartments) (c)[31]
Fig.3 Comparison of nucleation work W of KNO3 in membrane distillation crystallization of different membrane materials and porosities at T = 70℃ (343.15 K) and S = 1.01[32]
Fig.5 Membrane distillation unit: direct contact membrane distillation (DCMD), osmotic membrane distillation (OMD), sweep gas membrane distillation (SGMD), air gap membrane distillation (AGMD) and vacuum membrane distillation (VMD)[34]
Fig.7 Morphology of LiCl crystals obtained by film crystallization: orthogonal polymorph (a), cubic polymorph (b); distribution of cubic and orthogonal structures at various feed temperatures and flow rates[(c)—(e)][47]
Fig.8 Under natural cooling and cooling rate of 0.1 K/min, CSD (bar graph) of different crystallization time of membrane distillation coupled cooling crystallization (KNO3) (a), optical microscope image of the crystal [magnification 100 times (b), magnification 40 times (c)]; under membrane assisted crystallization and cooling rate of 0.2 K/min, CSD of different crystallization time of membrane distillation coupled cooling crystallization (KNO3) (d), optical microscope image of the crystal [magnification 100 (e), magnification 40 times (f)]; under rapid cooling crystallization and cooling rate of 0.33 K/min, CSD of different crystallization time of membrane distillation coupled cooling crystallization (KNO3) (g),the optical microscope image of the crystal [magnification 100 times (h), magnified 40 times (i)] (The dot line in the figure: the kinetic simulation results obtained by the MATLAB programming to establish the particle number balance equation; Ni/Ntotal: the percentage of the number of crystals of different sizes; the number marked at the peak: C.V.; lˉ: the average crystal size)[32]
Fig.11 Simultaneous recovery and crystallization control of EG and organic saline wastewater in MDC: experimental device (a); permeation flux, EG and NaCl rejection rate under repeated experiments (b); comparison of the properties of crystal particles obtained by MDC and vacuum evaporation crystallization (VEC) (c)[58]
Fig.13 Schematic diagram of HCMs membrane crystallization process(a); schematic diagram of membrane module unit decomposition(b); multi-channel continuous experiment platform(c); crystal nucleation regulation and highly selective growth mechanism and experimental results of PEGDA-NIPAM HCMs(d) [69]
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