Radio frequency phase shifting device
20200044300 · 2020-02-06
Inventors
Cpc classification
H01G7/06
ELECTRICITY
H01Q3/44
ELECTRICITY
International classification
Abstract
A phase shifting device with a linear transmission line comprises a first electrode and a second electrode that are spaced at a distance from each other. A tunable dielectric material is arranged between the first electrode and the second electrode. The transmission line comprises several overlapping section. An overlapping area of the first electrode overlaps an overlapping area of the second electrode in order to provide a parallel plate capacitor area that affects the phase of an electromagnetic signal that propagates along the transmission line. The first electrode and the second electrode are electrically connected to a bias voltage source with bias electrodes which consist of a material with a lower electrical conductivity that that of the first and second electrode.
Claims
1. A radio frequency phase shifting device (17) with a transmission line (4) comprising a first electrode (5) and a second electrode (6) that are spaced at a distance from each other and which are suitable and used for propagation of a radio frequency electromagnetic signal along the first electrode (5) and the second electrode (6) with a phase difference of 180 between the respective electromagnetic signals, wherein a tunable dielectric material affects a phase shift of the electromagnetic signal that is propagated along the transmission line (4), wherein the transmission line (4) comprises several non-overlapping sections (14), wherein the first electrode (5) extends at a distance from the second electrode (6), wherein the transmission line (4) comprises several overlapping sections (12), wherein an overlapping area (10) of the first electrode (5) is overlapped by a capacitor electrode area (11, 24) and wherein an overlapping area (11) of the second electrode (6) is overlapped by a capacitor electrode area (10, 25) in order to provide for a parallel plate capacitor area (13) within the overlapping section (12), and wherein a tunable dielectric material is arranged between the respective capacitor electrode areas (24, 25) and the overlapping area (10) of the first electrode (5) and the overlapping area (11) of the second electrode (6) that affects the phase of an radio frequency electromagnetic signal that propagates along the overlapping section (12) of the transmission line (4).
2. The radio frequency phase shifting device (17) according to claim 1, wherein the overlapping area (10) of the first electrode (5) overlaps the overlapping area (11) of the second electrode (6) in order to provide for one parallel plate capacitor area (13).
3. The radio frequency phase shifting device (17) according to claim 1, wherein the first electrode (5) and the second electrode (6) are arranged side by side, and wherein a capacitor electrode (23) is arranged above or below the first electrode (5) and the second electrode (6) in such a manner that a first capacitor electrode area (24) overlaps the overlapping area (10) of the first electrode (5) and that a second capacitor electrode area (25) overlaps the overlapping area (11) of the second electrode (6), thus providing for two parallel plate capacitor areas (13) between the capacitor electrode and the respective overlapping areas (10, 11) within the overlapping section (10).
4. The radio frequency phase shifting device (17) according to claim 2, wherein the first electrode (5) is arranged at a first surface of a first substrate layer (18), wherein the second electrode (6) is arranged at a second surface of a second substrate layer (19), such that the first surface of the first substrate layer (18) faces the second surface of the second substrate layer (19) and wherein the first surface is arranged at a distance to the second surface.
5. The radio frequency phase shifting device (17) according to claim 4, wherein the first surface of the first substrate layer (18) and the second surface of the second substrate layer (19) confine the tunable dielectric material.
6. The radio frequency phase shifting device (17) according to claim 1, wherein the first electrode (5) and the second electrode (6) each comprise a strip-shaped transmission line segment (7, 8), and wherein both transmission line segments (7, 8) are directed along the transmission line (4).
7. The radio frequency phase shifting device (17) according to claim 6, wherein the strip-shaped transmission line segments (7, 8) each comprise alternating non-overlapping sections (14) and overlapping sections (12).
8. The radio frequency phase shifting device (17) according to claim 6, wherein the strip-shaped transmission segments (7, 8) only comprise non-overlapping sections (14), and wherein each of the overlapping areas (10, 11) of the first electrode (5) and/or of the second electrode (6) is laterally protruding from the respective strip-shaped transmission segment (7, 8) of the first electrode (5) and/or of the second electrode (6).
9. The radio frequency phase shifting device (17) according to claim 1, wherein the respective overlapping areas (10, 11) of the first electrode (5) and the second electrode (6) provide for a rectangular or a quadratic parallel plate capacitor area (13).
10. The radio frequency phase shifting device (17) according to claim 1, wherein subsequent parallel plate capacitor areas (13) along the transmission line differ in respective distance to each other and/or in size and/or in shape.
11. The radio frequency phase shifting device (17) according to claim 1, wherein the first electrode (5) and the second electrode (6) are electrically connected to at least one bias voltage source.
12. The radio frequency phase shifting device (17) according to claim 11, wherein the first electrode (5) is connected to a first bias electrode (15) which is connected to the at least one bias voltage source, and wherein the second electrode (6) is connected to a second bias electrode (16) which is connected to the same or a different bias voltage source.
13. The radio frequency phase shifting device (17) according to claim 12, wherein a width of the first and second bias electrodes (15, 16) is smaller than a width of the first and second electrode (5, 6).
14. The radio frequency phase shifting device (17) according to claim 1, wherein a width of the first and second electrode (5, 6) is between 100 m and 500 m.
15. The radio frequency phase shifting device (17) according to claim 14, wherein the width of the first and second electrode (5, 6) is approximately 200 m.
16. A phased array antenna (1), comprising several antenna elements (2) that are arranged at a surface of a substrate layer (23), a signal feed network from or to which a signal is transmitted to or from the several antenna elements (2), and for each antenna element (2) a corresponding radio frequency phase shifting device (17) according to claim 1, wherein the phase of each signal that is transmitted from a single signal feed point (3) to the respective antenna element (2) or that is transmitted from the respective antenna element (2) to the single signal feed point (3) is modified in order to adjust the superposition of each signal according to a preferred direction of radiation of the phased array antenna (1).
17. The phased array antenna (1) according to claim 16, wherein the phased array antenna (1) comprises on top of each other a base layer (22), a first substrate layer (18) with a first electrode (5), a tunable layer (20), a second substrate layer (19) with a second electrode (6) and an antenna layer (23) with a radiating antenna structure for each of the antenna elements (2).
18. The phased array antenna (1) according to claim 17, wherein the first substrate layer (18) and the second substrate layer (19) consists of a glass material, and that the tunable layer (20) comprises a liquid crystal material with tunable dielectric properties.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The present invention will be more fully understood, and further features will become apparent, when reference is made to the following detailed description and the accompanying drawings. The drawings are merely representative and are not intended to limit the scope of the claims. In fact, those of ordinary skill in the art may appreciate upon reading the following specification and viewing the present drawings that various modifications and variations can be made thereto without deviating from the innovative concepts of the invention. Like parts depicted in the drawings are referred to by the same reference numerals.
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DETAILED DESCRIPTION
[0041] A phased array antenna 1 that is shown in
[0042] The phase shifting devices can be the electrical connection of the individual antenna elements 2 to the signal feed point 3. Preferably, for each antenna element 2 the corresponding phase shifting device is only a part or section of the electrical connection to the signal feed point 3.
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[0044] Each of the first and second electrode 5, 6 comprises a strip-shaped transmission line segment 7, 8 that extends along a straight line in the direction of a signal propagation direction 9. At regular intervals a rectangular overlapping area 10, 11 laterally protrudes from the respective strip-shaped transmission line segment 7, 8 of the first electrode 5 and of the second electrode 6. Within an overlapping section 12 of the transmission line 4, one overlapping area 10 of the first electrode 5 overlaps with one corresponding overlapping area 11 of the second electrode 6. The two overlapping areas 10, 11 provide for a parallel plate capacitor area 13 of quadratic shape when viewed from the top. The overlapping sections 12 of the transmission line 4 alternate with non-overlapping sections 14 that only comprises the strip-shaped transmission line segments 7, 8 that are at a distance to each other and that do not overlap like within the overlapping sections 12 of the transmission line 4.
[0045] The non-overlapping sections 14 do not change much of the phase of the electromagnetic signal that propagates along the first and second electrode 5, 6 of the transmission line 4 in the direction of the signal propagation direction 9, as only a small portion of the electromagnetic field penetrates the tunable layer. However, each of the overlapping sections 12 affects the phase of the propagating electromagnetic signal resulting in a significant phase shift of up to 2 or more from a phase shifting device that can be easily integrated into the phased array antenna 1 of
[0046] A first bias electrode 15 is connected to the strip-shaped transmission segment 7 of the first electrode 5 and projects in the opposite direction of the overlapping areas 10 of the first electrode 5. Similarly, a second bias electrode 16 is connected to the strip-shaped transmission segment 8 of the second electrode 6 and projects in the opposite direction of the overlapping areas 11 of the second electrode 6. The first and second bias electrodes 15, 16 are connected to a bias voltage source not shown in
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[0048] The first electrode 5 is on top of a first substrate layer 18 made of glass material. The second electrode 6 is on top of a second substrate layer 19 also made of glass material. The first and second substrate layers 18, 19 are arranged at a distance to each other with the first electrode 5 facing the second electrode 6. Between the first and second substrate layer 18, 19 there is a tunable layer 20 that is filled with a liquid crystal material. The dielectric properties of the liquid crystal material can be modified by applying different bias voltages to the first and second electrode 5, 6 resulting in electric fields of different magnitude between the first and second electrode 5, 6. In the overlapping section 12 as shown in
[0049] The topological representation of the transmission line 4 as illustrated in
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