Formation of Polysulfone Hollow Fiber Membranes Using the Systems with Lower Critical Solution Temperature
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Preparation of Polymer Solutions
2.3. Cloud Point Measurements
2.4. PSF Solution Viscosity
2.5. Hollow Fiber Membrane Formation
2.6. Measurement of Pure Water Flux of Hollow Fiber Membranes
2.7. Study of Hollow Fiber Membrane Structure
2.8. Contact Angle Measurements
2.9. Determination of Hollow Fiber Burst Pressure
3. Results
3.1. Investigation of the Phase State of PSF-PEG-400-PVP-DMA Solutions
3.2. Hollow Fiber Membrane Formation
3.3. Hollow Fiber Membrane Structure Studies
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Spinneret dimensions (mm) | Inner diameter (ID) = 1.0 Outer diameter (OD) = 1.8 |
Dope solution flow rate (g min−1) | 6.0–7.0 |
Bore fluid | Distilled water |
Bore fluid temperature, (°C) | 30–80 |
Bore fluid flow rate (ml min−1) | 10–30 |
External coagulant | Tap water |
External coagulant temperature, (°C) | 20 |
Dope temperature, (°C) | 20 and 45 |
Air gap length, (m) | 0.9–1.0 |
Ambient temperature, (°C) | 20 |
Humidity, (%) | 70 |
Abbreviation | Dope Solution Composition, wt.% | LSCT, °C | Tdope, °C | η (25 °C), Pa∙s | Tbore fluid, °C | PWF, L∙m−2∙h−1 | ||
---|---|---|---|---|---|---|---|---|
PSF | PEG-400 | PVP K-30 | ||||||
A | 20 | 38 | 0.75 | 60 | 20 | 21.0 | 30 | 350 |
59 | 370 | |||||||
83 | 520 | |||||||
B | 22 | 38 | 1.0 | 55 | 20 | 54.5 | 30 | 390 |
50 | 410 | |||||||
70 | 480 | |||||||
80 | 540 | |||||||
C | 24 | 38 | 1.0 | 50 | 45 | 110.0 | 50 | 180 |
70 | 250 | |||||||
80 | 1200 |
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Plisko, T.V.; Bildyukevich, A.V.; Zhao, L.; Huang, W.; Volkov, V.V.; Huang, Z. Formation of Polysulfone Hollow Fiber Membranes Using the Systems with Lower Critical Solution Temperature. Fibers 2021, 9, 28. https://doi.org/10.3390/fib9050028
Plisko TV, Bildyukevich AV, Zhao L, Huang W, Volkov VV, Huang Z. Formation of Polysulfone Hollow Fiber Membranes Using the Systems with Lower Critical Solution Temperature. Fibers. 2021; 9(5):28. https://doi.org/10.3390/fib9050028
Chicago/Turabian StylePlisko, Tatiana V., Alexandr V. Bildyukevich, Liang Zhao, Weiqing Huang, Vladimir V. Volkov, and Zuohua Huang. 2021. "Formation of Polysulfone Hollow Fiber Membranes Using the Systems with Lower Critical Solution Temperature" Fibers 9, no. 5: 28. https://doi.org/10.3390/fib9050028
APA StylePlisko, T. V., Bildyukevich, A. V., Zhao, L., Huang, W., Volkov, V. V., & Huang, Z. (2021). Formation of Polysulfone Hollow Fiber Membranes Using the Systems with Lower Critical Solution Temperature. Fibers, 9(5), 28. https://doi.org/10.3390/fib9050028