Delayed Detached-Eddy Simulations of Aerodynamic Variability During Carrier-Based Aircraft Landing with a Domain Precursor Inflow Method
Abstract
:1. Introduction
2. CFD Methodology for Carrier-Based Aircraft Landing Simulation
2.1. The Unsteady Flow Solver
2.2. DDES-Based RANS-LES Hybrid Method
2.3. Dynamic Parallel Overset Grid Method
3. Simulation Model for Aerodynamic Variability in Aircraft Landing
3.1. Profile of Aircraft Landing to Carrier
3.2. Domain Precursor Inflow Approach
- (1)
- The entire carrier air-wake domain, the aft carrier air-wake domain, and the aircraft flow field domain are determined, and the meshes in those domains are generated separately.
- (2)
- The unsteady flow field of in the entire carrier air-wake domain is computed by using the RANS-LES hybrid solver to a fully developed state.
- (3)
- The solution of the entire domain at a moment and the transient solution at each physical time step after in the same plane as the inflow of aft air-wake domain are saved.
- (4)
- The steady flow field in the aircraft domain is calculated, and the solution is saved as the initialized state of landing simulation.
- (5)
- The aft carrier air-wake field is initialized by interpolating from the solution of the entire carrier air-wake domain at .
- (6)
- The mesh and solution of the aircraft domain are adjusted to the proper state according to landing simulation condition.
- (7)
- The aircraft landing through the carrier air-wake is simulated on the overset grids of the aft air-wake domain mesh and aircraft mesh with the unsteady precursor inflow boundary condition.
3.3. Landing Simulation Setup
4. Results and Discussion
4.1. Validation of the Domain Precursor Inflow Approach
4.2. Variability Analysis of Aerodynamic Loads
5. Conclusions
- (1)
- The domain precursor inflow method can significantly reduce computational costs compared to full-domain simulations while maintaining fidelity in air-wake simulation.
- (2)
- Parametric analyses of 15 distinct landing trajectories reveal significant aerodynamic variability, particularly within 250 m of the carrier, where interactions with island-generated vortices induce fluctuations in lift (up to 25%), drag (18%), and pitching moments (30%).
- (3)
- Ground effects near the deck further amplify load variations by 12–15%, while lateral deviations in landing paths generate asymmetric forces and moments.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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ID | (°) | (m) | (m) |
---|---|---|---|
1 | 4.6000 | 1.3333 | 550.0000 |
2 | 4.8667 | −2.6667 | 523.3333 |
3 | 5.8000 | −6.6667 | 536.6667 |
4 | 5.9333 | 2.6667 | 576.6667 |
5 | 4.3333 | 8.0000 | 563.3333 |
6 | 5.4000 | 5.3333 | 590.0000 |
7 | 5.0000 | 9.3333 | 543.3333 |
8 | 4.2000 | −5.3333 | 583.3333 |
9 | 5.6667 | 6.6667 | 516.6667 |
10 | 5.5333 | −4.0000 | 556.6667 |
11 | 4.7333 | −1.3333 | 596.6667 |
12 | 5.2667 | 0.0000 | 503.3333 |
13 | 4.0667 | 4.0000 | 530.0000 |
14 | 4.4667 | −8.0000 | 510.0000 |
15 | 5.1333 | −9.3333 | 570.0000 |
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Fu, J.; Hu, R.; Wang, H.; Xu, K.; Tian, S. Delayed Detached-Eddy Simulations of Aerodynamic Variability During Carrier-Based Aircraft Landing with a Domain Precursor Inflow Method. J. Mar. Sci. Eng. 2025, 13, 498. https://doi.org/10.3390/jmse13030498
Fu J, Hu R, Wang H, Xu K, Tian S. Delayed Detached-Eddy Simulations of Aerodynamic Variability During Carrier-Based Aircraft Landing with a Domain Precursor Inflow Method. Journal of Marine Science and Engineering. 2025; 13(3):498. https://doi.org/10.3390/jmse13030498
Chicago/Turabian StyleFu, Jiawei, Ruifan Hu, Hong Wang, Ke Xu, and Shuling Tian. 2025. "Delayed Detached-Eddy Simulations of Aerodynamic Variability During Carrier-Based Aircraft Landing with a Domain Precursor Inflow Method" Journal of Marine Science and Engineering 13, no. 3: 498. https://doi.org/10.3390/jmse13030498
APA StyleFu, J., Hu, R., Wang, H., Xu, K., & Tian, S. (2025). Delayed Detached-Eddy Simulations of Aerodynamic Variability During Carrier-Based Aircraft Landing with a Domain Precursor Inflow Method. Journal of Marine Science and Engineering, 13(3), 498. https://doi.org/10.3390/jmse13030498