Characteristics of a Fluidic Oscillator with Low Frequency and Low Speed and Its Application to Stall Margin Improvement
Abstract
:1. Introduction
2. Research Subjects and Methodology
2.1. Research Subjects
2.1.1. Low-Speed Axial Compressor Test Rig TA 36
2.1.2. Oscillator Configuration
2.2. Experiment Methods
2.2.1. Oscillator Test Bench
2.2.2. Test Casing
2.2.3. Oscillator–Compressor Experimental System
3. Results
3.1. Oscillator Characteristics
3.1.1. Frequency Response
3.1.2. Velocity Response
3.1.3. Mass Flow Response
3.2. Stall Control Application
3.2.1. Parameter Definition and Experimental Repeatability Verification
3.2.2. Effect of Oscillators on Compressor Stability
4. Discussion
- The response frequency is adjustable and decoupled with pressure. An empirical formula between frequency/period and the feedback channel length is established, which is helpful to predict and select the of corresponding target frequency.
- The oscillators generate micro tip injections, which have almost no impact on the compressor characteristics compared with cases only using test casing, while it can obtain an unsteady stall margin expansion effect of two magnitudes greater than the excitation itself. In this study, the injected mass flow is only 0.08% of the compressor’s design mass flow, and the unsteady stall margin expansion is 3.45%.
5. Conclusions
- The oscillator configuration meets the requirements of unsteady micro tip injection experiments, which can cover the instability characteristic frequencies of TA36 by changing the feedback channel length. When ranges from 1.1 to 2.0, the maximum velocity ranges from 30 m/s to 80 m/s, which is smaller than the flow velocity in the rotor tip region. The flow rate of a single oscillator only varies from 0.017‰ to 0.059‰ of the compressor design flow rate, which causes low flow loss in the compressor.
- The frequency/period of oscillator configuration is decoupled with the variation of inlet pressure. Furthermore, an empirical formula between frequency/period and the feedback channel length is summarized, which is helpful to select the corresponding target frequency in actual application.
- The unsteady active stall margin control with the usage of fluid oscillators is feasible. When the excitation frequency of oscillators is RRF, the improvement of the compressor stall margin is 3.45%, in which the excitation flow and excitation momentum of oscillators are 0.08% and 0.27% of the compressor designed flow rate, respectively.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Aerodynamic Parameter | Value |
---|---|
Design speed (rpm) | 2930 |
Design mass flow (kg/s) | 6.5 |
Design efficiency | 92% |
Pressure ratio | 1.0267 |
Geometrical Parameter | Rotor | Stator |
---|---|---|
Number of blades | 20 | 27 |
Aspect ratio | 1.18 | 1.40 |
Tip clearance (mm) | 0.6 | 0.5 |
Tip diameter (mm) | 600 | 600 |
Hub clearance (mm) | 346 | 401 |
Stagger angle at hub (°) | 45 | 0 |
Symbol | Value | Parameter |
---|---|---|
t | 0.2 | Throat width and depth ratio |
h | 0.35 | Control port height and depth ratio |
w1 | 1 | Outlet width and depth ratio |
w2 | 12 | Outlet distance and depth ratio |
L1 | 40 | Oscillator height and depth ratio |
L2 | 20 | Oscillator width and depth ratio |
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Liu, Z.; Pan, T.; Wang, S.; Yan, Z. Characteristics of a Fluidic Oscillator with Low Frequency and Low Speed and Its Application to Stall Margin Improvement. Actuators 2022, 11, 341. https://doi.org/10.3390/act11120341
Liu Z, Pan T, Wang S, Yan Z. Characteristics of a Fluidic Oscillator with Low Frequency and Low Speed and Its Application to Stall Margin Improvement. Actuators. 2022; 11(12):341. https://doi.org/10.3390/act11120341
Chicago/Turabian StyleLiu, Zhuoqi, Tianyu Pan, Shiqi Wang, and Zhaoqi Yan. 2022. "Characteristics of a Fluidic Oscillator with Low Frequency and Low Speed and Its Application to Stall Margin Improvement" Actuators 11, no. 12: 341. https://doi.org/10.3390/act11120341
APA StyleLiu, Z., Pan, T., Wang, S., & Yan, Z. (2022). Characteristics of a Fluidic Oscillator with Low Frequency and Low Speed and Its Application to Stall Margin Improvement. Actuators, 11(12), 341. https://doi.org/10.3390/act11120341