Investigation of the Convective Mass Transfer Characteristics in a Parallel-Plate Channel Flow Disturbed by Using a Selenoid Pulse Generator
Abstract
1. Introduction
2. Materials and Methods
2.1. Experimental Set-Up
2.2. Selenoid Pulse Generator and Its Location in the Channel
2.3. Parallel-Plate Flow Channel
2.4. Parameters and Levels Used in the Study
2.5. Measurement Technique and Test Bench
2.6. Uncertainty Analysis
3. Results and Discussion
3.1. Effect of the Flow Re Number on the Distribution of Mass Transfer Coefficients
3.2. Effect of the (OP/CL) Ratio on the Distribution of Mass Transfer Coefficients
3.3. The Effect of Pulse Number on the Distribution of the Mass Transfer Coefficients
3.4. The Comparison of the Peak Mass Transfer Coefficient Values (kp) with the Literature Data
3.5. The Turbulent Kinetic Energy Level for Channel Flow
3.6. Sherwood Correlation
4. Conclusions
- (1)
- An attempt was made to determine the effect of Re by considering the Mode-1 values in Table 6. The highest k distribution was obtained at Re = 2860 at the (1/1) situation. It was found that the distributions of k versus (z/H) increased as the Re values were increased from 950 to 2860;
- (2)
- The effect of the second parameter, the (OP/CL) ratio, was evaluated on the mass transfer coefficient (k) across the entire range of Reynolds numbers studied. The results indicated that the highest mass transfer coefficients, up to Re = 1905, were achieved at an (OP/CL) of (1/5). In contrast, for Reynolds values greater than 1905, the highest mass transfer coefficients were attained at an (OP/CL) of (1/2). Conversely, the lowest mass transfer coefficients were recorded for an (OP/CL) of (1/0.5) across the entire range of Re numbers;
- (3)
- Additionally, an investigation into the effect of the pulse number on mass transfer coefficients at Re = 2860 revealed that the Mode-2 flow produced higher average mass transfer coefficient (kM) values compared to Mode-1 within the 10–45 pulse range;
- (4)
- Inserting one or more selenoid pulse generators in a parallel-plate flow channel (reactor) has increased the convective mass transfer rate significantly. Although only the laminar flow conditions have been supplied in the parallel-plate flow channel, the convective mass transfer rate has increased because of vortices produced by a selenoid pulse generator;
- (5)
- It was concluded that the flow kinetic energy measured using an active technique in the present study was approximately 27 times greater than that recorded in Harinaldi’s study [9], which utilized a passive technique;
- (6)
- In the literature [5], it has been observed that the convective peak mass transfer coefficients increased by 25.5% for a Reynolds value of 2856 compared to the no-flow condition. In the present study, for a Reynolds number of 2860, the mass transfer coefficients for the pulsed flow with (OP/CL) equals (1/2) increased by 159% compared to the no pulsed flow.
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
ELDCT | Electrochemical limiting diffusion current technique |
OP/CL | Open/closed ratio |
z/H | Dimensionless distance along the channel |
H | The channel height, m |
z | Length of measurement area in flow direction, (m) |
L | Length of test zone |
DC | Direct Current |
PC | Personal computer |
k | Local convective mass transfer coefficient, (m/s) |
kp | Peak convective mass transfer coefficient, (m/s) |
kM | Mean convective mass transfer coefficient, (m/s) |
ILC | The limiting current, A |
A | Electrode active surface area, m2 |
n | Number of transferred electrons in redox reaction |
F | Faraday coefficient, 96,487 C mol−1 |
C∞ | Bulk concentration of ferricyanide in the electrolyte, (mol m−3) |
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Parameters | |||||||
---|---|---|---|---|---|---|---|
Reynolds Number | 950 | 1430 | 1905 | 2380 | 2860 | ||
(OP/CL) ratios | Mode-1 | 0.5/1 | 1/1 | 2/1 | 3/1 | 4/1 | 5/1 |
Mode-2 | 1/0.5 | 1/1 | 1/2 | 1/3 | 1/4 | 1/5 | |
Pulse numbers in 60 s | 45 | 30 | 20 | 15 | 12 | 10 |
Residence Times for Each (OP/CL) Ratios | |||||||
---|---|---|---|---|---|---|---|
Mode-1 | OP/CL | 0.5/1 | 1/1 | 2/1 | 3/1 | 4/1 | 5/1 |
Open residence time, (s) | 0.5 | 1 | 2 | 3 | 4 | 5 | |
Closed residence time, (s) | 1 | 1 | 1 | 1 | 1 | 1 | |
Mode-2 | OP/CL | 1/0.5 | 1/1 | 1/2 | 1/3 | 1/4 | 1/5 |
Open residence time, (s) | 1 | 1 | 1 | 1 | 1 | 1 | |
Closed residence time, (s) | 0.5 | 1 | 2 | 3 | 4 | 5 |
Property | Value | Unit |
---|---|---|
Density, ρ | 1025.9 | kg/m3 |
Viscosity, µ | 866.3 | kg/ms |
Concentration of ferricyanide | 5 | mol/m3 |
Schmidth number | 1583 | |
Channel cross-sectional area | 4 × 10−4 | m2 |
The height of blockage blade | 1 × 10−2 | m |
Micro-electrode area | 7.07 × 10−6 | m2 |
S. No. | Uncertainty Equation | Uncertainty % | |
---|---|---|---|
1 | 6.4 | ||
2 | 5.7 | ||
3 | 10.5 |
OP/CL | Percentage of Increment Ratio of the Peak k Values (%) | |
---|---|---|
No pulsed flow | - | 179 |
Pulsed flow | 0.5/1 | 206 |
1/1 | 244 | |
2/1 | 222 | |
3/1 | 252 | |
5/1 | 260 |
(OP/CL) ratios | Mode-1 | 0.5/1 | 1/1 | 2/1 | 3/1 | 4/1 | 5/1 |
Mode-2 | 1/0.5 | 1/1 | 1/2 | 1/3 | 1/4 | 1/5 | |
Pulse numbers in 60 s. | 45 | 30 | 20 | 15 | 12 | 10 |
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Arzutuğ, M.E. Investigation of the Convective Mass Transfer Characteristics in a Parallel-Plate Channel Flow Disturbed by Using a Selenoid Pulse Generator. Processes 2025, 13, 1700. https://doi.org/10.3390/pr13061700
Arzutuğ ME. Investigation of the Convective Mass Transfer Characteristics in a Parallel-Plate Channel Flow Disturbed by Using a Selenoid Pulse Generator. Processes. 2025; 13(6):1700. https://doi.org/10.3390/pr13061700
Chicago/Turabian StyleArzutuğ, Mehmet Emin. 2025. "Investigation of the Convective Mass Transfer Characteristics in a Parallel-Plate Channel Flow Disturbed by Using a Selenoid Pulse Generator" Processes 13, no. 6: 1700. https://doi.org/10.3390/pr13061700
APA StyleArzutuğ, M. E. (2025). Investigation of the Convective Mass Transfer Characteristics in a Parallel-Plate Channel Flow Disturbed by Using a Selenoid Pulse Generator. Processes, 13(6), 1700. https://doi.org/10.3390/pr13061700