Numerical Investigation of the Flow and Infrared Radiation Characteristics of Nozzles with Transverse Jets of Different Shapes
Abstract
:1. Introduction
2. Physical Models
3. Computational Domain and Boundary Conditions
4. Meshes Generation and Independence
5. Numerical Simulation Method
6. Analysis of the Calculation Results
6.1. The Distribution of the High-Temperature Zone
6.2. Analysis of the Mixing Mechanism of Flow Field
6.3. Infrared Radiation Intensity Distribution
7. Conclusions
- (1)
- Compared with the axisymmetric nozzle, the circular-to-rectangular nozzle induced great mixing and led to a decrease of the high-temperature zone. The induced transverse jets resulted in a mixing enhancement of the hot jet. The high temperature-zones were shortened.
- (2)
- By changing from a circular to a rectangular nozzle, abundant vortices occurred in the near field of the hot jet. Shear vortices near the corners developed rapidly. Hairpin vortices, which formed near the nozzle exit, dissipated quickly.
- (3)
- The transverse jets induced CVP structures, resulting in abundant near-field vortices, increased vortex development speed, and enhanced pulsation of the mainstream boundary layer. They even expanded the penetration range, which led to the instability of the hot jet. Furthermore, the lap winding frequency was higher, large-scale hairpin vortices formed earlier, and the influenced range was wider.
- (4)
- As the transverse jets were introduced into the circular-rectangular nozzle, the infrared radiation significantly decreased. For all angles, when circular transverse jets were introduced, the infrared radiation decreased on the horizontal and vertical planes. Furthermore, when cube and rectangular transverse jets were introduced, the infrared radiation decreased by 28.2% on the horizontal plane and by 25.3% on the vertical plane.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Model-A | Model-B | Model-B1 | Model-B2 | Model-B3 |
---|---|---|---|---|
Asymmetrical nozzle | Circular-rectangular nozzle | Model-B with Round transvers jets | Model-B With square transvers jets | Model-B With rectangular transvers jets |
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Zhang, B.; Lin, Z.; Zhang, J.; Yang, S.; Ji, H. Numerical Investigation of the Flow and Infrared Radiation Characteristics of Nozzles with Transverse Jets of Different Shapes. Processes 2022, 10, 763. https://doi.org/10.3390/pr10040763
Zhang B, Lin Z, Zhang J, Yang S, Ji H. Numerical Investigation of the Flow and Infrared Radiation Characteristics of Nozzles with Transverse Jets of Different Shapes. Processes. 2022; 10(4):763. https://doi.org/10.3390/pr10040763
Chicago/Turabian StyleZhang, Bo, Ziqiang Lin, Jun Zhang, Sheng Yang, and Honghu Ji. 2022. "Numerical Investigation of the Flow and Infrared Radiation Characteristics of Nozzles with Transverse Jets of Different Shapes" Processes 10, no. 4: 763. https://doi.org/10.3390/pr10040763
APA StyleZhang, B., Lin, Z., Zhang, J., Yang, S., & Ji, H. (2022). Numerical Investigation of the Flow and Infrared Radiation Characteristics of Nozzles with Transverse Jets of Different Shapes. Processes, 10(4), 763. https://doi.org/10.3390/pr10040763