| Literature DB >> 35273261 |
José-Manuel Poyanco1, Francisco Pizarro2, Eva Rajo-Iglesias1.
Abstract
This article presents a fully 3D-printed dielectric planar lens operating in the entire Ka-band manufactured using additive manufacturing and a relatively low-cost 3D-printer. The lens consists of ten concentric rings implemented using low-loss ABS filaments with high permittivity values. By varying the infill percentages of them the required refractive indexes of each section are achieved. An additional 3D-printed matching layer, using the same manufacturing and design method was included in the lens, to reduce reflections. Simulation and measurement results show a very good agreement, which confirms the possibility of manufacturing a cost-effective broadband and planar lens solution operating in millimeter wave bands, where Low Earth Orbit Satellites (LEO) networks, future mobile communication systems (5G, 6G) and radar systems operate.Entities:
Year: 2022 PMID: 35273261 PMCID: PMC8913771 DOI: 10.1038/s41598-022-07911-z
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Proposed Graded Index (GRIN) planar lens antenna.
Optical length and relative permittivity value for each ring.
| Ring ( | Optical length ( | Relative permittivity ( |
|---|---|---|
| 1 | 29.41 | 12 |
| 2 | 30.15 | 11.54 |
| 3 | 31.41 | 10.78 |
| 4 | 33.22 | 9.73 |
| 5 | 35.49 | 8.49 |
| 6 | 38.13 | 7.15 |
| 7 | 41.08 | 5.79 |
| 8 | 44.27 | 4.48 |
| 9 | 47.66 | 3.28 |
| 10 | 51.20 | 2.22 |
Figure 2Simulated results of the 3D-printed flat lens at 27 GHz, 34 GHz and 40 GHz. Top: Electric field magnitude. Bottom: Gain radiation patterns.
Figure 3Side view of lens and feed with the corresponding the direction of feed offset.
Figure 4Simulation results of the lens behavior with different feed offsets. (a) Gain radiation pattern at 34 GHz. (b) Normalized gain as a function of the scanning angle at 27, 34 and 40 GHz.
Figure 5Relative permittivity as function of the infill percentage of each used filament. The inset display the configuration and parameters of the simulated unit cell.
Ring relative permittivity () section with the corresponding filament and infill.
| Ring perm. value ( | Filament | Infill (%) |
|---|---|---|
| ABS1200 | 100 | |
| ABS1200 | 97.1 | |
| ABS1200 | 92.1 | |
| ABS1000 | 97.8 | |
| ABS1000 | 87.7 | |
| ABS1000 | 75.3 | |
| ABS650 | 90.4 | |
| ABS650 | 70.2 | |
| ABS440 | 72.7 | |
| ABS300 | 65.9 |
Figure 6Simulated results of the 3D-printed flat lens at 34 GHz without matching layer, with matching layer before the lens (PRE-ML), with matching layer after the lens (POST-ML) and in both sides of the lens (PRE&POST-ML). Top: Electric field magnitude. Bottom: Gain radiation patterns.
Relative permittivity and height of the matching layer rings with the filaments and infill used for manufacture.
| Layer | Height ( | Filament | Infill (%) |
|---|---|---|---|
| 1.19 | ABS650 | 52.2 | |
| 1.20 | ABS650 | 51.0 | |
| 1.22 | ABS650 | 48.8 | |
| 1.25 | ABS650 | 45.8 | |
| 1.29 | ABS300 | 96.3 | |
| 1.35 | ABS300 | 86.4 | |
| 1.42 | ABS300 | 74.9 | |
| 1.52 | ABS300 | 61.4 | |
| 1.64 | ABS300 | 45.9 | |
| 1.81 | ABS300 | 28.9 |
Figure 7Model of the planar lens antenna with matching layer for each ring, fed by a corrugated circular open waveguide.
Figure 8Exploded view of the lens and matching layer with the equivalent permittivity value required for each section and the filaments that will be used for each section.
Figure 9Photo of the manufactured 3D-printed planar lens antenna. (a) Top view. (b) Orthogonal view.
Figure 10Photo of the manufactured matching layer and lens antenna. (a) Top view of the matching layer. (b) Lens antenna with matching layer.
Figure 11Measured E-plane and H-plane gain radiation pattern of the 3D-printed lens with and without matching layer at three frequencies in the Ka-band. (a) 28 GHz. (b) 34 GHz. (c) 40 GHz.
Figure 12Maximum gain in Ka-band of the planar dielectric lens with and without matching layer. The inset displays a photo of the measurement setup and the lens with matching layer.
Comparison of the presented lens with other planar lenses operating in millimeter wavebands present in the literature.
| References | Relative bandwidth (%) | Meas. frequency (GHz) | Max. gain (dB) | SLL (dB) | ||
|---|---|---|---|---|---|---|
| Sim. | Meas. | Sim. | Meas. | |||
| Presented work | 42.4 | 34 | 26.5 | 25.7 | − 20 | − 17.7 |
| [ | 15.4 | 26 | 22.2 | – | − 15.2 | – |
| [ | 40 | 15 | 22 | 20 | − 16 | − 13.8 |
| [ | 54.1 | 18.5 | 14.4 | 13.8 | − 10.4 | − 13.3 |
| [ | 24.8 | 60 | 19 | 18.3 | – | − 18 |
| [ | 6.7 | 30 | 22.7 | 22 | − 15.7 | − 18 |
| [ | 38.8 | 34 | 24 | 24 | − 10 | − 13 |