Conversion circuit and communication device

The conversion circuit addresses high radiation and conductor losses by employing a waveguide with strategically aligned conductive pillars and a transmission line design, enhancing signal transmission efficiency.

JP7795501B2Active Publication Date: 2026-01-07KK TOSHIBA
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Patent Information

Application Number
JP2023110157
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-07-04
Publication Date
2026-01-07
Estimated Expiration
2043-07-04

AI Technical Summary

Technical Problem

Existing conversion circuits in communication devices suffer from high radiation and conductor losses, which affect their performance.

Method used

The conversion circuit incorporates a waveguide with specific conductive portions and a transmission line design, including aligned conductive pillars and extension portions spaced apart from the conductive layers, along with a signal line configuration that minimizes radiation and conductor losses through strategic alignment and insulation.

Benefits of technology

This design reduces radiation and conductor losses, enabling low-reflection and low-insertion-loss signal transmission, thereby improving the overall performance of the conversion circuit.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a transition circuit and a communication device, capable of improving characteristics.SOLUTION: According to one embodiment, a transition circuit includes a waveguide, first and second conductive portions, and a transmission line. The waveguide includes first and second conductive layers, and first and second side portions. A direction from the first conductive layer to the second conductive layer is along a first direction. A second direction from the first side portion to the second side portion crosses the first direction. The first conductive portion is provided between the first and second side portions in a second direction. The first conductive portion includes a first extending portion extending along the first direction. The second conductive portion is provided between the first conductive portion and the second side portion in the second direction. The second conductive portion includes a second extending portion extending along the first direction. The transmission line includes a signal line. The signal line includes a first line portion, a first connecting portion and a second connecting portion. The first connecting portion includes a first end portion. The second connecting portion includes a second end portion. The first end portion is connected to the first conductive portion. The second end portion is connected to the second conductive portion.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] SUMMARY OF THE INVENTION An embodiment of the present invention relates to a conversion circuit and a communication device. [Background technology]

[0002] For example, conversion circuits are used in various communication devices, and it is desirable to improve the characteristics of the conversion circuits. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2010-141691 Summary of the Invention [Problem to be solved by the invention]

[0004] The embodiments of the present invention provide a conversion circuit and a communication device that can improve performance. [Means for solving the problem]

[0005] According to an embodiment of the present invention, the conversion circuit includes a waveguide, a first conductive portion, a second conductive portion, and a transmission line. The waveguide includes a first conductive layer, a second conductive layer, a first side portion, and a second side portion. A direction from the first conductive layer to the second conductive layer is along a first direction. The first side portion electrically connects the first conductive layer to the second conductive layer. The second side portion electrically connects the first conductive layer to the second conductive layer. A second direction from the first side portion to the second side portion intersects with the first direction. The first conductive portion is provided between the first side portion and the second side portion in the second direction. The first conductive portion includes a first extension portion extending along the first direction. The first extension portion is spaced apart from the second conductive layer. The second conductive portion is provided between the first conductive portion and the second side portion in the second direction. The second conductive portion includes a second extension portion extending along the first direction. The second extension portion is spaced from the second conductive layer. The transmission line includes a signal line. The signal line includes a first line portion, a first connection portion, and a second connection portion. The first connection portion includes a first end and a first other end. The second connection portion includes a second end and a second other end. The first other end and the second other end are connected to the first line portion. The first end is connected to the first conductive portion. The second end is connected to the second conductive portion. A portion of the second conductive layer is between the first conductive layer and at least a portion of the signal line. [Brief explanation of the drawings]

[0006] [Figure 1] FIG. 1 is a schematic perspective view illustrating a conversion circuit according to the first embodiment. [Figure 2] FIG. 2 is a schematic plan view illustrating the conversion circuit according to the first embodiment. [Figure 3] 3(a) to 3(e) are schematic cross-sectional views illustrating the conversion circuit according to the first embodiment. [Figure 4] 4(a) to 4(c) are schematic cross-sectional views illustrating the conversion circuit according to the first embodiment. [Figure 5] FIG. 5 is a graph illustrating the characteristics of the conversion circuit according to the first embodiment. [Figure 6] FIG. 6 is a schematic plan view illustrating the conversion circuit according to the first embodiment. [Figure 7] FIG. 7 is a schematic plan view illustrating the conversion circuit according to the first embodiment. [Figure 8] 8(a) to 8(e) are schematic cross-sectional views illustrating the conversion circuit according to the first embodiment. [Figure 9] 9(a) to 9(c) are schematic cross-sectional views illustrating the conversion circuit according to the first embodiment. [Figure 10] FIG. 10 is a schematic plan view illustrating the conversion circuit according to the first embodiment. [Figure 11] FIG. 11 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. [Figure 12] FIG. 12 is a schematic cross-sectional view illustrating the conversion circuit according to the first embodiment. [Figure 13] FIG. 13 is a graph illustrating the characteristics of the conversion circuit according to the first embodiment. [Figure 14] FIG. 14 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. [Figure 15] FIG. 15 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. [Figure 16] FIG. 16 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. [Figure 17] FIG. 17 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. [Figure 18] FIG. 18 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. [Figure 19] FIG. 19 is a schematic cross-sectional view illustrating the conversion circuit according to the first embodiment. [Figure 20] FIG. 20 is a schematic diagram illustrating a communication device according to the second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0007] Hereinafter, an embodiment of the present invention will be described with reference to the drawings. The drawings are schematic or conceptual, and the relationship between the thickness and width of each part, the size ratio between parts, etc. are not necessarily the same as those in reality. Even when the same part is shown, the dimensions and ratios may be different depending on the drawing. In this specification and in each drawing, elements similar to those previously described with reference to the previous drawings are designated by the same reference numerals, and detailed descriptions thereof will be omitted where appropriate.

[0008] (First embodiment) FIG. 1 is a schematic perspective view illustrating a conversion circuit according to the first embodiment. FIG. 2 is a schematic plan view illustrating the conversion circuit according to the first embodiment. 3(a) to 3(e) and 4(a) to 4(c) are schematic cross-sectional views illustrating the conversion circuit according to the first embodiment. 3(a) is a cross-sectional view taken along line A1-A2 in FIG. 2. FIG. 3(b) is a cross-sectional view taken along line A3-A4 in FIG. 2. FIG. 3(c) is a cross-sectional view taken along line A5-A6 in FIG. 2. FIG. 3(d) is a cross-sectional view taken along line A7-A8 in FIG. 2. FIG. 3(e) is a cross-sectional view taken along line A9-A10 in FIG. 2. FIG. 4(a) is a cross-sectional view taken along line B1-B2 in FIG. 2. FIG. 4(b) is a cross-sectional view taken along line B3-B4 in FIG. 2. FIG. 4(c) is a cross-sectional view taken along line B5-B6 in FIG. 2.

[0009] As shown in FIG. 1, the conversion circuit 110 according to the embodiment includes a waveguide 20, a first conductive portion 31, a second conductive portion 32, and a transmission line .

[0010] The waveguide 20 includes a first conductive layer 21, a second conductive layer 22, a first side portion 25, and a second side portion 26. The direction from the first conductive layer 21 to the second conductive layer 22 is along a first direction D1.

[0011] The first direction D1 is defined as the Z-axis direction. A direction perpendicular to the Z-axis direction is defined as the Y-axis direction. A direction perpendicular to the Z-axis direction and the Y-axis direction is defined as the X-axis direction.

[0012] The first side portion 25 electrically connects the first conductive layer 21 to the second conductive layer 22. The second side portion 26 electrically connects the first conductive layer 21 to the second conductive layer 22. A second direction D2 from the first side portion 25 to the second side portion 26 intersects with the first direction D1. The second direction D2 may be, for example, the Y-axis direction.

[0013] For example, the first side portion 25 and the second side portion 26 extend along the X-axis direction. As described below, the first side portion 25 and the second side portion 26 may include a plurality of conductive pillars. The plurality of conductive pillars may be, for example, a plurality of conductive pins. The plurality of conductive pillars may be, for example, a plurality of conductive pipes. The conductive pipes are hollow. The conductive pins or conductive pipes may be formed, for example, by plating through holes. The plurality of conductive pins or conductive pipes include, for example, a metal. For example, the plurality of conductive pillars included in the first side portion 25 are aligned along the X-axis direction. The plurality of conductive pillars included in the second side portion 26 are aligned along the X-axis direction.

[0014] The first conductive portion 31 is provided between the first side portion 25 and the second side portion 26 in the second direction D2. The first conductive portion 31 includes a first extension portion 31e. The first extension portion 31e extends along the first direction D1. The first extension portion 31e is spaced apart from the second conductive layer 22. In this example, a first opening 22p is provided in the second conductive layer 22. The first extension portion 31e passes through the first opening 22p along the Z-axis direction. With this configuration, the first extension portion 31e may be spaced apart from the second conductive layer 22.

[0015] The second conductive portion 32 is provided between the first conductive portion 31 and the second side portion 26 in the second direction D2. The second conductive portion 32 includes a second extension portion 32e. The second extension portion 32e extends along the first direction D1. The second extension portion 32e is spaced apart from the second conductive layer 22. In this example, a second opening 22q is provided in the second conductive layer 22. The second extension portion 32e passes through the second opening 22q along the Z-axis direction. With this configuration, the second extension portion 32e may be spaced apart from the second conductive layer 22.

[0016] The transmission line 40 includes a signal line 40s. The signal line 40s includes a first line portion 45, a first connection portion 41, and a second connection portion .

[0017] As shown in FIG. 2, the first connection portion 41 includes a first end portion 41e and a first other end portion 41f. The second connection portion 42 includes a second end portion 42e and a second other end portion 42f. The first other end portion 41f and the second other end portion 42f are connected to the first line portion 45. The first end portion 41e is connected to the first conductive portion 31. The second end portion 42e is connected to the second conductive portion 32. The first connection portion 41 is electrically connected to the second connection portion 42. The same (single) signal is applied to the first connection portion 41 and the second connection portion 42.

[0018] 4(a), a portion of the second conductive layer 22 is located between the first conductive layer 21 and the first line portion 45 included in the signal line 40s. In this manner, a portion of the second conductive layer 22 is located between the first conductive layer 21 and at least a portion of the signal line 40s.

[0019] As shown in FIGS. 3(a) and 3(b), the conversion circuit 110 may include a base 51s and a first insulating layer 51. The base 51s is insulating. The base 51s may be, for example, a dielectric substrate. At least a portion of the base 51s is provided between the first conductive layer 21 and the second conductive layer 22.

[0020] At least a portion of the first insulating layer 51 is provided between a portion of the second conductive layer 22 and at least a portion of the signal line 40s (for example, the first line portion 45). The signal line 40s is electrically insulated from the second conductive layer 22.

[0021] For example, the second conductive layer 22 may include a portion 22ex that extends to a region where the signal line 40s (e.g., the first line portion 45) is provided (see FIG. 3(c)). For example, the second conductive layer 22 including the portion 22ex may be set to a reference potential (e.g., ground potential). In one example, the portion 22ex and the signal line 40s may form the transmission line 40.

[0022] 3(c), the transmission line 40 may include an opposing conductive layer 40G. In one example, the opposing conductive layer 40G may be the portion 22ex of the second conductive layer 22.

[0023] As shown in FIG. 3(c), the direction from the opposing conductive layer 40G to the signal line 40s is along the first direction D1. The distance along the first direction D1 between the first conductive layer 21 and the second conductive layer 22 is defined as a first distance dz1. The distance along the first direction D1 between the opposing conductive layer 40G and the signal line 40s (e.g., the first line portion 45) is defined as a second distance dz2. The first distance dz1 is longer than the second distance dz2. The opposing conductive layer 40G may be continuous with the second conductive layer 22. The opposing conductive layer 40G may be provided separately from the second conductive layer 22.

[0024] A long first distance dz1 makes it easier to reduce loss in the waveguide 20. A long second distance dz2 makes it easier to reduce conductor loss in the transmission line 40, for example.

[0025] The first conductive layer 21 may extend to a region where the signal line 40s is provided. For example, the first conductive layer 21 may include a portion 21ex extending to a region where the signal line 40s (e.g., the first line portion 45) is provided (see FIG. 3(c)). For example, the first conductive layer 21 including the portion 21ex may be set to a reference potential (e.g., ground potential). In one example, the portion 21ex and the signal line 40s may form a transmission line 40.

[0026] FIG. 5 is a graph illustrating the characteristics of the conversion circuit according to the first embodiment. FIG. 5 illustrates the characteristics of the conversion circuit 110. The horizontal axis of FIG. 5 is frequency f1. The vertical axis is frequency characteristic SP of the amplitude of the S parameter. FIG. 5 illustrates the amplitude S11 of the reflection coefficient and the amplitude S21 of the transmission coefficient. In this example, the effect of material loss is ignored. As shown in FIG. 5, in the frequency f1 range of 23 GHz to 36 GHz, the amplitude S11 of the reflection coefficient is below -15 dB. In the frequency f1 range of 23 GHz to 36 GHz, the amplitude S21 of the transmission coefficient is above -0.3 dB. Radiation loss is suppressed. Low-reflection conversion is possible.

[0027] In the embodiment, a first conductive portion 31 and a second conductive portion 32 are provided. The second directions of the electric fields of the signals radiated from between these two conductive portions (conductive pillars) are opposite to each other. This is thought to cause parts of the electric fields leaking out of the conversion circuit to cancel each other out. This is thought to reduce radiation loss. According to the embodiment, a conversion circuit capable of improving characteristics can be provided.

[0028] In an embodiment, for example, the transmission line 40 transmits a single-ended signal. For example, the mode of the signal can be converted in a conversion circuit.

[0029] In the embodiment, at least one of the first conductive layer 21 and the second conductive layer 22 includes, for example, at least one selected from the group consisting of copper, silver, aluminum, and gold. At least one of the first conductive portion 31 and the second conductive portion 32 includes, for example, at least one selected from the group consisting of copper, silver, aluminum, and gold. The signal line 40s includes, for example, at least one selected from the group consisting of copper, silver, aluminum, and gold. The base 51s may include, for example, at least one selected from the group consisting of glass cloth, resin (e.g., PTFE), and alumina.

[0030] 1 and 2, the waveguide 20 may further include a third side portion 28. The third side portion 28 electrically connects the first conductive layer 21 to the second conductive layer 22. The third side portion 28 extends, for example, along the second direction D2. As shown in FIG. 3(c), the third side portion 28 overlaps with the transmission line 40 in the first direction D1. The third side portion 28 overlaps with the first line portion 45 of the signal line 40s in the first direction D1.

[0031] The first side portion 25 and the second side portion 26 extend along a third direction D3. The third direction D3 intersects, for example, a plane including the first direction D1 and the second direction D2. The third direction D3 is, for example, the X-axis direction.

[0032] FIG. 6 is a schematic plan view illustrating the conversion circuit according to the first embodiment. As shown in FIG. 6, in the first connecting portion 41, the length (distance) between the first other end 41f and the first end 41e is defined as a first length L1. The wavelength of a signal guided through the waveguide 20 is defined as a guided wavelength λg. In the embodiment, the first length L1 is preferably substantially (1+2n) / 4 times the guided wavelength λg, where "n" is an integer equal to or greater than 0. For example, the first length L1 is preferably 0.8 to 1.2 times (1+2n) / 4 times the guided wavelength λg. This suppresses loss in the first connecting portion 41. "n" may be, for example, 10 or less. The first length L1 may be 0.9 to 1.1 times (1+2n) / 4 times the guided wavelength λg. "n" may be, for example, 5 or less.

[0033] As shown in FIG. 6, in the second connection portion 42, the length (distance) between the second other end 42f and the second end 42e is defined as the second length L2. In the embodiment, the second length L2 is preferably substantially (1+2m) / 4 times the guided wavelength λg. "m" is an integer equal to or greater than 0. For example, the second length L2 is preferably 0.8 to 1.2 times (1+2m) / 4 times the guided wavelength λg. This suppresses loss in the second connection portion 42. "m" may be, for example, 10 or less. The second length L2 may be 0.9 to 1.1 times (1+2m) / 4 times the guided wavelength λg. "m" may be, for example, 5 or less.

[0034] As shown in FIG. 6 , the distance along the third direction D3 between the third side portion 28 and the first conductive portion 31 is defined as the first conductive portion distance d1. As already described, the third direction D3 intersects with a plane including the first direction D1 and the second direction D2. The first conductive portion distance d1 is preferably 0.8 to 1.2 times (1+2l) / 4 times the guided wavelength λg of the waveguide 20, where "l" is an integer greater than or equal to 0. This can suppress loss occurring in the first conductive portion 31. "l" may be, for example, 10 or less. The first conductive portion distance d1 may also be 0.9 to 1.1 times (1+2l) / 4 times the guided wavelength λg of the waveguide 20. "l" may be, for example, 5 or less.

[0035] As shown in FIG. 6, the distance along the third direction D3 between the third side portion 28 and the second conductive portion 32 is defined as the second conductive portion distance d2. The second conductive portion distance d2 is preferably 0.8 to 1.2 times (1+2k) / 4 times the guided wavelength λg of the waveguide 20, where "k" is an integer greater than or equal to 0. This allows the loss occurring in the second conductive portion 32 to be suppressed. "k" may be, for example, 10 or less. The second conductive portion distance d2 may also be 0.9 to 1.1 times (1+2k) / 4 times the guided wavelength λg of the waveguide 20. "k" may be, for example, 5 or less.

[0036] As shown in FIG. 6, the first line portion 45 extends along the signal line extending direction Ds1. In this example, the signal line extending direction Ds1 is aligned with the third direction D3. The length (width) of the first line portion 45 along the signal line intersecting direction Dsx1 is defined as the signal line width w45. The signal line intersecting direction Dsx1 intersects with the signal line extending direction Ds1. The signal line intersecting direction Dsx1 is perpendicular to the signal line extending direction Ds1 and perpendicular to the first direction D1.

[0037] The first connection portion 41 extends along the first extension direction De1. The length (width) of the first connection portion 41 along the first intersecting direction Dx1 is defined as a first connection portion width w41. The first intersecting direction Dx1 is perpendicular to the first extension direction De1 and the first direction D1. In the embodiment, the first connection portion width w41 is narrower than the signal line width w45.

[0038] The second connection portion 42 extends along the second extension direction De2. The length (width) of the second connection portion 42 along the second intersecting direction Dx2 is defined as a second connection portion width w42. The second intersecting direction Dx2 is perpendicular to the second extension direction De2 and the first direction D1. In the embodiment, the second connection portion width w42 is narrower than the signal line width w45.

[0039] As described above, the first connection portion 41 extends along the first extension direction De1. The second connection portion 42 extends along the second extension direction De2. The first line portion 45 extends along the signal line extension direction Ds1. In this example, the signal line extension direction Ds1 is inclined with respect to the first extension direction De1. The signal line extension direction Ds1 is inclined with respect to the second extension direction De2.

[0040] As shown in FIG. 6, in this example, the first connecting portion 41 is plane-symmetrical with respect to the second connecting portion 42. Preferably, the first connecting portion 41 is plane-symmetrical with respect to the second connecting portion 42 with respect to the first plane PL1. The first plane PL1 is along the first direction D1 and perpendicular to the second direction D2. The first plane PL1 passes through the midpoint in the second direction D2 between the first side portion 25 and the second side portion 26. This configuration can further reduce loss.

[0041] In the conversion circuit 110, the transmission line 40 may include at least one of a microstrip line, a strip line, and a coplanar waveguide.

[0042] In one example of the conversion circuit 110, the first distance dz1 is, for example, 100 μm or more and 1000 μm or less. The second distance dz2 is, for example, 1000 μm or more and 4000 μm or less. The length Lx1 (see FIG. 2) of the first side portion 25 (and the second side portion 26) along the X-axis direction is, for example, 3 mm or more and 20 mm or less. The distance Ly1 along the Y-axis direction between the first side portion 25 and the second side portion 26 is, for example, 2 mm or more and 10 mm or less. The signal line width w45 is, for example, 300 μm or more and 1000 μm or less. The first connection portion width w41 is, for example, 300 μm or more and 1000 μm or less. The second connection portion width w42 is, for example, 300 μm or more and 1000 μm or less. The guided wavelength λg is, for example, 5 mm or more and 20 mm or less. The first length L1 may be, for example, about 2.5 mm or about 7.5 mm, etc. The second length L2 may be, for example, about 2.5 mm or about 7.5 mm, etc.

[0043] FIG. 7 is a schematic plan view illustrating the conversion circuit according to the first embodiment. FIGS. 8(a) to 8(e) and FIGS. 9(a) to 9(c) are schematic cross-sectional views illustrating the conversion circuit according to the first embodiment. 8(a) is a cross-sectional view taken along line A1-A2 in FIG. 7. FIG. 8(b) is a cross-sectional view taken along line A3-A4 in FIG. 7. FIG. 8(c) is a cross-sectional view taken along line A5-A6 in FIG. 7. FIG. 8(d) is a cross-sectional view taken along line A7-A8 in FIG. 7. FIG. 8(e) is a cross-sectional view taken along line A9-A10 in FIG. 7. FIG. 9(a) is a cross-sectional view taken along line B1-B2 in FIG. 7. FIG. 9(b) is a cross-sectional view taken along line B3-B4 in FIG. 7. FIG. 9(c) is a cross-sectional view taken along line B5-B6 in FIG. 7.

[0044] As shown in FIG. 7, in the conversion circuit 110a according to the embodiment, the first side portion 25 includes a plurality of first conductive pillars 25p aligned in the third direction D3. The second side portion 26 includes a plurality of second conductive pillars 26p aligned in the third direction D3. The third direction D3 intersects with a plane including the first direction D1 and the second direction D2. The third direction D3 is, for example, the X-axis direction. Except for this, the configuration of the conversion circuit 110a may be similar to that of the conversion circuit 110. The conversion circuit 110a can also reduce radiation loss. A conversion circuit capable of improving characteristics can be provided.

[0045] The waveguide 20 functions as, for example, a substrate integrated waveguide (SIW). The plurality of first conductive pillars 25p electrically connect the first conductive layer 21 to the second conductive layer 22. The plurality of second conductive pillars 26p electrically connect the first conductive layer 21 to the second conductive layer 22.

[0046] The third side portion 28 includes a plurality of third conductive pillars 28p aligned in the third direction D3. The plurality of third conductive pillars 28p are aligned along the second direction D2. The plurality of third conductive pillars 28p electrically connect the first conductive layer 21 to the second conductive layer 22.

[0047] The pitch of the multiple first conductive pillars 25p may be, for example, ¼ or less of the guided wavelength λg. The pitch of the multiple second conductive pillars 26p may be, for example, ¼ or less of the guided wavelength λg. The pitch of the multiple third conductive pillars 28p may be, for example, ¼ or less of the guided wavelength λg.

[0048] In the conversion circuit 110 and the conversion circuit 110a, the first conductive portion 31 is spaced apart from the first conductive layer 21, the second conductive layer 22, the first side portion 25, and the second side portion 26. The second conductive portion 32 is spaced apart from the first conductive layer 21, the second conductive layer 22, the first side portion 25, and the second side portion 26.

[0049] In the conversion circuit 110 and the conversion circuit 110a, the second conductive layer 22 includes a first opening 22p and a second opening 22q. A first end 41e of the first connection portion 41 is connected to the first conductive portion 31 through the first opening 22p. A second end 42e of the second connection portion 42 is connected to the second conductive portion 32 through the second opening 22q. The first opening 22p may be, for example, circular. The second opening 22q may be, for example, circular. For example, the distance between the first conductive portion 31 and the second conductive layer 22 is made uniform. For example, the distance between the second conductive portion 32 and the second conductive layer 22 is made uniform. For example, reflection loss is further suppressed.

[0050] FIG. 10 is a schematic plan view illustrating the conversion circuit according to the first embodiment. 10, in the conversion circuit 110b according to the embodiment, the second conductive layer 22 includes a first opening 22p. One opening is provided. The configuration of the conversion circuit 110b other than this may be the same as the configuration of the conversion circuit 110 or the conversion circuit 110a.

[0051] In the conversion circuit 110b, the first end 41e is connected to the first conductive portion 31 through the first opening 22p. The second end 42e is connected to the second conductive portion 32 through the first opening 22p. The conversion circuit 110b can also reduce radiation loss. A conversion circuit with improved characteristics can be provided. The configuration of the conversion circuit 110a (multiple conductive pillars) may be applied to the conversion circuit 110b.

[0052] FIG. 11 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. FIG. 12 is a schematic cross-sectional view illustrating the conversion circuit according to the first embodiment. 11, in the conversion circuit 111 according to the embodiment, the first conductive layer 21 includes an opening 21p and an opening 21q. Except for this, the configuration of the conversion circuit 111 may be the same as the configuration of the conversion circuit 110 or the conversion circuit 110a.

[0053] In the conversion circuit 111, the first conductive portion 31 penetrates the base 51s in the first direction D1. The second conductive portion 32 penetrates the base 51s in the first direction D1. The conversion circuit 111 can also reduce radiation loss. A conversion circuit with improved characteristics can be provided. The configuration of the conversion circuit 110a (multiple conductive pillars) may be applied to the conversion circuit 111.

[0054] 12, in the conversion circuit 111, the first conductive unit 31 further includes a first conductive member 31a connected to a first extension portion 31e. The first extension portion 31e is located between at least a portion of the first end portion 41e and the first conductive member 31a. The second conductive unit 32 further includes a second conductive member 32a connected to a second extension portion 32e. The second extension portion 32e is located between at least a portion of the second end portion 42e and the second conductive member 32a.

[0055] For example, the width (length in the XY plane) of the first conductive member 31a is greater than the width (length in the XY plane) of the first extending portion 31e. For example, the width (length in the XY plane) of the second conductive member 32a is greater than the width (length in the XY plane) of the second extending portion 32e. The "width" may also be, for example, the "diameter."

[0056] FIG. 13 is a graph illustrating the characteristics of the conversion circuit according to the first embodiment. FIG. 13 illustrates the characteristics of the conversion circuit 111. The horizontal axis of FIG. 13 is frequency f1. The vertical axis is frequency characteristic SP of the amplitude of the S parameter. FIG. 13 illustrates the amplitude S11 of the reflection coefficient and the amplitude S21 of the transmission coefficient. In this example, the effect of material loss is ignored. As shown in FIG. 13, in the frequency f1 range of 27 GHz to 31 GHz, the amplitude S11 of the reflection coefficient is below -15 dB. In the frequency f1 range of 28 GHz to 29 GHz, the amplitude S21 of the transmission coefficient is above -0.3 dB. Radiation loss is suppressed. Low-reflection conversion is possible.

[0057] FIG. 14 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. 14, the conversion circuit 112 according to the embodiment includes a third conductive portion 33. The conversion circuit 113 may include a fourth conductive portion 34. The signal line 40s includes a third connecting portion 43. The signal line 40s may include a fourth connecting portion 44. Except for the above, the configuration of the conversion circuit 112 may be the same as the configuration of the conversion circuit 110 or the conversion circuit 110a.

[0058] The third conductive portion 33 is provided between the first side portion 25 and the second side portion 26 in the second direction D2. The third conductive portion 33 includes a third extension portion 33e extending along the first direction D1. The third extension portion 33e is spaced apart from the second conductive layer 22. In this example, the second conductive layer 22 includes a third opening 22r. The third extension portion 33e passes through the third opening 22r. The third connection portion 43 of the signal line 40s includes a third end portion 43e and a third other end portion 43f. The third other end portion 43f is connected to the first line portion 45. The third end portion 43e is connected to the third conductive portion 33.

[0059] The fourth conductive portion 34 is provided between the third conductive portion 33 and the second side portion 26 in the second direction D2. The fourth conductive portion 34 includes a fourth extension portion 34e extending along the first direction D1. The fourth extension portion 34e is spaced apart from the second conductive layer 22. In this example, the second conductive layer 22 includes a fourth opening 22s. The fourth extension portion 34e passes through the fourth opening 22s. The fourth connection portion 44 of the signal line 40s includes a fourth end portion 44e and a fourth other end portion 44f. The fourth other end portion 44f is connected to the first line portion 45. The fourth end portion 44e is connected to the fourth conductive portion 34.

[0060] The radiation loss can also be reduced in the conversion circuit 112. A conversion circuit capable of improving characteristics can be provided. The conversion circuit 112 may have the same configuration as the conversion circuit 110a (multiple conductive pillars).

[0061] FIG. 15 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. 15, in the conversion circuit 113 according to the embodiment, the position of the first conductive portion 31 in the X-axis direction is near the center position in the X-axis direction of the first side portion 25. The above "l" and "k" may be any integer greater than 0.

[0062] FIG. 16 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. As shown in FIG. 16, in the conversion circuit 114 according to the embodiment, the first length L1 is longer than the first length L1 in the conversion circuit 110. In the conversion circuit 114, the second length L2 is longer than the second length L2 in the conversion circuit 110. Except for this, the configuration of the conversion circuit 114 may be the same as the configuration of the conversion circuit 110 or the conversion circuit 110a. The above "n" and "m" may be any integers greater than or equal to 0. "n" and "m" may be any integers greater than 0.

[0063] FIG. 17 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. 17, in the conversion circuit 115 according to the embodiment, the first line portion 45 extends along the second direction D2. Except for this, the configuration of the conversion circuit 115 may be similar to the configuration of the conversion circuit 110 or the conversion circuit 110a. In the embodiment, the extension direction of the first line portion 45 may be arbitrary.

[0064] FIG. 18 is a schematic perspective view illustrating the conversion circuit according to the first embodiment. 18, in the conversion circuit 116 according to the embodiment, the signal line 40s further includes a resistive element 48. The remaining configuration of the conversion circuit 116 may be the same as that of the conversion circuit 110 or the conversion circuit 110a.

[0065] In the conversion circuit 116, a part of the resistive element 48 is electrically connected to a part of the first connecting portion 41. Another part of the resistive element 48 is electrically connected to a part of the second connecting portion 42. By providing the resistive element 48, the impedance can be appropriately set.

[0066] Radiation loss can also be reduced in the conversion circuits 113 to 116. A conversion circuit capable of improving characteristics can be provided. The configuration of the conversion circuit 110a (multiple conductive pillars) can be applied to the conversion circuits 113 to 116.

[0067] FIG. 19 is a schematic cross-sectional view illustrating the conversion circuit according to the first embodiment. 19, in the conversion circuit 117 according to the embodiment, the first conductive portion 31 and the second conductive portion 32 are in contact with the first conductive layer 21. The remaining configuration of the conversion circuit 117 may be the same as that of the conversion circuit 110 or the conversion circuit 110a. The conversion circuit 117 can also reduce radiation loss. A conversion circuit capable of improving characteristics can be provided. The configuration of the conversion circuit 110a (multiple conductive pillars) may be applied to the conversion circuit 117.

[0068] The above-described first conductive member 31a and second conductive member 32a may be provided in any conversion circuit according to the first embodiment and its modifications.

[0069] (Second embodiment) The second embodiment relates to a communication device. FIG. 20 is a schematic diagram illustrating a communication device according to the second embodiment. 20, a communication device 210 according to the embodiment includes a conversion circuit according to the first embodiment (for example, the conversion circuit 110) and an electronic circuit 80. The electronic circuit 80 can be coupled to the conversion circuit 110. The electronic circuit 80 may include, for example, an antenna 81 and a processing circuit 82. The communication device according to the embodiment is capable of low-loss communication.

[0070] For example, filters are used in high-frequency circuits such as communication devices to remove unwanted signals. Filters include various resonators, such as SIW resonators and microstrip resonators. SIW resonators are often used in the quasi-millimeter wave or millimeter wave bands. SIW resonators are easily integrated, have a high Q factor, and are low cost. For example, a high Q factor can be easily achieved by using a thicker substrate. SIW resonators are not easily connected to other circuits (e.g., planar circuits). Planar circuits include, for example, microstrip lines or coplanar waveguides. Tapered lines are used as connection sections, such as conversion circuits. It is difficult to reduce loss in tapered lines. For example, an insertion loss of about 0.5 dB occurs in one conversion circuit.

[0071] In the embodiment, a special structure is applied to the conversion circuit. According to the embodiment, low radiation loss can be obtained. For example, low insertion loss can be obtained. A conversion circuit capable of improving characteristics can be provided.

[0072] The embodiment may include the following configurations (e.g., technical solutions). (Configuration 1) A waveguide, the waveguide comprising: a first conductive layer; a second conductive layer, the direction from the first conductive layer to the second conductive layer being along a first direction; a first side portion electrically connecting the first conductive layer to the second conductive layer; a second side portion electrically connecting the first conductive layer to the second conductive layer, wherein a second direction from the first side portion to the second side portion intersects with the first direction; the waveguide, a first conductive portion provided between the first side portion and the second side portion in the second direction, the first conductive portion including a first extension portion extending along the first direction, the first extension portion being spaced apart from the second conductive layer; a second conductive portion provided between the first conductive portion and the second side portion in the second direction, the second conductive portion including a second extending portion extending along the first direction, the second extending portion being spaced apart from the second conductive layer; a transmission line including a signal line, the signal line including a first line portion, a first connecting portion, and a second connecting portion, the first connecting portion including a first end and a first other end, the second connecting portion including a second end and a second other end, the first other end and the second other end being connected to the first line portion, the first end being connected to the first conductive portion, the second end being connected to the second conductive portion, and a portion of the second conductive layer being between the first conductive layer and at least a portion of the signal line; A conversion circuit comprising:

[0073] (Configuration 2) the second conductive layer includes a first opening and a second opening; the first end is connected to the first conductive portion through the first opening, The conversion circuit of configuration 1, wherein the second end is connected to the second conductive portion through the second opening.

[0074] (Configuration 3) the second conductive layer includes a first opening; the first end is connected to the first conductive portion through the first opening, The conversion circuit of configuration 1, wherein the second end is connected to the second conductive portion through the first opening.

[0075] (Configuration 4) an insulating substrate; a first insulating layer; Furthermore, at least a portion of the substrate is provided between the first conductive layer and the second conductive layer; The conversion circuit according to any one of configurations 1 to 3, wherein at least a portion of the first insulating layer is provided between the portion of the second conductive layer and the at least a portion of the signal line.

[0076] (Configuration 5) a first length between the first other end and the first end is 0.8 to 1.2 times (1+2n) / 4 times the guided wavelength of the waveguide, a second length between the second other end and the second end is 0.8 to 1.2 times (1+2 m) / 4 times the guided wavelength, The n is an integer of 0 to 10, 5. The conversion circuit according to any one of configurations 1 to 4, wherein m is an integer of 0 or more and 10 or less.

[0077] (Configuration 6) the waveguide further includes a third side electrically connecting the first conductive layer to the second conductive layer; the third side portion overlaps the transmission line in the first direction; a first conductive portion distance along a third direction between the third side portion and the first conductive portion is 0.8 to 1.2 times (1+2l) / 4 times the guided wavelength of the waveguide, a second conductive portion distance along the third direction between the third side portion and the second conductive portion is 0.8 to 1.2 times (1+2k) / 4 times the guided wavelength, the third direction intersects with a plane including the first direction and the second direction, The l is an integer of 0 to 10, 5. The conversion circuit according to any one of configurations 1 to 4, wherein k is an integer between 0 and 10 inclusive.

[0078] (Configuration 7) the first side portion includes a plurality of first conductive pillars aligned in a third direction; the second side portion includes a plurality of second conductive pillars aligned in the third direction; 6. The conversion circuit according to any one of configurations 1 to 5, wherein the third direction intersects with a plane including the first direction and the second direction.

[0079] (Configuration 8) the transmission line further includes an opposing conductive layer; a direction from the opposing conductive layer to the signal line is along the first direction; A conversion circuit described in any one of configurations 1 to 7, wherein a first distance along the first direction between the first conductive layer and the second conductive layer is longer than a second distance along the first direction between the opposing conductive layer and the signal line.

[0080] (Configuration 9) the first line portion extends along a signal line extending direction, the first connection portion extends along a first extending direction, and a first connection portion width of the first connection portion along a first intersecting direction is narrower than a signal line width of the signal line along a signal line intersecting direction that intersects with the signal line extending direction, 7. The conversion circuit according to any one of configurations 1 to 6, wherein the first intersecting direction is perpendicular to the first extending direction and the first direction.

[0081] (Configuration 10) The first connection portion extends along a first extension direction, The second connection portion extends along a second extension direction, the first line portion extends along a signal line extending direction, 9. The conversion circuit according to any one of configurations 1 to 8, wherein the signal line extending direction is inclined with respect to the first extending direction and is inclined with respect to the second extending direction.

[0082] (Configuration 11) the first connection portion is plane-symmetric with respect to the second connection portion with respect to a first plane; the first plane is along the first direction and perpendicular to the second direction; 11. The conversion circuit according to any one of configurations 1 to 10, wherein the first plane passes through a midpoint in the second direction between the first side portion and the second side portion.

[0083] (Configuration 12) the first conductive portion is spaced apart from the first conductive layer, the second conductive layer, the first side portion, and the second side portion; 12. The conversion circuit according to any one of configurations 1 to 11, wherein the second conductive portion is spaced apart from the first conductive layer, the second conductive layer, the first side portion, and the second side portion.

[0084] (Configuration 13) the first conductive portion further includes a first conductive member connected to the first extension portion, the first extension portion is located between at least a portion of the first end portion and the first conductive member; the second conductive portion further includes a second conductive member connected to the second extension portion, 13. The conversion circuit according to any one of configurations 1 to 12, wherein the second extension portion is located between at least a portion of the second end portion and the second conductive member.

[0085] (Configuration 14) 14. The conversion circuit according to any one of configurations 1 to 13, wherein the transmission line includes at least one of a microstrip line, a strip line, and a coplanar waveguide.

[0086] (Configuration 15) The first opening is circular; 3. The conversion circuit of claim 2, wherein the second opening is circular.

[0087] (Configuration 16) The conversion circuit of configuration 8, wherein the opposing conductive layer is continuous with the second conductive layer.

[0088] (Configuration 17) Further comprising a third conductive portion, the third conductive portion is provided between the first side portion and the second side portion in the second direction, the third conductive portion includes a third extension portion extending along the first direction, the third extension portion is spaced apart from the second conductive layer, the signal line further includes a third connection portion; the third connection portion includes a third end portion and a third other end portion, the third other end is connected to the first line portion, 17. The conversion circuit according to any one of configurations 1 to 16, wherein the third end is connected to the third conductive portion.

[0089] (Configuration 18) the first conductive portion is in contact with the first conductive layer, 12. The conversion circuit according to any one of configurations 1 to 11, wherein the second conductive portion is in contact with the first conductive layer.

[0090] (Configuration 19) the signal line further includes a resistive element; a portion of the resistor element is electrically connected to a portion of the first connection portion; 19. The conversion circuit according to any one of configurations 1 to 18, wherein another part of the resistive element is electrically connected to a part of the second connecting portion.

[0091] (Configuration 20) A conversion circuit according to any one of configurations 1 to 19, an electronic circuit coupleable to the conversion circuit; A communication device comprising:

[0092] According to the embodiment, it is possible to provide a conversion circuit and a communication device that can improve characteristics.

[0093] In this specification, "vertical" and "parallel" do not only mean strictly vertical and strictly parallel, but also include variations in the manufacturing process, and may mean substantially vertical and substantially parallel.

[0094] The embodiments of the present invention have been described above with reference to examples. However, the present invention is not limited to these examples. For example, the specific configurations of the elements included in the conversion circuit, such as the waveguide, transmission line, conductive layer, and conductive portion, are within the scope of the present invention as long as a person skilled in the art can implement the present invention in a similar manner and obtain similar effects by appropriately selecting them from known ranges.

[0095] Any combination of two or more elements of each example within the scope of technical feasibility is also included within the scope of the present invention as long as it encompasses the gist of the present invention.

[0096] All conversion circuits and communication devices that can be implemented by a person skilled in the art by appropriately modifying the design based on the conversion circuit and communication device described above as embodiments of the present invention also fall within the scope of the present invention, as long as they include the gist of the present invention.

[0097] Within the scope of the concept of the present invention, a person skilled in the art may conceive of various modifications and alterations, and it is understood that these modifications and alterations also fall within the scope of the present invention.

[0098] Although several embodiments of the present invention have been described, these embodiments are presented as examples and are not intended to limit the scope of the invention. These novel embodiments can be embodied in various other forms, and various omissions, substitutions, and modifications can be made without departing from the spirit of the invention. These embodiments and their modifications are included within the scope and spirit of the invention, and are also included in the scope of the invention and its equivalents as defined in the claims. [Explanation of symbols]

[0099] 20: waveguide, 21, 22: first conductive layer, second conductive layer, 21ex, 22ex: portion, 21p, 21q: opening, 22p, 22q: first and second openings, 22r, 22s: third and fourth openings, 25, 26: first and second side portions, 25p, 26p: first and second conductive pillars, 28: third side portion, 28p: third conductive pillar, 31-34: first to fourth conductive portions, 31a, 32a: first and second conductive members, 31e-34e: first to fourth extension portions, 40: transmission line, 40G: opposing conductive layer, 40s: signal line, 41-44: first to fourth connection portions, 41e-44e: first to fourth end portions, 41f to 44f: first to fourth other ends, 45: first line section, 48: resistance element, 51: first insulating layer, 51s: base, 80: electronic circuit, 81: antenna, 82: processing circuit, 110, 110a, 110b, 111 to 117: conversion circuit, 210: communication device, D1~D3: 1st~3rd direction, De1, De2: 1st, 2nd extending direction, Ds1: Signal line extending direction, Dsx1: Signal line crossing direction, Dx1, Dx2: 1st, 2nd crossing direction, L1, L2: 1st, 2nd length, Ly1: Distance, PL1: 1st plane, S11: Return loss, S21: Insertion loss, SP: Radiation loss characteristics, d1, d2: first and second conductive part distance, dz1, dz2: first and second distance, f1: frequency, w41, w42: first and second connection widths, w45: signal line width

Claims

1. A waveguide, the waveguide comprising: a first conductive layer; a second conductive layer, the direction from the first conductive layer to the second conductive layer being along a first direction; a first side portion electrically connecting the first conductive layer to the second conductive layer; a second side portion electrically connecting the first conductive layer to the second conductive layer, wherein a second direction from the first side portion to the second side portion intersects with the first direction; the waveguide, a first conductive portion provided between the first side portion and the second side portion in the second direction, the first conductive portion including a first extension portion extending along the first direction, the first extension portion being spaced apart from the second conductive layer; a second conductive portion provided between the first conductive portion and the second side portion in the second direction, the second conductive portion including a second extending portion extending along the first direction, the second extending portion being spaced apart from the second conductive layer; a transmission line including a signal line, the signal line including a first line portion, a first connecting portion, and a second connecting portion, the first connecting portion including a first end portion and a first other end portion, the second connecting portion including a second end portion and a second other end portion, the first other end portion and the second other end portion being connected to the first line portion, the first end portion being connected to the first conductive portion, the second end portion being connected to the second conductive portion, and a portion of the second conductive layer being between the first conductive layer and at least a portion of the signal line; A conversion circuit comprising:

2. the second conductive layer includes a first opening and a second opening; the first end is connected to the first conductive portion through the first opening, The conversion circuit according to claim 1 , wherein the second end is connected to the second conductive portion through the second opening.

3. the second conductive layer includes a first opening; the first end is connected to the first conductive portion through the first opening, The conversion circuit according to claim 1 , wherein the second end is connected to the second conductive portion through the first opening.

4. an insulating substrate; a first insulating layer; Furthermore, at least a portion of the substrate is provided between the first conductive layer and the second conductive layer; The conversion circuit according to claim 1 , wherein at least a portion of the first insulating layer is provided between the portion of the second conductive layer and the at least a portion of the signal line.

5. a first length between the first other end and the first end is 0.8 to 1.2 times (1+2n) / 4 times the guided wavelength of the waveguide, a second length between the second other end and the second end is 0.8 to 1.2 times (1+2 m) / 4 of the guided wavelength, The n is an integer of 0 to 10, 2. The conversion circuit according to claim 1, wherein m is an integer between 0 and 10.

6. the waveguide further includes a third side electrically connecting the first conductive layer to the second conductive layer; the third side portion overlaps the transmission line in the first direction; a first conductive portion distance along a third direction between the third side portion and the first conductive portion is 0.8 to 1.2 times (1+2l) / 4 times the guided wavelength of the waveguide, a second conductive portion distance along the third direction between the third side portion and the second conductive portion is 0.8 to 1.2 times (1+2k) / 4 times the guided wavelength, the third direction intersects with a plane including the first direction and the second direction, The 1 is an integer of 0 to 10, 2. The conversion circuit according to claim 1, wherein k is an integer between 0 and 10.

7. the first side portion includes a plurality of first conductive pillars aligned in a third direction; the second side portion includes a plurality of second conductive pillars aligned in the third direction; 6. The conversion circuit according to claim 1, wherein the third direction intersects with a plane including the first direction and the second direction.

8. the transmission line further includes an opposing conductive layer; a direction from the opposing conductive layer to the signal line is along the first direction; 2. The conversion circuit of claim 1, wherein a first distance along the first direction between the first conductive layer and the second conductive layer is longer than a second distance along the first direction between the opposing conductive layer and the signal line.

9. the first line portion extends along a signal line extending direction, the first connection portion extends along a first extending direction, and a first connection portion width of the first connection portion along a first intersecting direction is narrower than a signal line width of the signal line along a signal line intersecting direction that intersects with the signal line extending direction, The conversion circuit according to claim 1 , wherein the first intersecting direction is perpendicular to the first extending direction and the first direction.

10. The first connection portion extends along a first extension direction, The second connection portion extends along a second extension direction, the first line portion extends along a signal line extending direction, The conversion circuit according to claim 1 , wherein the signal line extending direction is inclined with respect to the first extending direction and is inclined with respect to the second extending direction.

11. the first connection portion is plane-symmetric with respect to the second connection portion with respect to a first plane; the first plane is along the first direction and perpendicular to the second direction; The conversion circuit of claim 1 , wherein the first plane passes through a midpoint in the second direction between the first side and the second side.

12. the first conductive portion is spaced apart from the first conductive layer, the second conductive layer, the first side portion, and the second side portion; The conversion circuit of claim 1 , wherein the second conductive portion is spaced apart from the first conductive layer, the second conductive layer, the first side, and the second side.

13. the first conductive portion further includes a first conductive member connected to the first extension portion, the first extension portion is located between at least a portion of the first end portion and the first conductive member; the second conductive portion further includes a second conductive member connected to the second extension portion, The conversion circuit of claim 1 , wherein the second extension portion is located between at least a portion of the second end portion and the second conductive member.

14. The conversion circuit according to claim 1 , wherein the transmission line includes at least one of a microstrip line, a strip line, and a coplanar waveguide.

15. the first opening is circular; The conversion circuit of claim 2 , wherein the second opening is circular.

16. The conversion circuit of claim 8 , wherein the opposing conductive layer is continuous with the second conductive layer.

17. Further comprising a third conductive portion, the third conductive portion is provided between the first side portion and the second side portion in the second direction, the third conductive portion includes a third extension portion extending along the first direction, the third extension portion is spaced apart from the second conductive layer, the signal line further includes a third connection portion; the third connection portion includes a third end portion and a third other end portion, the third other end is connected to the first line portion, The conversion circuit according to claim 1 , wherein the third end is connected to the third conductive portion.

18. the first conductive portion is in contact with the first conductive layer, The conversion circuit according to claim 1 , wherein the second conductive portion is in contact with the first conductive layer.

19. the signal line further includes a resistive element; a portion of the resistor element electrically connected to a portion of the first connection portion; The conversion circuit according to claim 1 , wherein another part of the resistor element is electrically connected to a part of the second connection part.

20. A conversion circuit according to claim 1; an electronic circuit coupleable to the conversion circuit; A communication device comprising:

Citation Information

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