Analysis of Flow Field Characteristics in the Three-Phase Jet Fire Monitor Head
Abstract
:1. Introduction
2. Materials and Methods
2.1. Modeling of the TPJFM Head
2.2. Numerical Simulation Methods
2.3. Analysis of Characteristics of the IFF of TPJFM Head
3. Results and Discussion
3.1. Analysis of the Influence of the Powder-Pipe Bending Angle on the TPJFM IFF
3.2. Analysis of the Influence of Supporting Blade Length on the Flow Field inside the TPJFM Head
3.3. Analysis of the Influence of the Distance between the Supporting Blade and the Bending Section of the Powder Nozzle on the Flow Field inside the TPJFM Head
4. Conclusions
- As Ap increases from 90° to 120°, the peak value of TKE in the IFF decreases significantly. The average TKE at the nozzle outlet decreases by 20%, and the PD at the inlet and outlet of the flow passage in the monitor head decreases by 1.73%. This indicates that increasing Ap within a certain range can effectively reduce energy losses. Although the uniformity index γo of the nozzle increases slightly with the increase in Ap, the velocity difference between the upper and lower parts of the IFF decreases by 83.2%, and the velocity difference between the upper and lower sides of the nozzle outlet decreases significantly. The velocity distribution uniformity of the IFF is significantly improved. Increasing the powder-pipe bending angle is beneficial for improving the stability of the nozzle jet under the premise of ensuring the processability of the TPJFM head.
- Increasing the length of the supporting blade is beneficial for reducing the average TKE at the nozzle outlet, but has little effect on the uniformity of the velocity distribution at the nozzle outlet and the PD at the inlet and outlet of the TPJFM head. With the increase in Lf, the velocity components in the X and Y directions at the cross-section d decrease significantly, and the average TKE at this location decreases by 22.37%. The local TKE in the IFF decreases significantly. Within the limited space of the supporting blade, increasing its length can reduce local pressure loss to a certain extent.
- As Lpf increases from 25 mm to 75 mm, the TKE gradually decreases. The average TKE of cross-section c and cross-section d decreases by 21% and 48%, respectively. The nozzle outlet velocity distribution uniformity index reaches its optimum when Lpf = 45 mm. The average TKE at the nozzle outlet decreases by 22%, and the PD at the inlet and outlet of the flow passage in the TPJFM head decreases by 0.9%. Comprehensive analysis shows that when Lpf = 65 mm, the nozzle outlet can obtain a higher velocity distribution uniformity and lower TKE, while keeping the PD at the inlet and outlet of the flow passage in the monitor head at a low level.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Symbol | Structure Name | Size |
---|---|---|
Ap | Powder-pipe bending angle | 90° |
Ac | Nozzle contraction angle | 20° |
Lf | Supporting blade length | 60 mm |
Lpf | Distance between the supporting blade and the bending section of the powder nozzle | 35 mm |
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Ge, H.; Zhang, L.; Zhang, X.; Jiao, L. Analysis of Flow Field Characteristics in the Three-Phase Jet Fire Monitor Head. Appl. Sci. 2024, 14, 8300. https://doi.org/10.3390/app14188300
Ge H, Zhang L, Zhang X, Jiao L. Analysis of Flow Field Characteristics in the Three-Phase Jet Fire Monitor Head. Applied Sciences. 2024; 14(18):8300. https://doi.org/10.3390/app14188300
Chicago/Turabian StyleGe, Hongen, Liye Zhang, Xin Zhang, and Longfei Jiao. 2024. "Analysis of Flow Field Characteristics in the Three-Phase Jet Fire Monitor Head" Applied Sciences 14, no. 18: 8300. https://doi.org/10.3390/app14188300
APA StyleGe, H., Zhang, L., Zhang, X., & Jiao, L. (2024). Analysis of Flow Field Characteristics in the Three-Phase Jet Fire Monitor Head. Applied Sciences, 14(18), 8300. https://doi.org/10.3390/app14188300