Research on Pulsed Jet Flow Control without External Energy in a Blade Cascade
Abstract
:1. Introduction
2. The Novel Concept of Pulsed Jet without External Energy Injection
2.1. Analysis of Typical Unsteady Flow Control Schemes
2.2. Introduction of the Novel Concept of Pulsed Jet without External Energy Injection
3. Numerical Simulation and Analysis of Flow Control in Cascade by a Pulsed Jet without External Energy Injection
3.1. Numerical and Flow Field Analysis (POD) Method
3.1.1. Numerical Method
3.1.2. Flow Field Analysis Method (POD)
3.2. Numerical Simulation and POD Analysis of Unsteady Flow in the Cascade without Flow Control
3.3. Numerical Simulation and POD Analysis of Unsteady Flow in the Cascade with Steady and Pulsed Jet Flow Control
4. Experimental Verification of Pulsed Jet Flow Control in Cascades
4.1. Test and Measurement System
4.2. Experimental Analysis of Flow Characteristics in the Cascade without and with Flow Control
5. Conclusions
- (1)
- A novel pulsed jet flow control method without external energy injection is brought up in this paper. The new concept employs a micro switch to control the slot in the blade on and off to generate the pulsed jet of a certain frequency by the pressure difference between the pressure side and suction side of the blade. The corresponding cascade model is established for numerical and experimental studies.
- (2)
- Large eddy simulation is held referring to this cascade with and without pulsed jet flow control on it. The numerical simulations show that when the frequency of pulsed jet is approximate to that of separation vortex, the control effect is more visible.
- (3)
- The POD method is used to analyze the complex unsteady flow field. The different POD modes represent the different scale flow structures. Based on conducted research, the first mode represents the structure of time-averaged flow, and the second and third modes together represent the separation vortices. Other modes represent other more small-scale and complex vortex structures.
- (4)
- Through the POD method, the main function of the unsteady pulsed jet control is seen to reallocate the kinetic energy of each mode, and enhancing or weakening certain modes. Based on the valid parameters of the pulsed jet, the kinetic energy of the higher modes will be transferred to first mode (time-averaged flow), using second and third modes (separation vortices), making flow field more simple and orderly.
- (5)
- The corresponding experiment results show that when the frequency of the pulsed jet is approximate to that of separation vortex, the loss coefficient of the average total pressure decreases to a minimum (about 5.5% in the experiment). This verifies the numerical simulation and the feasibility of this novel pulsed jet control without external energy injection.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Chord Length c/mm | Height/mm | Solidity |
---|---|---|
60 | 80 | 1.333 |
inlet blade angle/° | outlet blade angle/° | angle of attack/° |
46 | −10 | +9 |
inlet mach number | inlet Reynolds number | - |
0.1 | 1.36 × 105 | - |
positon of jet x/c | width of jet/mm | angle of jet/° |
69% | 0.2 | 20 |
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Chen, J.; Lu, W.; Huang, G.; Zhu, J.; Wang, J. Research on Pulsed Jet Flow Control without External Energy in a Blade Cascade. Energies 2017, 10, 2004. https://doi.org/10.3390/en10122004
Chen J, Lu W, Huang G, Zhu J, Wang J. Research on Pulsed Jet Flow Control without External Energy in a Blade Cascade. Energies. 2017; 10(12):2004. https://doi.org/10.3390/en10122004
Chicago/Turabian StyleChen, Jie, Weiyu Lu, Guoping Huang, Jianfeng Zhu, and Jinchun Wang. 2017. "Research on Pulsed Jet Flow Control without External Energy in a Blade Cascade" Energies 10, no. 12: 2004. https://doi.org/10.3390/en10122004