Comprehensive Discussion on Remote Sensing Modeling and Dynamic Electromagnetic Scattering for Aircraft with Speed Brake Deflection
Abstract
:1. Introduction
2. Method Description
2.1. Remote Sensing Modeling
2.2. Dynamic Electromagnetic Scattering
3. Model Establishment
4. Results and Discussion
4.1. Analysis of Remote Sensing
4.2. Dynamic Scattering Analysis
4.3. Comprehensive Discussion
5. Conclusions
- (1)
- This remote sensing imaging method can capture the grayscale characteristics of many reference objects on the ground. When the target aircraft enters the observation area, some complex ground reference objects can easily confuse the grayscale projection of the thin speed brake with the ground without taking local magnification measures.
- (2)
- The dynamic RCS of the speed brake at the forward azimuth shows a large amplitude in the second half of the deflection process, where the increase in elevation angle can reduce the mean and initial value of this dynamic RCS. When the speed brake is deflected on one side, the amplitude of the change in RCS at an example forward azimuth of the aircraft may exceed 33.36 dBm2, while the dynamic characteristics and mean value of the aircraft’s RCS vary greatly under different lateral azimuths.
- (3)
- When two speed brakes are opened at a fixed angle, this will introduce a local peak value to the RCS–azimuth curve of the aircraft. The first half of the dynamic deflection of the two speed brakes will introduce large fluctuations to the RCS of the aircraft in the lateral azimuth. When the projection of the target aircraft crosses the water boundary or enters the water area, the fuselage, wings, and vertical tail are easily recognizable, and the opening state and deflection angle of the speed brake can be determined.
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
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Parameter | Awl (°) | Awt (°) | Lrf (m) | Lf (m) |
Value | 47.121 | 8.727 | 0.78 | 9.5 |
Parameter | Wf (m) | Xb2 (m) | Atl (°) | Hv (m) |
Value | 6.4 | 2.855 | 38.437 | 1.52 |
Parameter | Lbl (mm) | Hbe (mm) | Lbe (mm) |
Value | 862.81 | 22.78 | 60.24 |
Parameter | Wb1 (mm) | Hb1 (mm) | Ltv (mm) |
Value | 220 | 40 | 82.71 |
Region | Max (mm) | Region | Max (mm) |
---|---|---|---|
Global minimum size | 1 | Outside edge of speed brake | 1 |
Front edge of speed brake | 2 | Inside edge of speed brake | 2 |
Speed brake surface | 8 | Wing trailing edge | 5 |
Leading edge of wing | 8 | Vertical tail edge | 15 |
Nozzle edge | 15 | Fuselage surface | 50 |
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Zhou, Z. Comprehensive Discussion on Remote Sensing Modeling and Dynamic Electromagnetic Scattering for Aircraft with Speed Brake Deflection. Remote Sens. 2025, 17, 1706. https://doi.org/10.3390/rs17101706
Zhou Z. Comprehensive Discussion on Remote Sensing Modeling and Dynamic Electromagnetic Scattering for Aircraft with Speed Brake Deflection. Remote Sensing. 2025; 17(10):1706. https://doi.org/10.3390/rs17101706
Chicago/Turabian StyleZhou, Zeyang. 2025. "Comprehensive Discussion on Remote Sensing Modeling and Dynamic Electromagnetic Scattering for Aircraft with Speed Brake Deflection" Remote Sensing 17, no. 10: 1706. https://doi.org/10.3390/rs17101706
APA StyleZhou, Z. (2025). Comprehensive Discussion on Remote Sensing Modeling and Dynamic Electromagnetic Scattering for Aircraft with Speed Brake Deflection. Remote Sensing, 17(10), 1706. https://doi.org/10.3390/rs17101706