Tow Deformation Behaviors in Resin-Impregnated Glass Fibers under Different Flow Rates
Abstract
:1. Introduction
2. Background and Theory
3. Experimental
4. Results and Discussion
4.1. Permeability Behavior for the Porous Media under Saturated Condition
4.2. Observation of Tow Behaviors with Different Flow Rates
4.2.1. Tow Thickness (Minor Axis of Tow)
4.2.2. Major Axis of Tow
4.3. Microscopic Observation
5. Conclusions
- Permeability increased with increasing flow rate; different permeability values were measured depending on the viscosity with increasing flow rates. Different permeability behaviors of the fluid in double-scale porous media were observed with different fluid viscosities, showing hysteresis between increasing and decreasing flow rates.
- The minor and major axes showed decreasing minimum values and increasing maximum values at different positions, respectively, which were caused by the different hydrodynamic entry lengths.
- The different hydrodynamic forces exerted by the different flow rates resulted in the deformation of the tow as described by the major and minor axis changes.
- Microscopic analysis revealed deformed tows in the fiber bundles; tow fibers and fibers between the tows showed intra-tow and inter-tow regions, respectively.
- The flow in the double-scale porous media consisted of flow passage in the tow bundles, where most fluid passed through the inter-tow spaces and the rest through the intra-tow regions. Flow tended to be dominant in the intra-tow regions, and the tow bundles became more elliptical in shape as the flow rate increased.
- The present research regarding tow deformation in reinforcing fibers can be effectively used in future research on a wide range of LCM manufacturing processes. Our future research will focus on the tow deformation in reinforcing fibers with different treatments.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Item | Properties |
---|---|
Tow width (mm) | 1.5 |
Tow height (mm) | 0.5 |
Tow volume fraction (%) | 0.64 |
Model No. | Specific Gravity 25 °C | Viscosity 25 °C (Pa∙s) | Surface Tension (mN/m) |
---|---|---|---|
KF-96-100 cs | 0.970 | 0.097 | 20.9 |
KF-96-350 cs | 0.970 | 0.340 | 21.1 |
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Choi, S.-W.; Kim, S.-H.; Li, M.-X.; Yang, J.-H.; Yoo, H.-M. Tow Deformation Behaviors in Resin-Impregnated Glass Fibers under Different Flow Rates. Appl. Sci. 2021, 11, 3575. https://doi.org/10.3390/app11083575
Choi S-W, Kim S-H, Li M-X, Yang J-H, Yoo H-M. Tow Deformation Behaviors in Resin-Impregnated Glass Fibers under Different Flow Rates. Applied Sciences. 2021; 11(8):3575. https://doi.org/10.3390/app11083575
Chicago/Turabian StyleChoi, Sung-Woong, Sung-Ha Kim, Mei-Xian Li, Jeong-Hyeon Yang, and Hyeong-Min Yoo. 2021. "Tow Deformation Behaviors in Resin-Impregnated Glass Fibers under Different Flow Rates" Applied Sciences 11, no. 8: 3575. https://doi.org/10.3390/app11083575
APA StyleChoi, S. -W., Kim, S. -H., Li, M. -X., Yang, J. -H., & Yoo, H. -M. (2021). Tow Deformation Behaviors in Resin-Impregnated Glass Fibers under Different Flow Rates. Applied Sciences, 11(8), 3575. https://doi.org/10.3390/app11083575