SIGNAL TRANSMITTING DEVICE
20230121466 · 2023-04-20
Inventors
Cpc classification
International classification
Abstract
A signal transmitting device is configured to transmit a radio frequency signal outputted from a chip. The signal transmitting device includes a substrate and a connecter. The substrate is coupled to the chip. The substrate includes a waveguide, and the waveguide is configured to transmit the radio frequency signal along a first direction. The connecter is coupled to the substrate and configured to extract the radio frequency signal from the substrate to transmit the same along a second direction. The second direction is perpendicular to the substrate.
Claims
1. A signal transmitting device, configured to transmit a radio frequency signal outputted from a chip, comprising: a substrate, coupled to the chip, wherein the substrate comprises a waveguide, wherein the waveguide is configured to transmit the radio frequency signal along a first direction; and a connector, coupled to the substrate, and configured to extract the radio frequency signal from the substrate and transmit the same along a second direction, wherein the second direction is perpendicular to the substrate.
2. The signal transmitting device of claim 1, wherein the substrate further comprises: a first conductive layer; a second conductive layer; and a dielectric layer, wherein the first conductive layer and the second conductive layer are stacked and separated by the dielectric layer, wherein the waveguide is at least partially formed by a portion of the first conductive layer.
3. The signal transmitting device of claim 2, wherein the dielectric layer has a plurality of first through holes connecting the first conductive layer and the second conductive layer along the second direction, wherein the plurality of first through holes are arranged into a first through hole row and a second through hole row along the first direction, wherein the radio frequency signal is transmitted by the first conductive layer and the second conductive layer between the first through hole row and the second through hole row, wherein the portion of the first conductive layer is a portion surrounded by the first through hole row and the second through hole row.
4. The signal transmitting device of claim 3, wherein the dielectric layer further comprises a plurality of second through holes connecting the first conductive layer and the second conductive layer along the second direction, wherein the plurality of second through holes are arranged in a first through hole column between the first through hole row and the second through hole row and along a third direction, wherein the third direction, the first direction, and the second direction are perpendicular to each other.
5. The signal transmitting device of claim 4, wherein the first conductive layer comprises a circular hollow pattern, wherein the circular hollow pattern is surrounded by the first through hole row, the second through hole row and the first through hole column, a region of the first conductive layer inside the circular hollow pattern is not coupled to a region of the first conductive layer outside the circular hollow pattern.
6. The signal transmitting device of claim 5, wherein a frequency of the radio frequency signal is about 60 GHz, and a distance between a center of circle of the circular hollow pattern and the first through hole column is about 0.35-fold to a wavelength of the radio frequency signal transmitted by the waveguide.
7. The signal transmitting device of claim 5, wherein the dielectric layer further comprises a via connecting the first conductive layer and the second conductive layer along the second direction, wherein the via is configured to electrically connect the region of the first conductive layer inside the circular hollow pattern and the second conductive layer.
8. The signal transmitting device of claim 5, wherein the connector comprises: an inner conductor, coupled to the region of the first conductive layer inside the circular hollow pattern; an insulating layer; and an outer conductor, coupled to the region of the first conductive layer outside the circular hollow pattern, wherein the insulating layer is disposed between the inner conductor and the outer conductor.
9. The signal transmitting device of claim 2, wherein the first conductive layer further comprises: a trapezoidal microstrip, coupled to the chip and the waveguide, wherein the trapezoidal microstrip has a length in the first direction, and the length is about 0.5- to one-fold of a wavelength of the radio frequency signal transmitted by the waveguide.
10. The signal transmitting device of claim 1, wherein the substrate is configured to transmit the radio frequency signal in a transverse electric mode (TE mode).
11. A signal transmitting device, configured to transmit a radio frequency signal outputted from a chip, comprising: a microstrip, coupled to the chip and configured to receive the radio frequency signal; a substrate, coupled to the microstrip and configured to transmit the radio frequency signal along a first direction in the transverse electric mode; and a connector, configured to extract the radio frequency signal from the substrate along a second direction, wherein the second direction is perpendicular to the first direction.
12. The signal transmitting device of claim 11, wherein the substrate further comprises: a first conductive layer, coupled between the microstrip and the connector; a second conductive layer, coupled to a ground terminal; and a dielectric layer, wherein the first conductive layer and the second conductive layer are stacked and separated by the dielectric layer.
13. The signal transmitting device of claim 12, wherein the dielectric layer has a plurality of first through holes connecting the first conductive layer and the second conductive layer along the second direction, wherein the plurality of first through holes are arranged into a first through hole row and a second through hole row along the first direction, wherein the microstrip is coupled to the first conductive layer between the first through hole row and the second through hole row.
14. The signal transmitting device of claim 13, wherein the dielectric layer further comprises a plurality of second through holes connecting the first conductive layer and the second conductive layer along the second direction, wherein the plurality of second through holes are arranged into a first through hole column between the first through hole row and the second through hole row and along a third direction, wherein the third direction, the first direction, and the second direction are perpendicular to each other.
15. The signal transmitting device of claim 14, wherein the first conductive layer comprises a circular hollow pattern, wherein the circular hollow pattern is surrounded by the first through hole row, the second through hole row and the first through hole column, a region of the first conductive layer inside the circular hollow pattern is not coupled to a region of the first conductive layer outside the circular hollow pattern.
16. The signal transmitting device of claim 15, wherein the connector comprises: an inner conductor, coupled to the region of the first conductive layer inside the circular hollow pattern; an insulating layer; and an outer conductor, coupled to the region of the first conductive layer outside the circular hollow pattern, wherein the insulating layer is disposed between the inner conductor and the outer conductor.
17. The signal transmitting device of claim 15, wherein the dielectric layer further comprises a via connecting the first conductive layer and the second conductive layer along the second direction, wherein the via is configured to electrically connect the region inside the circular hollow pattern and the second conductive layer.
18. The signal transmitting device of claim 15, wherein the substrate further comprises a waveguide, and the waveguide is at least partially formed by a portion of the first conductive layer, wherein the portion of the first conductive layer is a region surround by the first through hole row, the second through hole row and the first through hole column.
19. The signal transmitting device of claim 15, wherein a center of circle of the circular hollow pattern and the first through hole column has a distance therebetween, and the distance is about 0.35-fold to a wavelength of the radio frequency signal transmitted by the waveguide, and a frequency of the radio frequency signal is about 60 GHz.
20. The signal transmitting device of claim 11, wherein the micro strip has a length in the first direction, and the length is about 0.5- to one-fold of a wavelength of the radio frequency signal transmitted by the waveguide.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] Various aspects of the present application can best be understood upon reading the detailed description below and accompanying drawings. It should be noted that the various features in the drawings are not drawn to scale in accordance with standard practice in the art. In fact, the size of some features may be deliberately enlarged or reduced for the purpose of discussion.
[0008]
[0009]
[0010]
DETAILED DESCRIPTION
[0011]
[0012] In some embodiments, the substrate 100 is a bilayer printed circuit board, and the microstrip 200 and the conductive layer 110 are monolithic conductive structures on one side of the bilayer printed circuit board. In other words, the monolithic conductive structure disposed above dielectric layer 130 in
[0013] In the transmission path of the radio frequency signal S, the radio frequency signal S is transmitted on the microstrip 200 and the substrate 100 along the X direction and transmitted on the connector 300 along the Z direction. Because of the different shapes and materials of the transmission medium and the different transmission directions, the design of the microstrip 200, the substrate 100 and the connector 300 must respond to the frequency and mode of the radio frequency signal S to do impedance matching in order to maintain the transmission quality, as detailed below.
[0014]
[0015] In some embodiments, the distance L1 is approximately 0.5- to one-fold of the wavelength of the radio frequency signal S transmitted on the substrate 100. For example, when the frequency of the radio frequency signal S is 60 GHz, the distance L1 can be 2 mm. In this embodiment, the length W1 is about 0.2 mm, and the length W2 is about 0.67 mm.
[0016] The substrate 100 includes a plurality of through holes VG and a plurality of through holes VS, wherein the through holes VG and through holes VS have a diameter of D. As shown in
[0017] In some embodiments, the radio frequency signal S is transmitted in the waveguide in the transverse electric mode (TM mode), such as transmitted in the TM.sub.1,0 mode. In this embodiment, a conduction frequency of the radio frequency signal S of 60 GHz in the TM.sub.1,0 mode is about 42.86 GHz. A relationship between the diameter D, the pitch P and the distance A can be obtained from following Equations (1) and (2).
wherein f.sub.c is a cutoff frequency of the radio frequency signal S, c is the speed of light, and ε.sub.r is the dielectric constant of the dielectric layer 130.
[0018] In some embodiments, the dielectric constant of the dielectric layer 130 is about 3.6, the diameter D is about 0.2 mm, the pitch P is about 0.3 mm, and the distance A is about 1.99 mm.
[0019] In some embodiments, the distance Ag and the length W2 can be expressed as the following Equation (3).
W2≈0.4×Ag (3)
[0020] Reference is made to both
[0021] Returning to
[0022] In some embodiments, the plurality of the through holes VS arranged in the through hole column C1 are also referred to as the short-circuit wall, and the distance L2 between the plurality of the through holes VS and the center of circle of the circular hollow pattern 111 is configured to adjust the impedance matching from the substrate 100 to the connector 300. More specifically, the plurality of the through holes VS arranged in the through hole column C1 are configured to reduce the return loss and insertion loss of the radio frequency signal S transmitted from the substrate 100 to the connector 300, whereas a lower return loss and insertion loss may be achieved when the distance L2 is approximately 0.35-fold of the wavelength of the radio frequency signal S transmitted in the substrate 100. In this embodiment, the distance L2 is about 0.4 mm.
[0023] In some embodiments, the impedance matching from the substrate 100 to the connector 300 is independent from the distance between the center of circle of the circular hollow pattern 111 and the microstrip 200.
[0024] Reference is also made to
[0025] The connector 300 is substantially disposed above the circular hollow pattern 111 of the conductive layer 110. The connector 300 includes an inner conductor 310, an outer conductor 320 and an insulating layer 330. The insulating layer 330 is configured to separate the inner conductor 310 and the outer conductor 320 from each other so that the inner conductor 310 and the outer conductor 320 are electrically insulated. The inner conductor 310 is electrically coupled to the inner region 110a of the conductive layer 110 inside the circular hollow pattern 111, such that the inner conductor 310 is also electrically coupled to the via VC and the conductive layer 120. The outer conductor 320 is electrically coupled to the outer region 110b of the conductive layer 110 outside the circular hollow pattern 111. The connector 300 is configured to vertically extract the radio frequency signal S along the Z direction, in which the radio frequency signal is originally transmitted on the substrate 100 along the X direction.
[0026] The foregoing description briefly sets forth the features of certain embodiments of the present application so that persons having ordinary skill in the art more fully understand the various aspects of the disclosure of the present application. It will be apparent to those having ordinary skill in the art that they can easily use the disclosure of the present application as a basis for designing or modifying other processes and structures to achieve the same purposes and/or benefits as the embodiments herein. It should be understood by those having ordinary skill in the art that these equivalent implementations still fall within the spirit and scope of the disclosure of the present application and that they may be subject to various variations, substitutions, and alterations without departing from the spirit and scope of the present disclosure.