Dual-band dipole antenna
09614286 ยท 2017-04-04
Assignee
Inventors
Cpc classification
H01Q9/42
ELECTRICITY
H01Q9/16
ELECTRICITY
International classification
H01Q9/16
ELECTRICITY
H01Q9/42
ELECTRICITY
Abstract
A dual-band dipole antenna includes a substrate, grounding area, main radiator, grounding point and a feed-in point. The grounding point may be disposed on the substrate. The main radiator may be disposed on the substrate and in the vicinity of the grounding point; the main radiator may comprises a first radiator and a second radiator, wherein the first radiator may be connected to the second radiator, and there may be a groove between the first radiator and the second radiator; besides the size of the main radiator is disproportional to the size of the grounding area. The grounding point may be disposed on the substrate and connected to the grounding area. The feed-in point may be disposed on the substrate and connected to the main radiator; the grounding point may be in the vicinity of the feed-in point.
Claims
1. A dual-band dipole antenna, comprising: a substrate; a grounding area, being disposed on the substrate; a main radiator, being disposed on the substrate and in the vicinity of the grounding area, wherein the main radiator comprises a first radiator and a second radiator; the first radiator is connected to the second radiator, and there is a groove between the first radiator and the second radiator; a size of the main radiator is not equal to a size of the grounding area; a grounding point, being disposed on the substrate and connected to the grounding area; and a feed-in point, being disposed on the substrate and connected to the main radiator, wherein the feed-in point is in the vicinity of the grounding point, and one end of the groove is a sealed end in the vicinity of the feed-in point, and the other end of the groove is an opening; the groove extends from the sealed end to the opening in a direction away from the feed-in point; the first radiator extends from the feed-in point to form a gradually-widened structure, and the second radiator extends from the feed-in point to form a gradually-narrowed structure.
2. The dual-band dipole antenna of claim 1, wherein the grounding area is L-shaped and comprises a patch block.
3. The dual-band dipole antenna of claim 2, wherein the grounding area comprises two ends corresponding to each other in a first direction; one end is in the vicinity of the main radiator and disposed with the grounding point, and the other end is disposed with the patch block and the patch block extends in a second direction to make the grounding area be L-shaped.
4. The dual-band dipole antenna of claim 2, wherein the size of the grounding area is larger than the size of the main radiator.
5. The dual-band dipole antenna of claim 2, wherein the size of the grounding area is related to an impedance matching of the dual-band antenna.
6. The dual-band dipole antenna of claim 3, wherein the groove extends in a third direction away from the feed-in point to form the opening.
7. The dual-band dipole antenna of claim 6, wherein an included angle between the third direction and the first direction is an obtuse angle.
8. The dual-band dipole antenna of claim 1, wherein an operating frequency band of the second radiator is higher than an operating frequency band of the first radiator.
9. The dual-band dipole antenna of claim 1, wherein a length of the first radiator is related to a low operating frequency band of the dual-band dipole antenna.
10. The dual-band dipole antenna of claim 1, wherein a length of the second radiator is related to a high operating frequency band of the dual-band dipole antenna.
11. The dual-band dipole antenna of claim 1, wherein the grounding point and the feed-in point are disposed between the main radiator and the grounding area.
12. The dual-band dipole antenna of claim 1, the groove extends from a corner of the main radiator into an interior of the main radiator.
13. The dual-band dipole antenna of claim 12, the groove is connected to a slot inside the main radiator.
14. The dual-band dipole antenna of claim 12, a size of the slot is related to an overall operating frequency band of the dual-band dipole antenna.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The detailed structure, operating principle and effects of the present invention will now be described in more details hereinafter with reference to the accompanying drawings that show various embodiments of the invention as follows.
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(12) The technical content of the present invention will become apparent by the detailed description of the following embodiments and the illustration of related drawings as follows.
(13) Please refer to
(14) The main radiator 11 is disposed on the substrate 10 and in the vicinity of the grounding area 12; the main radiator 11 may include a first radiator 111 and a second radiator 112, where the first radiator 111 and the second radiator 112 may be connected to each other and there may be a groove 113 between them; the operating frequency band of the first radiator 111 may be higher than the operating frequency band of the second radiator 112. In the embodiment, the main radiator 11 is rectangular in shape and the groove 113 extends from the lower left corner of the main radiator 11 into its interior; the two sides of the main radiator 11 respectively have an included angle with the groove 113. In the embodiment, there is a slot 114 inside the main radiator 11, where the slot 114 may be rectangular in shape and connected to the groove 113. The feed-in point is disposed on the substrate 10 and connected to the main radiator 11; besides, the grounding point 125 is disposed in the vicinity of the feed-in point 115.
(15) In the embodiment, the groove 113 between the first radiator 111 and the second radiator 112 may be a closed structure formed in the vicinity of the feed-in point 115; besides, the groove 113 may further extend in the third direction D3 away from the feed-in point 115 to form an opening structure. As shown in
(16) The grounding area 12 is disposed on the substrate 10. In the embodiment, the grounding area 12 includes two ends corresponding to each other in the first direction D1; one end is in the vicinity of the main radiator 11 and disposed with the grounding point 125, and the other end is disposed with the patch block P and the patch block P extends in the second direction D2 to make the grounding area 12 be L-shaped. The size of the grounding area 12 may be larger than the size of the main radiator 11; as shown in
(17) The operating frequency band of the dual-bank antenna 1 can be adjusted by using special patch blocks or changing the lengths of the first radiator 111 and the second radiator 112. For instance, the length of the first radiator 111 can be changed to adjust the low operating frequency band of the dual-band dipole antenna 1; for instance, the length of the second radiator 112 can be changed to adjust the high operating frequency band of the dual-band dipole antenna 1; for instance, the overall operating frequency band of the dual-bank dipole antenna 1 can be adjusted by adding patch blocks to the slot 114 of the main radiator 11. Besides, by means of the above special design, the dual-band dipole antenna 1 can still have good impedance even if it is very close to the ground; thus, the dual-band dipole antenna 1 can exactly achieve better performance.
(18) As described above, when a designer want to design the dual-band dipole antenna 1 of the embodiment for a specific purpose, the antenna designer can not only adjust the overall operating frequency band of the antenna 1, but also can independently adjust its low operating frequency band or high operating frequency band; accordingly, the dual-band dipole antenna 1 can be easily designed to satisfy the requirements of various applications, which is more flexible in usage and very suitable for various dual-band products.
(19) Please refer to
(20) In addition, after being adjusted by the above method, the dual-band dipole antenna 1 can be applied to the wireless communication devices operated under other operating frequency band; for example, LTE-Band 7_25002690 MHz, LTE-Band 40_23002400 MHz or LTE-Band 38_25702620 MHz.
(21) It is noteworthy to point out that the structure of most conventional antennas is complicated, which will significantly increase their manufacturing cost. On the contrary, the structure of the dual-band dipole antenna according to the present invention is very simple and can be implemented by a printed antenna; therefore, the manufacturing process of the dual-band dipole antenna does not need molds and assembly process, so its manufacturing cost can be dramatically reduced and its product competitiveness can be significantly increased.
(22) Furthermore, due to the special design, the dual-band antenna in accordance with the present invention can still have great impedance matching even if the antenna is very close to the ground; thus, the dual-band antenna in accordance with the present invention can exactly achieve great performance.
(23) Please refer to
(24) Please refer to
(25) As shown in
(26) Please refer to
(27) As shown in
(28) Please refer to
(29) As shown in
(30) As described above, the antenna designer can not only adjust the overall operating frequency band of the dual-band dipole antenna in accordance with the present invention, but also can independently adjust its low operating frequency band or high operating frequency band; thus, the dual-band dipole antenna 1 can be easily designed to satisfy the requirements of various applications and can achieve great performance. Therefore, the present invention actually has an inventive step.
(31) To sum up, in one embodiment of the present invention, the overall operating frequency of the dual-bank dipole antenna can be adjusted by adding one or more patch blocks to the main radiator to increase the size of the main radiator, such that the antenna can conform to various requirements and can be more flexible in usage.
(32) Also, in one embodiment of the present invention, the low operating frequency band and the high operating frequency band can be fine-tuned by modifying the lengths of the first radiator and the second radiator, so the application of the antenna can be more comprehensive and be able to meet different requirements.
(33) Besides, in one embodiment of the present invention, the design of the present invention can be implemented by a printed antenna, so the antenna can be manufacturing without using molds and without assembly process; accordingly, the cost of the antenna can be significantly reduced to increase its product competitiveness.
(34) Moreover, the antenna according to the present invention can still have good impedance matching even if the antenna is very close to the ground, so the antenna can achieve better performance.
(35) While the means of specific embodiments in present invention has been described by reference drawings, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of the invention set forth in the claims. The modifications and variations should in a range limited by the specification of the present invention.