Experimental Detection of Particle Structures Detachment from a Stretchable Single Fiber during Multiple Consecutive Stretching Cycles
Abstract
:1. Introduction
2. Materials and Methods
2.1. Fibre and Particulate Material
2.2. Aerosol Generation and Loading Procedure
2.3. Multiple Stretching Cycle
2.4. Large Structure Detection System
2.5. Determination of Cumulative Fraction of Detached Particle Structure from Total Structure and Residual Structure on Fiber
3. Results and Discussion
3.1. Variation of Particle Loading Time
3.2. Influence of Elongation Velocity
3.3. Development of Structure Size
4. Conclusions and Outlook
- The application of multiple excitation cycle induces shear stress multiple times to the particle structure therefore enables complete detachment of the huge and compact particle structure from the stretchable filter fiber at low gas flow velocities of 0.05 m s.
- High initial particle loading (15 min) on the fiber induces detachment of larger particle structures from the fiber than for small initial particle loading (5 min) due to development of larger crack distances l during the stretching procedure and more particulate material on the fiber. The detected particle structures will be able to pass gaps between fibers in a total fibrous filter.
- For high initial particle loading on the fiber, the detachment of structures starts at lower fiber elongation than for small particle structures on the fiber, regardless the superficial velocity. This fact suggests with a higher loading within the total filter, less stretching distance is required for the same detachment success.
- For small initial structures on the fiber, an increase in elongation velocity causes earlier detachment of particle fragments during the first and the 2nd–5th stretching cycle due to faster development of cracks within the particulate structure.
- Detachment of particle structures occurs more likely after failure of cohesion—A small residual layer of particles remains on the fiber after the first stretching cycle due to adhesion.
- The number of required stretching cycles for “complete detachment” is reduced by the increase of the elongation velocity.
- The combination of low elongation velocity and low superficial velocity favours detachment of small particle structures from the fiber that can move into downstream layers of a potential filter.
- For the experiments with an elongation velocity of 0.6 mm s and a small initial structure on the fiber, detachment only is detected in the 2nd–5th cycle, regardless of the superficial velocity.
- Regardless the superficial velocity during the fiber stretching procedure, the size of is increased by an increase of elongation velocity.
- With an external excitation, detachment of glass particle structures smaller than 100 m are observed at flow velocities of 0.05 m s.
- Detachment of particle structures (piles of particles) is initiated at a superficial velocity below 1.2 m s due to the multiple external excitation (fiber stretching) which causes emerging cracks and the break up of the initial structure on the fiber.
- Detachment of particle fragments is increased due to external excitation within the range of operation filtration velocity. The size of detached structures presumes that detachment within a filter is possible, but probably no penetration through the entire filter will occur.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
DFG | Deutsche Forschungsgemeinschaft |
LSDS | Large Structure Detection System |
pro. a. | Projection Area |
PM | Photomultiplier |
MFC | Mass Flow Controller |
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Fibre Loading Time/min | Average Flow Velocity during Loading Procedure/m s | Superficial Velocity () during the Stretching/Relaxation Process/m s | Elongation Velocity (e)/mm s |
---|---|---|---|
5; 15 | 1.2 | 0.05; 0.2; 0.8 | 0.6; 1.2; 2.0; 12.0 |
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Poggemann, L.; Meyer, J.; Dittler, A. Experimental Detection of Particle Structures Detachment from a Stretchable Single Fiber during Multiple Consecutive Stretching Cycles. Separations 2022, 9, 168. https://doi.org/10.3390/separations9070168
Poggemann L, Meyer J, Dittler A. Experimental Detection of Particle Structures Detachment from a Stretchable Single Fiber during Multiple Consecutive Stretching Cycles. Separations. 2022; 9(7):168. https://doi.org/10.3390/separations9070168
Chicago/Turabian StylePoggemann, Lukas, Jörg Meyer, and Achim Dittler. 2022. "Experimental Detection of Particle Structures Detachment from a Stretchable Single Fiber during Multiple Consecutive Stretching Cycles" Separations 9, no. 7: 168. https://doi.org/10.3390/separations9070168
APA StylePoggemann, L., Meyer, J., & Dittler, A. (2022). Experimental Detection of Particle Structures Detachment from a Stretchable Single Fiber during Multiple Consecutive Stretching Cycles. Separations, 9(7), 168. https://doi.org/10.3390/separations9070168