LOW-LOSS TRANSMISSION LINE STRUCTURE
20240222834 ยท 2024-07-04
Assignee
Inventors
Cpc classification
H05K1/0219
ELECTRICITY
International classification
Abstract
The disclosure discloses a low-loss transmission line structure, which belongs to the field of radio frequency transmission lines and includes at least two metal layers stacked in a vertical manner. A dielectric layer is filled between the metal layers. The metal layers include a signal transmission strip in a middle portion. Ground strips are provided on both sides of the signal transmission strip. Through holes are evenly distributed on the dielectric layer, and the signal transmission strips on each of the metal layers are connected through the through holes to form a signal transmission line. The ground strips on each metal layer are connected through the through holes.
Claims
1. A low-loss transmission line structure, comprising: at least two metal layers, stacked in a vertical manner and spaced apart from each other, wherein a middle portion of the metal layer serves as a signal transmission strip, the signal transmission strip is disposed to transmit an electromagnetic wave signal, remaining portions on both sides of the signal transmission strip serve as ground strips, the ground strips and the signal transmission strip are spaced apart; and a dielectric layer, is filled between the metal layers, the dielectric layer is provided with through holes, the signal transmission strips on each of the metal layers are connected through the through holes to form a signal transmission line, and the ground strips on each of the metal layers are connected through the through holes, and the low-loss transmission line structure is able to allow most of an electromagnetic field around the low-loss transmission line structure to exist in the air, thereby effectively reducing a loss during a signal transmission.
2. The low-loss transmission line structure according to claim 1, wherein the ground strips on an uppermost metal layer is connected to each other through a low-loss connection structure, and the low-loss connection structure is a metal jumper or a gold-wire bonding wire.
3. The low-loss transmission line structure according to claim 2, wherein the metal jumpers are connected to each other to form a metal shield.
4. The low-loss transmission line structure according to claim 1, wherein air grooves are evenly distributed on both sides of the dielectric layer close to the signal transmission strip.
5. The low-loss transmission line structure according to claim 4, wherein the air grooves are through grooves that penetrate upper and lower surfaces of the dielectric layer or shallow grooves that are located on the upper and lower surfaces of the dielectric layer and are not communicated with each other.
6. The low-loss transmission line structure according to claim 4, wherein a shape of the air groove is circular or polygonal.
7. The low-loss transmission line structure according to claim 2, wherein the metal jumper is composed of surface mount components and connected metal sheets.
8. The low-loss transmission line structure according to claim 3, wherein the ground strips on the uppermost metal layer and the ground strips on a lowermost metal layer are connected to each other through the metal shield.
9. The low-loss transmission line structure according to claim 1, wherein the dielectric layer is made of an epoxy glass fiber cloth substrate, or a dielectric plate whose surface is able to be printed with metal, or a low-loss microwave dielectric plate.
10. The low-loss transmission line structure according to claim 1, wherein the low-loss transmission line structure is applied in a dielectric integrated suspension line structure, there are multiple ground metal layers respectively disposed on a uppermost metal layer and a lowermost metal layer in the stacked manner and spaced apart from each other, the dielectric layers are filled between the multiple ground metal layers which are spaced apart from each other in the stacked manner, and the multiple ground metal layers are connected through the through holes.
11. The low-loss transmission line structure according to claim 2, wherein the low-loss transmission line structure is applied in a dielectric integrated suspension line structure, there are multiple ground metal layers respectively disposed on the uppermost metal layer and a lowermost metal layer in the stacked manner and spaced apart from each other, the dielectric layers are filled between the multiple ground metal layers which are spaced apart from each other in the stacked manner, and the multiple ground metal layers are connected through the through holes.
12. The low-loss transmission line structure according to claim 3, wherein the low-loss transmission line structure is applied in a dielectric integrated suspension line structure, there are multiple ground metal layers respectively disposed on the uppermost metal layer and a lowermost metal layer in the stacked manner and spaced apart from each other, the dielectric layers are filled between the multiple ground metal layers which are spaced apart from each other in the stacked manner, and the multiple ground metal layers are connected through the through holes.
13. The low-loss transmission line structure according to claim 4, wherein the low-loss transmission line structure is applied in a dielectric integrated suspension line structure, there are multiple ground metal layers respectively disposed on a uppermost metal layer and a lowermost metal layer in the stacked manner and spaced apart from each other, the dielectric layers are filled between the multiple ground metal layers which are spaced apart from each other in the stacked manner, and the multiple ground metal layers are connected through the through holes.
14. The low-loss transmission line structure according to claim 5, wherein the low-loss transmission line structure is applied in a dielectric integrated suspension line structure, there are multiple ground metal layers respectively disposed on a uppermost metal layer and a lowermost metal layer in the stacked manner and spaced apart from each other, the dielectric layers are filled between the multiple ground metal layers which are spaced apart from each other in the stacked manner, and the multiple ground metal layers are connected through the through holes.
15. The low-loss transmission line structure according to claim 6, wherein the low-loss transmission line structure is applied in a dielectric integrated suspension line structure, there are multiple ground metal layers respectively disposed on a uppermost metal layer and a lowermost metal layer in the stacked manner and spaced apart from each other, the dielectric layers are filled between the multiple ground metal layers which are spaced apart from each other in the stacked manner, and the multiple ground metal layers are connected through the through holes.
16. The low-loss transmission line structure according to claim 7, wherein the low-loss transmission line structure is applied in a dielectric integrated suspension line structure, there are multiple ground metal layers respectively disposed on the uppermost metal layer and a lowermost metal layer in the stacked manner and spaced apart from each other, the dielectric layers are filled between the multiple ground metal layers which are spaced apart from each other in the stacked manner, and the multiple ground metal layers are connected through the through holes.
17. The low-loss transmission line structure according to claim 8, wherein the low-loss transmission line structure is applied in a dielectric integrated suspension line structure, there are multiple ground metal layers respectively disposed on the uppermost metal layer and the lowermost metal layer in the stacked manner and spaced apart from each other, the dielectric layers are filled between the multiple ground metal layers which are spaced apart from each other in the stacked manner, and the multiple ground metal layers are connected through the through holes.
18. The low-loss transmission line structure according to claim 9, wherein the low-loss transmission line structure is applied in a dielectric integrated suspension line structure, there are multiple ground metal layers respectively disposed on a uppermost metal layer and a lowermost metal layer in the stacked manner and spaced apart from each other, the dielectric layers are filled between the multiple ground metal layers which are spaced apart from each other in the stacked manner, and the multiple ground metal layers are connected through the through holes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE EMBODIMENTS
[0030] In order to make the purpose, technical solution and advantages of the present disclosure more comprehensible, the present disclosure will be further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described here are only used to explain the present disclosure, not to limit the present disclosure.
[0031] The disclosure provides a low-loss transmission line structure, which includes at least two metal layers 1 stacked in a vertical manner. A dielectric layer 2 is filled between the adjacent metal layers 1. The metal layer 1 includes a signal transmission strip a in a middle portion. The signal transmission strips are used to transmit electromagnetic wave signals. There are ground strips b on both sides of the signal transmission strip a. The ground strip b is used for grounding. As shown in
[0032] Referring to
[0033] The present disclosure will be further described below with reference to specific drawings and embodiments.
Embodiment 1
[0034] Referring to
Embodiment 2
[0035] As shown in
[0036] In order to further reduce the loss of the dielectric layer 2 during signal transmission, air grooves are evenly distributed on both sides of the dielectric layer 2 close to the signal transmission strip a. By reducing the effective volume of the dielectric layer 2, the loss of the transmission signal is further reduced. Furthermore, the air groove 22 may be designed in a variety of shapes. The shape of the air grooves 22 is circular or polygonal. Specifically, in addition to the square air groove shown in the figure, the air groove may also be changed into a cylindrical shape, a square with rounded corners, and other polygonal shapes. Furthermore, the air grooves 22 may be through grooves that penetrate a upper and lower surfaces of the dielectric layer 2 or shallow grooves that are located on the upper and lower surfaces of the dielectric layer 2 and are not communicated with each other.
[0037] In order to apply the structure of the present disclosure to the dielectric integrated suspension line structure, the realization may be achieved by changing the grounding method of the structure of the disclosure. Specifically, as shown in
[0038] In order to further intuitively verify that the transmission line structure of the present disclosure has low loss characteristics,
[0039] By using the low-loss transmission line structure provided by the present disclosure, it is possible to allow most of the electromagnetic field around the transmission line to exist in the air, thereby effectively reducing losses during signal transmission. In the meantime, the signal transmission strips a on two or more metal layers are connected through the through holes 21 to form a structure of the signal transmission line 3, so it is possible to reduce conductor loss and increases power capacity.
[0040] It is easy for those skilled in the art to understand that the above descriptions are only preferred embodiments of the present disclosure and are not intended to limit the present disclosure. Any modifications, equivalent substitutions and improvements, etc., made within the spirit and principles of the present disclosure should all be included in the scope to be protected by the present disclosure.