Towards an Accurate Aerodynamic Performance Analysis Methodology of Cross-Flow Fans
Abstract
:1. Introduction
2. Materials and Methods
2.1. CFF Design
- , , , and .
- ;
- .
2.2. Loss Models
- ;
- ;
- ;
- ;
- .
2.2.1. Streamline Analysis
- Skin friction loss—first law: ;
- Skin friction loss—second law: ;
- Re-circulation loss: .
2.2.2. Cascade Principles Applied to Cross-Flow Fans
- ;
- .
- ;
- (Figure 12);
- .
- is the drag coefficient related to the blade profile, represented in the off-design curve, according to the incidence angle in each stage;
- corresponds to an additional loss related to the friction in the blade’s annulus, expressed as ;
- is the drag coefficient, which represents secondary losses, caused by small vortices that surround the blade wall, written as . defines the lift coefficient with the following equation:
- .
3. Results and Discussion
3.1. Performance–Pressure Curves’ Prediction
3.2. Efficiency Investigation
Numerical Simulation
3.3. Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
Symbols | |
A | air |
c | absolute velocity |
friction coefficient | |
g | gravity acceleration |
h | height |
i | incidence angle |
k | coefficient |
kr | radius coefficient |
L | length |
N | rotational speed (rpm) |
S | arc/section |
s/l | space-to-chord ratio |
U, u | rotational speed |
w | relative velocity |
Z | blades number |
absolute flow angle | |
angle defined in Figure 5 | |
relative flow angle | |
blade angle | |
stagger angle | |
deviation | |
pressure head | |
pressure gradient | |
deflection | |
efficiency | |
angle/angular coordinate | |
camber angle | |
power | |
air density | |
flow coefficient | |
pressure coefficient | |
Superscripts | |
nominal operating conditions | |
Subscripts | |
1 | inlet |
2 | outlet |
bl | blade |
center | vortex center |
dif | diffuser |
dis | second stage (discharge) |
Euler | Euler head |
exit | wind tunnel exit |
id | ideal |
in | rotor inner periphery |
loss | pressure loss/head loss |
m | average |
mid | blade midpoint |
out | rotor outer periphery |
r | radial component |
rc | re-circulation |
rot | rotational |
sf | skin friction |
stat | static |
suc | first stage (suction) |
th | theoretical |
thr | throat |
tot | total |
vol | volute |
vor | vortex/vortex wall |
tangential component |
Appendix A
- ,
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Model | Formulation | Description and Characteristics |
---|---|---|
Skin friction loss | Pressure loss due to friction between air, blade wall, and casing inner wall | |
First law | First stage: pump | |
Second law | Second stage: compressor | |
Third law | Inner surface of casing tunnel | |
Incidence loss | Chocks between air and blade tip at the entrance of first stage | |
Expansion loss | Decompression of the air once it is out of the blades inter-space to the tunnel | |
Enlargement loss | Spread of the fluid vein at the exit of the second stage toward the diffuser | |
Re-circulation loss | Related to the existence of the vortex |
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Himeur, R.M.; Khelladi, S.; Ait Chikh, M.A.; Vanaei, H.R.; Belaidi, I.; Bakir, F. Towards an Accurate Aerodynamic Performance Analysis Methodology of Cross-Flow Fans. Energies 2022, 15, 5134. https://doi.org/10.3390/en15145134
Himeur RM, Khelladi S, Ait Chikh MA, Vanaei HR, Belaidi I, Bakir F. Towards an Accurate Aerodynamic Performance Analysis Methodology of Cross-Flow Fans. Energies. 2022; 15(14):5134. https://doi.org/10.3390/en15145134
Chicago/Turabian StyleHimeur, Rania M., Sofiane Khelladi, Mohamed Abdessamed Ait Chikh, Hamid Reza Vanaei, Idir Belaidi, and Farid Bakir. 2022. "Towards an Accurate Aerodynamic Performance Analysis Methodology of Cross-Flow Fans" Energies 15, no. 14: 5134. https://doi.org/10.3390/en15145134
APA StyleHimeur, R. M., Khelladi, S., Ait Chikh, M. A., Vanaei, H. R., Belaidi, I., & Bakir, F. (2022). Towards an Accurate Aerodynamic Performance Analysis Methodology of Cross-Flow Fans. Energies, 15(14), 5134. https://doi.org/10.3390/en15145134