Flexible polymer antenna with multiple ground resonators
11695221 · 2023-07-04
Assignee
Inventors
Cpc classification
H01Q21/20
ELECTRICITY
H01Q5/30
ELECTRICITY
H01Q1/36
ELECTRICITY
International classification
H01Q21/20
ELECTRICITY
H01Q1/36
ELECTRICITY
H01Q5/30
ELECTRICITY
Abstract
The disclosure concerns an antenna assembly having a substrate with an antenna radiating element and a ground conductor disposed on the substrate, the ground conductor further characterized by a plurality of ground resonators, wherein a length associated with each of the ground resonators increases as the ground resonators are distanced from the antenna radiating element. Additionally, a coaxial cable is routed around the antenna assembly for configuring the coaxial cable as an additional ground resonator associated with the antenna assembly. The resulting antenna provides wide band performance between 700 MHz and 2700 MHz with improved efficiency compared with conventional antennas.
Claims
1. An antenna, comprising: a substrate comprising a top edge, a left edge, a bottom edge and a right edge; a radiating element supported by the substrate, with at least a portion of the radiating element being disposed proximate the top edge and the right edge; a ground conductor supported by the substrate, with at least a portion of the ground conductor being disposed proximate the left edge and the bottom edge, the ground conductor further comprising: a first ground resonator having a first length; a second ground resonator having a second length greater than the first length of the first ground resonator, the first ground resonator located between the second ground resonator and the radiating element; and a third ground resonator having a third length greater than the first length of the first ground resonator, the second ground resonator located between the third ground resonator and the first ground resonator.
2. The antenna of claim 1, wherein the first ground resonator further comprises: a first segment that projects from adjacent the left edge towards the right edge of the substrate; and a second segment that projects from an end of the first segment towards the bottom edge of the substrate.
3. The antenna of claim 2, wherein the second ground resonator further comprises: a third segment that projects from adjacent the left edge towards the right edge of the substrate; a fourth segment that projects from an end of the third segment towards the top edge of the substrate; and a fifth segment that projects from an end of the fourth segment towards the right edge of the substrate.
4. The antenna of claim 3, wherein the third ground resonator further comprises: a sixth segment that projects from adjacent the left edge of the substrate towards the right edge of the substrate, the sixth segment also being disposed adjacent the bottom edge of the substrate; and a seventh segment that projects from an end of the sixth segment towards the top edge of the substrate, the seventh segment also being disposed adjacent the right edge of the substrate.
5. The antenna of claim 4, wherein the radiating element further comprises a feed point that is disposed at a corner of the radiating element that is positioned towards the left edge of the substrate and adjacent the first ground resonator.
6. The antenna of claim 5, wherein feed point of the radiating element marks a line of demarcation between a first radiating arm of the radiating element and a second radiating arm of the radiating element.
7. The antenna of claim 6, wherein the first radiating arm further comprises a first radiating arm segment that projects from the feed point of the radiating element towards the right edge of the substrate.
8. The antenna of claim 7, wherein the first radiating arm further comprises a second radiating arm segment that projects from an end of the first radiating arm segment towards the top edge of the substrate.
9. The antenna of claim 8, wherein the first radiating arm further comprises a third radiating arm segment that projects from an end of the second radiating arm segment towards the left edge of the substrate.
10. The antenna of claim 9, wherein the first radiating arm further comprises a fourth radiating arm segment that projects from an end of the third radiating arm segment towards the top edge of the substrate.
11. The antenna of claim 10, wherein the first radiating arm further comprises a fifth radiating arm segment that projects from an end of the fourth radiating arm segment towards the right edge of the substrate.
12. The antenna of claim 11, wherein the first radiating arm further comprises a sixth radiating arm segment that projects from an end of the fifth radiating arm segment towards the bottom edge of the substrate.
13. The antenna of claim 12, wherein the first radiating arm further comprises a seventh radiating arm segment that projects from an end of the sixth radiating arm segment towards the left edge of the substrate.
14. The antenna of claim 13, wherein the second radiating arm further comprises a first radiating arm segment that projects from the feed point of the radiating element towards the top edge of the substrate.
15. The antenna of claim 14, wherein the second radiating arm further comprises a second radiating arm segment that projects from an end of the first radiating arm segment towards the top edge of the substrate.
16. The antenna of claim 15, wherein the second radiating arm further comprises a third radiating arm segment that projects from an end of the second radiating arm segment towards the bottom edge of the substrate.
17. The antenna of claim 16, wherein the second radiating arm further comprises a fourth radiating arm segment that projects from an end of the third radiating arm segment towards the left edge of the substrate.
18. The antenna of claim 17, wherein the second radiating arm further comprises a fifth radiating arm segment that projects from an end of the fourth radiating arm segment towards the left edge of the substrate.
19. The antenna of claim 18, wherein the fifth radiating arm segment of the first radiating arm is positioned adjacent the first radiating arm segment of the second radiating arm.
20. The antenna of claim 19, wherein the sixth radiating arm segment of the first radiating arm is positioned adjacent the fifth radiating arm segment of the second radiating arm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(7) In various embodiments, an antenna is disclosed which includes: a substrate, an antenna radiating element disposed on the substrate, and a ground conductor, wherein the ground conductor comprises: a ground patch, a first ground resonator, a second ground resonator, and a third ground resonator; wherein the ground conductor surrounds the antenna radiating element about two sides thereof and provides for multiple resonant frequencies forming a wide band response.
(8) The antenna radiating element of the antenna assembly (that which is fed by the center element of the coaxial cable) is known to work well in other designs provided that the ground plane is sufficiently large. A motivation of the instant antenna design is to improve the ground conductor of the antenna assembly to work with a flexible substrate and to achieve sufficient efficiency in the smallest form possible. In addition, the ground conductor is configured to allow the cable shield and its end connection to act as an extension to the ground plane.
(9) Modern cellular applications, including 3G and 4G, often require the combination of high efficiency and small size over a large set of bands in the 700-2700 MHz range. The cable-fed flexible polymer antenna assembly is a commonly-used implementation of antennas for this market. It is often challenging to integrate such antennas into compact devices without degradation of return loss (and thus efficiency) due to proximity of nearby metal objects or improper routing of the cable.
(10) This disclosure presents a novel antenna architecture with acceptable efficiency in a very small form using a known antenna radiating element and a unique multi-section wrapping ground conductor that is virtually extended by the feed cable. The structure was designed to concentrate the efficiency in those frequency bands where is it needed at the expense of those frequencies where the efficiency is not needed.
(11) It is difficult to design an antenna with a small size that operates efficiently over all cellular bands in modern use.
(12) On typical cable-fed quasi-dipoles, the ground is often too small for stable operation and the cable shield is relied upon to provide a ground conductor. This sort of cable-ground is non-ideal, as it cannot implement a resonant element.
(13) For a small size antenna, in order to produce high efficiencies at low frequencies in the wide range of 700 MHz-960 MHz, it was discovered that the use of multiple wrapping ground resonators, each being progressively larger toward the outside, works well. Moreover, with the multiple ground resonators, the cable shield can act as the last resonator structure for the lowest frequency required.
(14) It is known by experiment that covering the antenna radiating element with copper tape will produce low band performance that is not as good but still marginal and poor high band performance. It is also known that by covering the ground conductor with copper tape, the low band performance is nonexistent and high band performance is not as good but marginal. Therefore, it is necessary to have the proposed patterning on the ground conductor, not just a conductive sheet the same size.
(15) A simple dipole would require approximately 210 mm of length to perform at 700 MHz.
(16) With the disclosed antenna architecture, we measure high efficiencies down to 650 MHz within a space of 58 mm.times.67 mm. Thus, we can achieve better efficiencies at a much smaller size.
(17) In addition, by forming the antenna assembly on a flexible substrate, we can conform the shape of the antenna assembly to any surface, such that the antenna can be mounted, or we can bend the antenna one time or multiple times.
(18) The antenna has two main subsections: the antenna radiating element and the ground conductor. The ground conductor is novel in that it is composed of multiple subelements, each progressively larger and farther from the antenna radiating element, so that the last element is effectively the cable shield and its connection, i.e. typically a PCB ground. This gives a known and proper way to route the cable.
(19) In one aspect, the antenna is combining the antenna radiating element with a new type of ground conductor composed of multiple (here three) sub-elements which wrap around and progressively get larger as the sub elements (resonators) approach the outer periphery of the antenna assembly. The cable shield will act as final element due to routing.
(20) In another aspect, we propose using mini-coax cable as feeding technique of the antenna.
(21) In yet another aspect, we propose manufacturing the antenna structure on flexible substrate, such as a polyimide (Kapton®) substrate, having the convenience of attached the antenna to any curved surface, or bend the antenna multiple times.
EXAMPLE 1
(22) Now turning to the drawings which illustrate an example,
(23) As appreciated from
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(26) Moving downward along a first edge of the antenna assembly as shown, a first ground resonator 210 extends horizontally from the edge along a first body portion 211 and is bent at a right angle toward a first terminal portion 212.
(27) A second ground resonator 220 extends from the first edge of the antenna assembly as shown, the second ground resonator including a second horizontal body portion 221, a second vertical body portion 222, and a second terminal portion 223. The second ground resonator includes a length greater than that of the first ground resonator. The second ground resonator is also positioned along the ground conductor at a distance that is greater than that of the first ground resonator. The second vertical body portion 222 of the second ground resonator 220 is aligned parallel with the first terminal portion 212 of the first ground resonator, with a first gap extending therebetween.
(28) A third ground resonator 230 extends from the ground conductor 200 forming a third horizontal body portion 231 which is oriented parallel with respect to the second horizontal body portion 221 of the second ground conductor, and a third vertical body portion 232 extending perpendicularly from the third horizontal body portion 231. The third ground resonator includes a length that is larger than each of the first and second ground resonators, respectively. Moreover, the third ground conductor is positioned at a distance from the radiating element 100 that is larger than that of the first and second ground resonators, respectively. A second gap is formed between the second ground resonator and the third ground resonator. The ground conductor 200 further includes cleave portion 241 extending between the first edge and the third ground resonator at an angle less than ninety degrees.
(29) Referring back to
(30) As used herein, each of the terms “horizontal”, “vertical”, “parallel” and/or “perpendicular”, or variations of these terms such as “horizontally”, etc., are used with reference to the specific orientation as shown in the corresponding illustrations.
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INDUSTRIAL APPLICABILITY
(34) The instant antenna assembly as disclosed herein provides useful efficiency and performance in the wide band between 700 MHz and 2700 MHz, which can be used in cellular communications among other communication networks.
REFERENCE SIGNS LIST
(35) 100 antenna radiating element
(36) 200 ground conductor
(37) 201 ground patch
(38) 210 first ground resonator (sub-element)
(39) 211 first body portion
(40) 212 first terminal portion
(41) 220 second ground resonator (sub-element)
(42) 221 second horizontal body portion
(43) 222 second vertical body portion
(44) 223 second terminal portion
(45) 230 third ground resonator (sub-element)
(46) 231 third horizontal body portion
(47) 232 third vertical body portion
(48) 241 cleave portion
(49) 401 ground element
(50) 402 feed
(51) 500 coaxial cable
(52) 501 connector
(53) 550 substrate
(54) 601 liner
(55) 602 adhesive layer
(56) 603 solder mask layer
(57) 604 flexible polymer substrate
(58) 605 copper layer
(59) 606a; 606b solder mask
(60) 607a; 607b conductive pads