Flow Field Effect on the Performance of Direct Formic Acid Membraneless Fuel Cells: A Numerical Study
Abstract
:1. Introduction
2. Numerical Model
2.1. Computational Domain
- (1)
- The three-dimensional system is at steady state and isothermal.
- (2)
- Laminar, incompressible fluid flow and body force is negligible.
- (3)
- The physical properties of the electrodes are isotropic and homogeneous.
- (4)
- The solutions are dilute and uniformly mixed.
- (5)
- Proton transport from anode to cathode is by electromigration only.
- (6)
- Electromigration of formate ions is negligible due to the high concentration of supporting electrolyte.
- (7)
- The product of carbon dioxide is fully dissolved in the solution.
- (8)
- Oxygen transport in the porous gas diffusion electrode is by diffusion only.
2.2. Fluid Flow
2.3. Species Transport
2.4. Electrochemical Reaction Kinetics
2.5. Electric Current Flow
2.6. Solution Procedure
3. Results
Results and Discussion
4. Conclusions
- The air-breathing DFAMFC having identical flow field for both fuel and electrolyte yielded optimal cell output because the similar liquid flow condition on both sides of the anode GDE attributed to uniform formic acid distribution within the anode catalyst layer.
- The air-breathing DFAMFC having SBS flow field for both fuel and electrolyte produced a maximum power density of 10.5 mW/cm2, while the air-breathing DFAMFC having S(1.3) flow field for both fuel and electrolyte produced an open circuit voltage of about 1.0 V owing to few formic acid penetration into the cathode catalyst layer.
- The simulation results concerning the air-feeding DFAMFCs showed that the DFAMFC having SBS liquid flow field and MS(0.8) air flow field yielded highest peak power density of about 12 mW/cm2 at an airflow rate of 500 sccm.
- Considering the power generated by the DFAMFC together with the power consumed by the air pump, the simulation results suggested that the DFAMFC having Pin(0.8) air flow field could be the optimal design, yielding a highest maximum net power density of about 11.9 mW/cm2 and 11.5 mW/cm2 at air flow rates of 200 sccm and 500 sccm, respectively, in the study.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Fuel Cell Type | The Exterior Dimensions of the Model | ||
---|---|---|---|
Air-breathing | 26.8 mm × 24 mm × 2.67 mm | ||
Air-feeding | 26.8 mm × 24 mm × 3.67 mm | ||
Parameters | Symbol | Value (mm) | Source |
Electrode | |||
Electrode width | 20 | – | |
Electrode length | 21.8 | – | |
Anode catalyst layer thickness | 0.1 | – | |
Cathode catalyst layer thickness | 0.1 | – | |
Thickness of anode carbon paper | 0.28 | [24] | |
Thickness of cathode carbon paper | 0.19 | [24] | |
Flow channel | |||
Rib width | 0.8 | – | |
Rib length | 21.8 | – | |
Channel depth | 1 | – | |
Inlet and outlet radius | 1.5 | – | |
Air-breathing holes | |||
Number | 3 × 4 | ||
radius | 2 | – | |
Transverse pitch | 6 | – | |
Longitudinal pitch | 5 | – |
Operating Conditions | Fuel Concentration at Inlet, HCOOH (M) + H2SO4 (M) | Electrolyte Concentration at Inlet, H2SO4 (M) | Fluid (Fuel/Electrolyte) Flow Rate at Inlet (mL/min) | Oxygen Concentration at Inlet and Breathing Holes (M) | Air Flow Rate at Inlet (sccm) |
---|---|---|---|---|---|
Air-breathing | 3 + 1.5 | 1.5 | 2.0 | 8.6 × 10−3 | – |
Air-feeding | 200, 500 |
Parameters | Symbol | Value (mm) | Source | Parameters |
---|---|---|---|---|
Liquid | ||||
Density | 997.6 | kg/m3 | ||
Dynamic viscosity | 8.52 × 10−4 | Pa·s | ||
Diffusion coefficient of formic acid | 2.546 × 10−9 | m2/s | [25] | |
Conductivity of the electrolyte | 59.900996 | S/m | ||
Gas | ||||
Density | 1.1762 | kg/m3 | ||
Dynamic viscosity | 1.8483 × 10−5 | Pa·s | ||
Diffusion coefficient of oxygen within catalyst layer | 2.1 × 10−9 | m2/s | [25] | |
Diffusion coefficient of oxygen within gas diffusion layer | 2.1 × 10−5 | m2/s | [3] | |
Catalyst layer of the anode | ||||
Porosity | 0.28 | – | ||
Permeability | 3.62 × 10−13 | m2 | ||
Conductivity | 1.4 × 104 | S/m | [24] | |
Volume fraction of the electrolyte | 0.024 | – | ||
Gas diffusion layer of the anode (GDL) | ||||
Porosity | 0.672 | – | [24] | |
Permeability | 4.53 × 10−12 | m2 | [24] | |
Tortuosity | 2.55 | – | [24] | |
Conductivity | 1.4 × 104 | S/m | [24] | |
Volume fraction of the electrolyte | 0.035 | – | ||
Catalyst layer of the cathode | ||||
Porosity | 0.3 | – | ||
Permeability | 3.62 × 10−13 | m2 | ||
Conductivity | 5.2 × 102 | S/m | [24] | |
Volume fraction of the electrolyte | 0.024 | – | ||
Gas diffusion layer of the cathode (GDL) | ||||
Porosity | 0.739 | – | [24] | |
Permeability | 3.67 × 10−11 | m2 | [24] | |
Tortuosity | 1.4 | – | [24] | |
Conductivity | 5.2 × 102 | S/m | [24] |
Parameter | Symbol | Value | Units |
---|---|---|---|
Exchange current density of anode | 0.8 | A/m2 | |
Exchange current density of cathode | 0.00018 | A/m2 | |
Active specific area of the anode | 1.0618 × 106 | 1/m2 | |
Active specific area of the cathode | 2.331 × 105 | 1/m2 | |
Charge transfer coefficeint of anode | 0.5 | – | |
Charge transfer coefficeint of cathode | 0.5 | – | |
Reference fuel concentration | 1000 | mol/m3 | |
Reference oxygen concentration | 8.5 | mol/m3 | |
Faraday constant | F | 96,485 | C/mol |
Universal gas constant | R | 8.3145 | J/mol·K |
Ambient temperature | T | 300.15 | K |
Liquid Flow Field | Gas Flow Field | ||
---|---|---|---|
Single Serpentine (S) | Single Serpentine (S) | ||
Stepwise Broadening Serpentine (SBS) | Stepwise Broadening Serpentine (SBS) | ||
Multi-Serpentine (MS) | Multi-Serpentine (MS) | ||
Parallel (P) | Pin (Pin) |
Flow Field Configuration | Channel Width, mm | Rib Width, mm | Channel and Rib Depth, mm | ||
---|---|---|---|---|---|
Liquid | Electrolyte (H2SO4) | Single Serpentine (S) | 0.8 | 0.8 | 1 |
1.3 | |||||
Stepwise Broadening Serpentine (SBS) | 0.8~1.3 | ||||
Fuel (HCOOH + H2SO4) | Single Serpentine (S) | 0.8 | |||
1.3 | |||||
Stepwise Broadening Serpentine (SBS) | 0.8~1.3 | ||||
Multi-Serpentine (MS) | 0.8 | ||||
Parallel (P) | 0.8 | ||||
Gas | Air | Single Serpentine (S) | 0.8 | ||
1.3 | |||||
Stepwise Broadening Serpentine (SBS) | 0.8~1.3 | ||||
Multi-Serpentine (MS) | 0.8 | ||||
Pin (Pin) | 0.8 |
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Shyu, J.-C.; Hung, S.-H. Flow Field Effect on the Performance of Direct Formic Acid Membraneless Fuel Cells: A Numerical Study. Processes 2021, 9, 746. https://doi.org/10.3390/pr9050746
Shyu J-C, Hung S-H. Flow Field Effect on the Performance of Direct Formic Acid Membraneless Fuel Cells: A Numerical Study. Processes. 2021; 9(5):746. https://doi.org/10.3390/pr9050746
Chicago/Turabian StyleShyu, Jin-Cherng, and Sheng-Huei Hung. 2021. "Flow Field Effect on the Performance of Direct Formic Acid Membraneless Fuel Cells: A Numerical Study" Processes 9, no. 5: 746. https://doi.org/10.3390/pr9050746
APA StyleShyu, J. -C., & Hung, S. -H. (2021). Flow Field Effect on the Performance of Direct Formic Acid Membraneless Fuel Cells: A Numerical Study. Processes, 9(5), 746. https://doi.org/10.3390/pr9050746