The present disclosure relates to a shielded flat cable.
This application is based upon and claims priority to Japanese Patent Application No. 2020-114586, filed on Jul. 2, 2020, the entire contents of which are incorporated herein by reference.
A shielded flat cable is known as a cable used for high-speed transmission of a differential signal. In the shielded flat cable, for example, two signal lines through which the differential signal is transmitted may be disposed between two ground lines (for example, Patent Document 1).
A shielded flat cable includes a plurality of ground lines disposed in a first plane, a pair of signal lines provided between the plurality of ground lines and disposed in the first plane, an insulating layer that covers the plurality of ground lines and the pair of signal lines, and a shield layer that covers the insulating layer. In a cross section perpendicular to a longitudinal direction, the plurality of ground lines include an adjacent ground line adjacent to one signal line of the pair of signal lines. A minimum distance between the pair of signal lines is smaller than a minimum distance between the adjacent ground line and the one signal line.
Although the shielded flat cable described in PTL 1 can achieve some intended purpose, crosstalk may occur as a frequency of a signal further increases.
An object of the present disclosure is to provide a shielded flat cable in which crosstalk can be further reduced.
According to the present disclosure, crosstalk can be further reduced.
In the following, embodiments will be described.
First, embodiments of the present disclosure will be listed and described.
<1> A shielded flat cable according to one embodiment of the present disclosure includes a plurality of ground lines disposed in a first plane, a pair of signal lines provided between the plurality of ground lines and disposed in the first plane, an insulating layer that covers the plurality of ground lines and the pair of signal lines, and a shield layer that covers the insulating layer. In a cross section perpendicular to a longitudinal direction, the plurality of ground lines includes an adjacent ground line adjacent to one signal line of the pair of signal lines. In the cross section perpendicular to the longitudinal direction, a minimum distance between the pair of signal lines is smaller than a minimum distance between the adjacent ground line and the one signal line.
In the cross section perpendicular to the longitudinal direction, the minimum distance between the pair of signal lines is smaller than the minimum distance between the adjacent ground line adjacent to one signal line of the pair of signal lines and the one signal line. Therefore, the capacitance between the adjacent ground line and the one signal line can be reduced, and crosstalk caused by capacitive noise can be reduced.
<2> According to <1>, in the cross section, a maximum dimension of the adjacent ground line in a direction parallel to the first plane may be smaller than a maximum dimension of the one signal line in the direction parallel to the first plane. In this case, crosstalk can be more easily reduced.
<3> According to <1> or <2>, in the cross section, a center-to-center distance between the pair of signal lines may be smaller than a center-to-center distance of the adjacent ground line and the one signal line. In this case, crosstalk can be more easily reduced.
<4> According to <1> to <3>, in the cross section, a cross-sectional area of the adjacent ground line may be smaller than a cross-sectional area of the one signal line. In this case, crosstalk can be more easily reduced.
<5> A shielded flat cable according to another one aspect of the present disclosure includes a first ground line, a second ground line, and a third ground line disposed in a first plane. The shielded flat cable also includes a pair of a first signal line and a second signal line provided between the first ground line and the second ground line and disposed in the first plane. The shielded flat cable also includes a pair of a third signal line and a fourth signal line provided between the second ground line and the third ground line and disposed in the first plane. The shielded flat cable also includes an insulating layer that covers the first ground line, the second ground line, the third ground line, the first signal line, the second signal line, the third signal line, and the fourth signal line. The shielded flat cable also includes a shield layer that covers the insulating layer. The second signal line is disposed closer to the second ground line than the first signal line is. The fourth signal line is closer to the third ground line than the third signal line is. In a cross section perpendicular to a longitudinal direction, a minimum distance between the first signal line and the second signal line is smaller than a minimum distance between the first ground line and the first signal line and a minimum distance between the second ground line and the second signal line. In the cross section perpendicular to the longitudinal direction, a minimum distance between the third signal line and the fourth signal line is smaller than a minimum distance between the second ground line and the third signal line and a minimum distance between the third ground line and the fourth signal line. In the cross section perpendicular to the longitudinal direction, a maximum dimension of each of the first ground line, the second ground line, and the third ground line in a direction parallel to the first plane is smaller than a maximum dimension of each of the first signal line, the second signal line, the third signal line, and the fourth signal line in the direction parallel to the first plane. In the cross section perpendicular to the longitudinal direction, a center-to-center distance of the first signal line and the second signal line is smaller than a center-to-center distance of the first ground line and the first signal line and a center-to-center distance of the second ground line and the second signal line. In the cross section perpendicular to the longitudinal direction, a center-to-center distance of the third signal line and the fourth signal line is smaller than a center-to-center distance of the second ground line and the third signal line and a center-to-center distance of the third ground line and the fourth signal line.
The capacitance between the first ground line and the first signal line, the capacitance between the second ground line and the second signal line, and the capacitance between the second ground line and the third signal line, and the capacitance between the third ground line and the fourth signal line can be reduced and crosstalk caused by capacitive noise can be reduced.
In the following, an embodiment of the present disclosure will be described in detail. However, the present disclosure is not limited to the following embodiment. It should be noted that the specification and the drawings of the present application, the same reference numerals may be assigned to components having substantially the same function/configuration so that repetitive descriptions may be omitted. In each drawing, a XYZ orthogonal coordinate system is set for convenience of description.
The first embodiment will be described.
As shown in
Three ground lines 110 include a first ground line 111, a second ground line 112, and a third ground line 113. Second ground line 112 is disposed at a +Y side of first ground line 111, and third ground line 113 is disposed at a +Y side of second ground line 112. That is, in a Y-axis direction, second ground line 112 is disposed between first ground line 111 and third ground line 113.
Four signal lines 120 include a first signal line 121, a second signal line 122, a third signal line 123, and a fourth signal line 124. First signal line 121 and second signal line 122 are disposed between first ground line 111 and second ground line 112 in the Y-axis direction. Second signal line 122 is disposed at a +Y side of first signal line 121. Therefore, first signal line 121 and first ground line 111 are adjacent to each other, and second signal line 122 and second ground line 112 are adjacent to each other. Third signal line 123 and fourth signal line 124 are disposed between second ground line 112 and third ground line 113 in the Y-axis direction. Fourth signal line 124 is disposed at a +Y side of third signal line 123. Therefore, third signal line 123 and second ground line 112 are adjacent to each other, and fourth signal line 124 and third ground line 113 are adjacent to each other. A first signal line pair 126 of first signal line 121 and second signal line 122 is used for transmission of a first differential signal, and a second signal line pair 127 of third signal line 123 and fourth signal line 124 is used for transmission of a second differential signal.
Shielded flat cable 100 includes an insulating layer 130 that sandwiches first plane 101 and covers ground lines 110 and signal lines 120. For example, insulating layer 130 includes a first insulating layer 131 disposed at a −Z side of first plane 101 and a second insulating layer 132 disposed at a +Z side of first plane 101. First insulating layer 131 includes a second plane 131A opposite to first plane 101. Second insulating layer 132 includes a second plane 132A opposite to first plane 101. Second plane 131A and 132A are examples of outer surfaces.
Shielded flat cable 100 includes a shield layer 140 that covers insulating layer 130. Shield layer 140 includes a first shield layer 141 covering second plane 131A of first insulating layer 131 and a second shield layer 142 covering second plane 132A of second insulating layer 132. If one of first shield layer 141 and second shield layer 142 is provided, the other may not be provided in order to improve flexibility of shielded flat cable 100. First shield layer 141 and second shield layer 142 may further cover a side surface parallel to a ZX plane of insulating layer 130.
For example, ground line 110 and signal line 120 are flat conductors, and shapes of ground line 110 and signal line 120 in a cross section perpendicular to a longitudinal direction of shielded flat cable 100 (the cross section shown in
First ground line 111 includes a side surface 111A on the −Y side and a side surface 111B on the +Y side. Second ground line 112 includes a side surface 112A on the −Y side and a side surface 112B on the +Y side. Third ground line 113 includes a side surface 113A on the −Y side and a side surface 113B on the +Y side. First signal line 121 includes a side surface 121A on the −Y side and a side surface 121B on the +Y side. Second signal line 122 includes a side surface 122A on the −Y side and a side surface 122B on the +Y side. Third signal line 123 includes a side surface 123A on the −Y side and a side surface 123B on the +Y side. Fourth signal line 124 includes a side surface 124A on the −Y side and a side surface 124B on the +Y side.
In the cross section illustrated in
In the cross section illustrated in
In the cross section illustrated in
Because ground line 110 and signal line 120 are covered with insulating layer 130, the above-described arrangement state of ground line 110 and signal line 120 is maintained.
Examples of a material of insulating layer 130 include polyester resins, polyphenylene sulfide resins, and polyimide resins. Polyester resins include polyethylene terephthalate resins, polyethylene naphthalate resins, polybutylene naphthalate resins, or the like. Among these resins, polyethylene terephthalate resins are preferable from the viewpoints of electrical characteristics, mechanical characteristics, cost, or the like. A thickness of first insulating layer 131 and second insulating layer 132 is, for example, greater than or equal to 9 μm and less than or equal to 100 μm.
Each of first shield layer 141 and second shield layer 142 includes an adhesive layer, a resin layer, and a metal layer provided in order from insulating layer 130 side. As the metal layer, for example, an aluminum foil is used. Examples of a material of the resin layer include polyethylene terephthalate and low dielectric constant polyethylene. When the resin layer has adhesiveness, the adhesive layer may not be included. A thicknesses of first shield layer 141 and second shield layer 142 are, for example, greater than or equal to 30 μm and less than or equal to 90 μm.
In shielded flat cable 100 according to the first embodiment, distance L1ss is smaller than distance L1sg. For this reason, it is possible to reduce the capacitance between ground line 110 and signal line 120 adjacent to each other and to reduce crosstalk caused by capacitive noise. For example, crosstalk between the first differential signal transmitted by using first signal line pair 126 and the second differential signal transmitted by using second signal line pair 127 can be reduced.
The second embodiment will be described.
As illustrated in
Other configurations are the same as those of the first embodiment.
Also in shielded flat cable 200 according to the second embodiment, distance L1ss is smaller than distance L1sg. For this reason, it is possible to reduce the capacitance between ground line 110 and signal line 120 adjacent to each other and to reduce crosstalk caused by capacitive noise. For example, crosstalk between the first differential signal transmitted by using first signal line pair 126 and the second differential signal transmitted by using second signal line pair 127 can be reduced.
The third embodiment will be described.
As illustrated in
Three ground lines 310 include a first ground line 311, a second ground line 312, and a third ground line 313. Second ground line 312 is disposed on a +Y side of first ground line 311, and third ground line 313 is disposed on a +Y side of second ground line 312. That is, in the Y-axis direction, second ground line 312 is disposed between first ground line 311 and third ground line 313.
Four signal lines 320 include a first signal line 321, a second signal line 322, a third signal line 323, and a fourth signal line 324. First signal line 321 and second signal line 322 are disposed between first ground line 311 and second ground line 312 in the Y-axis direction. Second signal line 322 is disposed at a +Y side of first signal line 321. Therefore, first signal line 321 and first ground line 311 are adjacent to each other, and second signal line 322 and second ground line 312 are adjacent to each other. Third signal line 323 and fourth signal line 324 are disposed between second ground line 312 and third ground line 313 in the Y-axis direction. Fourth signal line 324 is disposed at a +Y side of third signal line 323. Therefore, third signal line 323 and second ground line 312 are adjacent to each other, and fourth signal line 324 and third ground line 313 are adjacent to each other. A first signal line pair 326 of first signal line 321 and second signal line 322 is used for transmission of the first differential signal, and a second signal line pair 327 of third signal line 323 and fourth signal line 324 is used for transmission of the second differential signal.
For example, ground line 310 and signal line 320 are round conductors, and the shapes of ground line 310 and signal line 320 in a cross section perpendicular to the longitudinal direction of shielded flat cable 300 (the cross section shown in
In the cross section illustrated in
In the cross section illustrated in
Other configurations are the same as those of the first embodiment.
Also in shielded flat cable 300 according to the third embodiment, distance L1ss is smaller than distance L1sg. For this reason, it is possible to reduce the capacitance between ground line 310 and signal line 320 adjacent to each other and to reduce crosstalk caused by capacitive noise. For example, crosstalk between the first differential signal transmitted by using first signal line pair 326 and the second differential signal transmitted by using second signal line pair 327 can be reduced.
The fourth embodiment will be described.
As illustrated in
Other configurations are the same as those of the first embodiment.
In shielded flat cable 400 according to the fourth embodiment, the same effects as those of the first and third embodiments can be achieved.
In the cross section illustrated in
In the cross section illustrated in
In the cross sections shown in
In the present disclosure, the ground line and the signal line are not limited to flat conductors or round conductors. For example, the cross-sectional shape perpendicular to the longitudinal direction of the ground line and the signal line may be ellipses, other polygons, or the like. Note that each center of the ground line and the signal line is the center of two points farthest from each other in the ground line and the signal line in the direction along an intersection line between a cross section perpendicular to the longitudinal direction of the shielded flat cable and the first plane (the Y-axis direction in
Distance L2ss and Distance L2sg in the third and fourth embodiments may be equal to each other like the second embodiment.
The number of ground lines and signal lines included in the shielded flat cable is not limited. For example, two ground lines may be disposed between two signal line pairs.
The embodiments have been described in detail, but the present invention is not limited to the specific embodiments, and various variations and modifications may be made within the scope of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
2020-114586 | Jul 2020 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2021/012645 | 3/25/2021 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2022/004074 | 1/6/2022 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20050200557 | Tanaka | Sep 2005 | A1 |
20080185167 | Lee | Aug 2008 | A1 |
20110174515 | Siahaan | Jul 2011 | A1 |
20150213924 | Chang | Jul 2015 | A1 |
20190371494 | Kojima et al. | Dec 2019 | A1 |
20200098816 | Matsumoto | Mar 2020 | A1 |
20210065929 | Kojima | Mar 2021 | A1 |
20210166836 | Nagano | Jun 2021 | A1 |
20220384998 | Matsuda | Dec 2022 | A1 |
Number | Date | Country |
---|---|---|
H03-084514 | Aug 1991 | JP |
2019-207835 | Dec 2019 | JP |
2019208247 | Oct 2019 | WO |
2019208737 | Oct 2019 | WO |
Entry |
---|
International Search Report for PCT/JP2021/012645 dated Jun. 8, 2021. |
Number | Date | Country | |
---|---|---|---|
20220270783 A1 | Aug 2022 | US |