Characterization of Flow with a V-Shaped NMR Sensor
Abstract
:1. Introduction
2. Materials and Methods
2.1. Methodological Background
2.2. Short Description of the NMR Sensor
2.3. Experimental Setup of the Flow Measurements
2.4. Composition of the Samples
2.5. Measurement Parameters
2.6. Data Analysis
3. Results
3.1. Reference Measurements with Established MRI Methods
3.2. Transverse Relaxation at 22 MHz
3.3. Measurement of Flow Velocities by NMR Signal Phase Shifts
3.4. Flow Behavior Index from Signal Magnitudes
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Sample Name | Composition | Measured with |
---|---|---|
Tap water | Tap water | MRI, V-sensor |
0.4% w/w CMC in water | 0.4% w/w CMC powder in tap water | MRI, V-sensor |
0.8% w/w CMC in water | 0.8% w/w CMC powder in tap water | MRI |
1% w/w CMC in water | 1% w/w CMC powder in tap water | MRI, V-sensor |
40% w/w corn starch in water | 40% w/w corn starch in tap water | V-sensor |
30% w/w graphite in water | 30% w/w graphite powder in tap water | V-sensor |
Diluted anode slurry | 89.6% w/w demineralized water 9.7% w/w graphite 0.39% w/w SBR 0.19% w/w CMC 0.15% w/w CB | MRI |
Anode slurry | 55% w/w demineralized water 41.85% w/w graphite 1.35% w/w SBR 0.795% w/w CMC 0.595% w/w CB | V-sensor |
Parameter | Water, CMC Solutions | Diluted Anode Slurry |
---|---|---|
Echo time τe [ms] | 10 | 2.4 |
Repetition time [ms] | 400 | 400 |
Flip angle [°] | 60 | 60 |
Number of averages [-] | 3 | 4 |
Field of flow [cm/s] | 1 … 15 | 2 … 20 |
Slice thickness [mm] | 2 | 4 |
Image size [-] | 128 × 128 | 128 × 128 |
Parameter | Water, CMC Solutions, Corn Starch Suspension | Anode Slurry, Graphite-in-Water Suspension |
---|---|---|
Echo time τe [ms] | 0.2 … 5.2 | 0.2 … 5.2 |
Number of echoes k [-] | 500 | 150 |
Recycle delay [s] | 10 | 4 |
Receiver gain [dB] | 69 | 72 |
Number of averages [-] | 8 … 16 | 16 … 64 |
Sample | n [-] |
---|---|
Water | 1.0 |
0.4% w/w CMC in water | 1.0 |
0.8% w/w CMC in water | 0.8 |
1% w/w CMC in water | 0.6 |
anode slurry 10.4% w/w | 1.2 |
Sample Name | Transverse Relaxation Rates, Distribution Widths and Fractions |
---|---|
Tap water | R2,mean,eff = 20 s−1 σ = 14 s−1 |
0.4% w/w CMC in water | R2,1 = 36 s−1, R2,2 = 7 s−1 x1 = 0.51, x2 = 0.49 |
1% w/w CMC in water | R2,1 = 37 s−1, R2,2 = 7 s−1 x1 = 0.52, x2 = 0.48 |
Anode slurry | R2,mean,eff = 560 s−1 σ = 540 s−1 |
30% w/w graphite in water | R2,mean,eff = 29 s−1 σ = 18 s−1 |
40% w/w corn starch in water | R2,mean,eff = 83 s−1 σ = 71 s−1 |
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Schmid, E.; Pertzel, T.O.; Nirschl, H.; Guthausen, G. Characterization of Flow with a V-Shaped NMR Sensor. Sensors 2024, 24, 6163. https://doi.org/10.3390/s24196163
Schmid E, Pertzel TO, Nirschl H, Guthausen G. Characterization of Flow with a V-Shaped NMR Sensor. Sensors. 2024; 24(19):6163. https://doi.org/10.3390/s24196163
Chicago/Turabian StyleSchmid, Eric, Tim Oliver Pertzel, Hermann Nirschl, and Gisela Guthausen. 2024. "Characterization of Flow with a V-Shaped NMR Sensor" Sensors 24, no. 19: 6163. https://doi.org/10.3390/s24196163
APA StyleSchmid, E., Pertzel, T. O., Nirschl, H., & Guthausen, G. (2024). Characterization of Flow with a V-Shaped NMR Sensor. Sensors, 24(19), 6163. https://doi.org/10.3390/s24196163