Method of forming semiconductor devices
US-2024387980-A1 · Nov 21, 2024 · US
US9680211B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9680211-B2 |
| Application number | US-201514590623-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jan 6, 2015 |
| Priority date | Apr 15, 2014 |
| Publication date | Jun 13, 2017 |
| Grant date | Jun 13, 2017 |
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The present invention relates to ultra-wideband (UWB) directional circular-field-polarization antennae. The technical result consists in development of a UWB antenna in which a unidirectional radiation is naturally generated within a wide or ultra-wide frequency band and generally does not require the use of an absorber on a back side of a radiating element. The UWB antenna comprises: a dielectric substrate; at least one feed line formed on the dielectric substrate; a spiral radiating element formed on the substrate and coupled to said at least one feed line; at least one additional dielectric substrate arranged in parallel with and above said dielectric substrate, wherein a flat printed cavity of an axially-symmetric shape is formed on said at least one additional dielectric substrate, said cavity being arranged coaxially with the spiral radiating element.
Opening claim text (preview).
What is claimed is: 1. An ultra-wideband antenna for ultra-wideband communication with portable mobile devices, the ultra-wideband antenna comprising: a dielectric substrate; at least one feed line formed on the dielectric substrate; a spiral radiating element formed on the substrate and coupled to the at least one feed line; at least one additional dielectric substrate arranged in parallel with and above the dielectric substrate, wherein a flat printed cavity in a symmetric shape around an axis of the flat printed cavity is formed on an upper surface of each of the at least one additional dielectric substrate, and the flat printed cavity is arranged coaxially with the spiral radiating element. 2. The ultra-wideband antenna according to claim 1 , wherein the feed line is embodied as a feeding micro strip line (MSL). 3. The ultra-wideband antenna according to claim 1 , wherein the feed line is embodied as a coplanar line. 4. The ultra-wideband antenna according to claim 2 , wherein a conductive material screen is formed on a dielectric substrate side facing the at least one additional dielectric substrate, the spiral radiating element is formed as a spiral slot in the screen, and wherein the spiral slot is coupled with the at least one MSL via a respective additional ultra-wideband MSL-to-slot transformer. 5. The ultra-wideband antenna according to claim 4 , wherein the spiral slot is embodied in a shape selected from the group including an Archimedes spiral and a log-periodic spiral. 6. The ultra-wideband antenna according to claim 1 , wherein the at least one additional dielectric substrate includes a first additional dielectric substrate having a first metal printed cavity and a second additional dielectric substrate having a second metal printed cavity, and the first and second metal printed cavities are embodied in a same shape and dimension to each other. 7. The ultra-wideband antenna according to claim 6 , wherein the shape of the first and second metal printed cavities is selected from the group including a circle, an ellipse, an octagon, a hexagon. 8. The ultra-wideband antenna according to claim 6 , wherein the first metal printed cavity has a cut-out in a symmetric shape around an axis of the first metal printed cavity and the second metal printed cavity has a cut-out in a symmetric shape around an axis of the second metal printed cavity. 9. The ultra-wideband antenna according to claim 1 , wherein an absorbing material is placed on the dielectric substrate side opposite to additional dielectric substrates. 10. The ultra-wideband antenna according to claim 1 , wherein the at least one additional dielectric substrate is separated from the dielectric substrate by an air gap. 11. The ultra-wideband antenna according to claim 1 , wherein the at least one additional dielectric substrate is separated from the dielectric substrate by a gap filled with a dielectric having a dielectric permeability. 12. The ultra-wideband antenna according to claim 1 , wherein the at least one additional dielectric substrate is separated from the dielectric substrate by a gap having a dielectric permeability. 13. An antenna system formed as an antenna array comprising at least two ultra-wideband antennae according to claim 1 . 14. The ultra-wideband antenna according to claim 11 , wherein the dielectric includes foam plastics.
formed by a conductive layer on an insulating support {(patch antennas H01Q9/0407; microstrip dipole antennas H01Q9/065; microstrip slot antennas H01Q13/106; transmission line microstrip antennas H01Q13/206; manufacturing reflecting surfaces using insulating material for supporting the reflecting surface H01Q15/142)} · CPC title
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