Mechanism of Evolution of Shock Wave of Muzzle Jet under Initial Interference and Its Simplified Model
Abstract
:1. Introduction
2. Model of Numerical Simulation
2.1. Equations and Turbulence Model
2.2. Model of Physical Structure
2.3. Grid Model
2.4. Boundary Conditions and Solution Methods
2.5. Models of Interior Ballistics and Aftereffects
2.6. Dynamic Mesh Method
2.7. Grid Independence Verification
3. Experiments
3.1. Test Equipment and Plan
3.2. Experiment Results
4. Results of Numerical Simulations
4.1. Structure of Flow Field
4.2. Structure of the Vortex
4.3. Structure of the Shock Wave
4.4. Parameters of the Moving Body
4.5. Pressure Comparison of Key Points
5. Conclusions
- (1)
- The shock wave of the muzzle jet under interference by the initial jet was complex and featured shock–shock collisions and shock–vortex collisions in the flow field that suppressed the expansion of the muzzle jet and led to the formation of multiple reflected shock waves and high-pressure zones. The strong shock wave of the muzzle jet collided with the weak vortex of the initial jet, causing it to disappear and leading to the formation of a stable vortex of the muzzle jet in the flow field. The muzzle jet without interference by the initial jet had a clear and simple structure.
- (2)
- Owing to the low energy of the initial jet—one order of magnitude lower than the energy of the muzzle jet—the force of its impact on the high-speed moving body was relatively small, while the impact on its lifting force was relatively large but could be ignored.
- (3)
- If the distance to the muzzle is not considered under the operating conditions considered here, the muzzle jet without the initial jet-induced interference can be used as a simplified model for calculation beyond a distance of 5 m. When considering a location close to the muzzle and ignoring the moving body, the muzzle jet under interference by the initial jet can be used as a simplified model for calculation.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Model | Features |
---|---|
Case 1 | Complete model; moving body; inside and outside the muzzle |
Case 2 | Simplified model; moving body; outside the muzzle |
Case 3 | Simplified model; inside and outside the muzzle |
Case 4 | Minimalist model; only outside the muzzle |
Parameters | Value |
---|---|
Working time/ms | 68.5 |
Muzzle pressure/MPa | 24.4 |
Velocity of the moving body/(m/s) | 932.0 |
Parameters | Error (Case 2–Case 1)/Case 1 |
---|---|
Drag | −2.055% |
Lift | −2.705% |
P | −8.938% |
v | −0.0074% |
Picture Title | Points | Location (mm, mm, mm) |
---|---|---|
(a) | Point A | (500, 200, 200) |
(b) | Point B | (500, 500, 500) |
(c) | Point C | (1000, 500, 500) |
(d) | Point D | (2000, 0, 0) |
(e) | Point E | (3000, 0, 0) |
(f) | Point F | (4000, 0, 0) |
(g) | Point G | (5000, 0, 0) |
(h) | Point H | (6000, 0, 0) |
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Li, Z.; Wang, H. Mechanism of Evolution of Shock Wave of Muzzle Jet under Initial Interference and Its Simplified Model. Aerospace 2024, 11, 381. https://doi.org/10.3390/aerospace11050381
Li Z, Wang H. Mechanism of Evolution of Shock Wave of Muzzle Jet under Initial Interference and Its Simplified Model. Aerospace. 2024; 11(5):381. https://doi.org/10.3390/aerospace11050381
Chicago/Turabian StyleLi, Zijie, and Hao Wang. 2024. "Mechanism of Evolution of Shock Wave of Muzzle Jet under Initial Interference and Its Simplified Model" Aerospace 11, no. 5: 381. https://doi.org/10.3390/aerospace11050381
APA StyleLi, Z., & Wang, H. (2024). Mechanism of Evolution of Shock Wave of Muzzle Jet under Initial Interference and Its Simplified Model. Aerospace, 11(5), 381. https://doi.org/10.3390/aerospace11050381