| Literature DB >> 36236209 |
Yousef Azizi1, Mohammad Soleimani1, Seyed-Hasan Sedighy2, Ladislau Matekovits3,4,5.
Abstract
This paper deals with the design and fabrication of an unpretentious (single-layer, without any lump element) broadband (97%, 11.3-32.3 GHz) radar cross-section reduction (RCSR) modulated surface (MS). The proposed structure uses sinusoidal modulation gap sizes between square patches within square unit cells to form a phase gradient that plays an effective role in improving the RCSR bandwidth. An MS with dimensions of 250 × 250 mm2, consisting of 40 × 40 unit cells with a period of 6 mm printed on a RO4003C (lossy) substrate of 0.06λLF (λLF being the wavelength at the lower frequency) thickness, has been prototyped. The MS has square patch (SP) unit cells with seven different gap sizes. A genetic algorithm (GA)-based fine-tuning has been implemented to further increase the performances of the structure. Measurements on it have been conducted considering both mono- and bi-static arrangements and for oblique incidences for both TM and TE polarization tests. A good agreement between simulation and measurement results proves the validity of the design criteria.Entities:
Keywords: modulated surface; phase gradient; radar cross section reduction
Mesh:
Year: 2022 PMID: 36236209 PMCID: PMC9571048 DOI: 10.3390/s22197108
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.847
Figure 1SP unit cell and reflection phase (a) 3D schematic of SP unit cell; (b) reflection phase of the SP unit cells with period equal to 6 mm for different gap width g.
Figure 2Block diagram of MS design and m calculation with GA.
Figure 3Schematic of PGM structure and RCSR mechanism: (a) PGM structure; (b) PGM surface performance when illuminated by incidence plan wave; (c) RCSR mechanism of PGM by phase cancellation with reflections of different unit cells which shown with colorful arrows.
Figure 4Fabricated structure (DUT) and RCS test set-up (Tx/Rx antenna in anechoic chamber).
Figure 5Monostatic RCS results of the PGM structure.
Figure 6RCS pattern of PGM with the PEC of the same size and 2D E-Field phase distribution of the structure: (a) 18 GHz RCS pattern; (b) 18 GHz phase distribution; (c) 31.1 GHz RCS pattern; and (d) 31.1 GHz phase distribution.
Figure 7Bi-static RCS results: (a) 18 GHz; (b) 31.1 GHz.
Figure 8Sensitivity study of the proposed PGM for oblique incidence: (a) TM polarization; (b) TE polarization.
Comparison between the proposed PGM and the state-of-the-art references.
| Structure | Thickness | 10 dB BW (%) | No. of Layers | Substrates |
|---|---|---|---|---|
| [ | 0.14 | 91.5/3.77–10.14 | 2 | RO4350B-Air |
| [ | 0.1 | 109/13.1–44.5 | 3 | FR4/air |
| [ | 0.1 | 109/4.8–16.4 | 2 | FR2-Air |
| [ | 0.13 | 113/6.4–44.5 | 2 uneven layers | F4B |
| [ | 0.125 | 148/6.16–41.3 | 3 uneven layers | F4B |
| [ | 0.124 | 122/6.2–25.7 | 3 uneven layers | F4B |
| [ | 0.071 | 82.4/7–16.8 | 1 | RO5880 |
| [ | 0.1 | 128/9–40.7 | 2 | FR4 |
| [ | 0.075 | 91/15–40 | 1 | F4B |
| [ | 0.11 | 108/13.6–45.5 | 2 | FR4-FR4 |
| This work | 0.06 | 97/11.3–32.3 | 1 | RO4003C |