Influence of Disc Tip Geometry on the Aerodynamic Performance and Flow Characteristics of Multichannel Tesla Turbines
Abstract
:1. Introduction
2. Numerical Approach
2.1. Geometry Model and Boundary Conditions
2.2. Numerical Solver and Mesh Sensitivity
3. Results and Discussion
3.1. Comparison of the Influence of Sharp Tips and Blunt Tips on Two Kinds of Tesla Turbines
3.2. Influence of Relative Height and Sharp Tip Profile on the One-to-Many Turbine
4. Results
- (1)
- Compared to the turbine with blunt disc tips, the isentropic efficiency of the one-to-one turbine with sharp disc tips reduces a little, while that of the one-to-many turbine with sharp disc tips increases remarkably. It decreases by 3.6% for the one-to-one turbine and increases by 13.5% for the one-to-many turbine at 30,000 r/min. The flow coefficient of the one-to-one turbine with sharp tips is almost the same, while that of the one-to-many turbine with sharp tips is a little lower. For all rotational speeds, it varies less than 0.02% for the one-to-one turbine, and decreases about 7–10% for the one-to-many turbine.
- (2)
- Compared to the one-to-one turbine with blunt tips, the flow field is almost the same for the turbine with sharp tips; the relative tangential velocity gradient on disc walls is a little less and some vortices exist at the inlet of the disc channels, leading to less momentum exchange and more energy loss for the turbine with sharp tips. Compared to the one-to-many turbine with blunt tips, the flow angle relative to the tangential direction in the disc channels of the turbine with sharp tips is much less, leading to higher relative tangential velocity and more momentum exchange; the area of low Mach number and vortex reduces, leading to less energy loss.
- (3)
- For the one-to-many turbine, the isentropic efficiency of the turbine with sharp tips increases with relative height, which must be higher than that with blunt tips, and its relative increase value is 8.9%–16.6% at 30,000 r/min. The increment rate of the isentropic efficiency with sharp tips slows down with increasing relative height, and it decreases from 0.033 to 0.013 at 30,000 r/min as the relative height increases from 0.2887, 0.5 to 0.8660. In addition, the circular or elliptic tips perform better at lower relative height, and a triangular tip behaves better at higher relative height.
- (4)
- Compared to the one-to-many turbine with blunt tips, the improvement of flow field within the turbine with sharp tips becomes much better with increasing relative height, and in detail, the flow angle in the disc channels decreases and the area of low flow velocity reduces, leading to an increase in isentropic efficiency.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
b | disc spacing distance, mm |
c | radial clearance of nozzle-rotor chamber, mm |
cp | specific heat at constant pressure, J/kg·K |
Cm | flow coefficient |
CP | specific power, kJ/kg |
CT | torque coefficient |
d | diameter, mm |
h | sharp height, mm |
h/t | relative height |
m | mass flow rate, kg/s |
Ma | Mach number |
n | rotational speed of the rotor, r/min |
N | number |
ratio of total pressure at the nozzle inlet to pressure at the turbine outlet | |
P | power, W |
Q | Q criterion |
r | radial coordinate or radius, mm |
t | disc thickness, mm |
T | torque, N·m |
Tnt | total temperature at the nozzle inlet, K |
u | average tangential velocity, m/s |
three velocity components in directions, m/s | |
v | average radial velocity, m/s |
W | relative tangential velocity, m/s |
Cartesian coordinate axis, m | |
z | axial coordinate, mm |
nozzle exit geometrical angle (relative to the tangential direction), ° | |
adiabatic index | |
relative variation of parameters | |
isentropic enthalpy drop of the whole turbine, J/kg | |
isentropic efficiency | |
circumferential coordinate, rad | |
density, kg/m3 | |
rotational angular speed, rad/s | |
Subscripts | |
d | disc |
dc | disc channel |
i | inner |
n | nozzle |
o | outer |
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Model Name | Turbine Type | Disc Tip Profile | h/t [-] |
---|---|---|---|
OTO-B | One-to-one turbine | Blunt tip | - |
OTO-T-2 | One-to-one turbine | Triangular tip | 0.5 |
OTM-B | One-to-many turbine | Blunt tip | - |
OTM-T-1 | One-to-many turbine | Triangular tip | 0.2887 |
OTM-T-2 | One-to-many turbine | Triangular tip | 0.5 |
OTM-T-3 | One-to-many turbine | Triangular tip | 0.8660 |
OTM-C-2 | One-to-many turbine | Circular tip | 0.5 |
OTM-E-3 | One-to-many turbine | Elliptic tip | 0.8660 |
Parameter | Symbol | Value | Unit |
---|---|---|---|
Nozzle number | Nn | 2 | (-) |
Disc outer diameter | do,d | 100 | (mm) |
Disc inner diameter | di,d | 38.4 | (mm) |
Disc thickness | t | 1 | (mm) |
Disc spacing distance | b | 0.5 | (mm) |
N-R radial clearance | c | 0.25 | (mm) |
Disc number | Nd | 5 | (-) |
Disc channel number | Ndc | 6 | (-) |
Nozzle exit geometrical angle | α | 10 | (°) |
Turbine pressure ratio | 3.42 | (-) | |
Total temperature at turbine inlet | Tnt | 373 | (K) |
Case No. | Stator (Nozzle/N-R Chamber) | Rotor (Each Disc Channel) | ||
---|---|---|---|---|
Number of Nodes | Total Node Number | Number of Nodes | Total Node Number | |
Grid Case 1 | (55/13) × (36/269) × 99 | 526,516 | 65 × 288 × 23 | 400,660 |
Grid Case 2 | (67/17) × (45/335) × 107 | 923,517 | 81 × 333 × 29 | 782,217 |
Grid Case 3 | (87/21) × (57/417) × 135 | 1,830,306 | 102 × 417 × 37 | 1,581,306 |
Case No. | Node Number (million) | (kg/s) | (W) | (-) | |||
---|---|---|---|---|---|---|---|
Grid Case 1 | 1.72 | 0.03576 | 0.619 | 596.0 | 1.568 | 0.1504 | 0.940 |
Grid Case 2 | 3.27 | 0.03562 | 0.225 | 588.6 | 0.307 | 0.1491 | 0.067 |
Grid Case 3 | 6.57 | 0.03554 | 0 | 586.8 | 0 | 0.1490 | 0 |
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Qi, W.; Deng, Q.; Chi, Z.; Hu, L.; Yuan, Q.; Feng, Z. Influence of Disc Tip Geometry on the Aerodynamic Performance and Flow Characteristics of Multichannel Tesla Turbines. Energies 2019, 12, 572. https://doi.org/10.3390/en12030572
Qi W, Deng Q, Chi Z, Hu L, Yuan Q, Feng Z. Influence of Disc Tip Geometry on the Aerodynamic Performance and Flow Characteristics of Multichannel Tesla Turbines. Energies. 2019; 12(3):572. https://doi.org/10.3390/en12030572
Chicago/Turabian StyleQi, Wenjiao, Qinghua Deng, Zhinan Chi, Lehao Hu, Qi Yuan, and Zhenping Feng. 2019. "Influence of Disc Tip Geometry on the Aerodynamic Performance and Flow Characteristics of Multichannel Tesla Turbines" Energies 12, no. 3: 572. https://doi.org/10.3390/en12030572
APA StyleQi, W., Deng, Q., Chi, Z., Hu, L., Yuan, Q., & Feng, Z. (2019). Influence of Disc Tip Geometry on the Aerodynamic Performance and Flow Characteristics of Multichannel Tesla Turbines. Energies, 12(3), 572. https://doi.org/10.3390/en12030572