The present disclosure relates to an electric connector set configured by making a first connector and a second connector face each other and fitting them.
Conventionally, a connector set in which a pair of connectors are fitted and a row of a multi-pole connector is disposed is known, as described, for example, Japanese Patent Application Laid-Open No. 2015-230840. In this connector set, an annular fixing terminal connected to a ground potential and a connection terminal are disposed in a coplanar configuration when a pair of connectors are fitted so that noise immunity is improved and impedance matching is performed. In this case, the fitting is maintained by pressure contact of the annular fixing terminal with a male connector and a female connector. Further, the connection terminal is pulled out to the outer side than the fixing terminal.
In a case where an electric connector set is used for transmission of a high frequency signal, there is a problem that resonance is likely to occur in a terminal (GND terminal) connected to the ground potential disposed next to a terminal for transmitting a high frequency signal due to an electric field radiated and fed by the terminal for transmitting a high frequency signal depending on a transmission band, generating radiation noise and interfering with signal transmission.
In view of the above, the present disclosure provides an electric connector capable of suppressing resonance of a terminal even in high frequency transmission.
The electric connector set according to the present disclosure is an electric connector set configured by making a first connector and a second connector face each other and fitting the first connector and the second connector. The electric connector set includes a first engaging terminal that is configured by spring engagement of a first projecting terminal of the first connector and a first recessed terminal of the second connector; and a second engaging terminal that is configured by spring engagement of a second projecting terminal of the first connector and a second recessed terminal of the second connector, and disposed along a first direction with respect to the first engaging terminal. The electric connector set further includes a wall-shaped terminal that is disposed between the first engaging terminal and the second engaging terminal in the first direction, extends along a second direction crossing the first direction and a fitting direction over a region including an outer shape of a projection region in the first direction of a portion where the first projecting terminal of the first connector of the first engaging terminal and the first recessed terminal of the second connector are spring-engaged, and has almost the same height as the height in a fitting direction of the electric connector set.
According to the electric connector according to the present disclosure, a wall-shaped terminal is provided between a first engaging terminal used for high frequency transmission and other second engaging terminals, so that resonance of the terminal can be suppressed even in high frequency transmission.
As mentioned in the problem described above, in a high transmission band of a high frequency transmission or the like, for example, in a millimeter wave signal transmission, resonance is likely to occur in a terminal (GND terminal) connected to the ground potential disposed next to a terminal for transmitting a high frequency signal due to an electric field radiated and fed by the terminal for transmitting a high frequency signal, generating radiation noise and interfering with signal transmission. In the configuration of the spring engagement, the wiring distance from a first projecting terminal and a first recessed terminal to a soldered portion of a GND terminal is long. Due to this configuration of the spring engagement, an electric field radiated and fed from the signal transmission line generates resonance in a frequency band according to a wavelength in the soldered portion of the GND terminal, generating radiation noise and interfering with the transmission of a signal at a first engaging terminal.
In view of the above, the present inventor has found that the resonance of the terminal can be suppressed even in high frequency transmission by providing a wall-shaped terminal having the same height as the height in the fitting direction of the electric connector set between the first engaging terminal and a second engaging terminal, and arrived at the present disclosure. Further, the present inventor has found that it is more preferable if the wall-shaped terminal extends in the y-axis direction over a region including an outer shape of a projection region of a portion where the first projecting terminal and the first recessed terminal constituting the first engaging terminal from the x-axis direction are spring-engaged. In the present disclosure, “the same height as the height in the fitting direction of the electric connector set” does not mean that the height is exactly the same as the height in the fitting direction of the electric connector set, and includes the height almost the same as the height in the fitting direction of the electric connector set in view of a manufacturing tolerance and the like.
The electric connector set according to a first aspect is an electric connector set configured by making a first connector and a second connector face each other and fitting the first connector and the second connector. The electric connector set includes a first engaging terminal that is configured by spring engagement of a first projecting terminal of the first connector and a first recessed terminal of the second connector, a second engaging terminal that is configured by spring engagement of a second projecting terminal of the first connector and a second recessed terminal of the second connector, and disposed along a first direction with respect to the first engaging terminal, and a wall-shaped terminal that is disposed between the first engaging terminal and the second engaging terminal in the first direction, extends along a second direction crossing the first direction and a fitting direction over a region including an outer shape of a projection region in the first direction of a portion where the first projecting terminal of the first connector of the first engaging terminal and the first recessed terminal of the second connector are spring-engaged, and has almost the same height as the height in a fitting direction of the electric connector set.
According to the above configuration, the wall-shaped terminal is provided between the first engaging terminal used for high frequency transmission and the other second engaging terminals, so that resonance of the terminal can be suppressed even in high frequency transmission.
In the electric connector set according to a second aspect, in the first aspect, the wall-shaped terminal may be made from a metal material and is connected to the ground potential.
In the electric connector set according to a third aspect, the first or second aspect, the wall-shaped terminal may have a planar shape including an outer shape of a projection region of the first engaging terminal from the first direction.
In the electric connector set according to a fourth aspect, in any of the first to third aspects, the wall-shaped terminal may be provided on at least one of the first connector and the second connector.
In the electric connector set according to a fifth aspect, in any of the first to fourth aspects, the wall-shaped terminal may be configured by engagement of a first partial wall terminal of the first connector and a second partial wall terminal of the second connector.
In the electric connector set according to a sixth aspect, in the fifth aspect, at least one of the first partial wall terminal and the second partial wall terminal may be elastically deformable.
With the above configuration, when the first partial wall terminal and the second partial wall terminal are engaged, at least one of the terminals is elastically deformed even if stress is applied, so that the first partial wall terminal and the second partial wall terminal can be stably engaged. Further, the electric connection can be stabilized.
In the electric connector set according to a seventh aspect, in the sixth aspect, blocks formed of the first engaging terminal and the wall-shaped terminal may be provided in two locations along the first direction, and, regarding a length A in the first direction between the first partial wall terminals of the blocks of the first connector and a length B in the first direction between the second partial wall terminals of the blocks of the second connector, a relationship of the length A in the first direction<the length B in the first direction may be established.
In the electric connector set according to an eighth aspect, in any of the first to sixth aspects, blocks formed of the first engaging terminal and the wall-shaped terminal may be provided in two locations along the first direction.
With the above configuration, the number of transmission signal lines can be increased.
The electric connector set according to a ninth aspect may further include, in the sixth aspect, a fixing terminal having a locking mechanism for holding the first connector and the second connector. The fixing terminal may be configured in such a manner that a projecting curved surface of a projecting fixing terminal of the first connector and a recessed curved surface of a recessed fixing terminal of the second connector are in contact with each other, and, regarding a length C in the first direction of an inner side of the projecting curved surface of the first connector and the first partial wall terminal and a length D in the first direction of an inner side of the recessed curved surface of the second connector and the second partial wall terminal, a relationship of the length C in the first direction>the length D in the first direction may be established.
The electric connector set according to a tenth aspect may further include, in any of the first to eighth aspects, a fixing terminal having a locking mechanism for holding the first connector and the second connector in the fitting direction.
With the above configuration, the second connector can be received on a lowest possible surface after fitting, and a height fluctuation after fitting can be suppressed. Therefore, the impedance of the transmission signal line can be easily adjusted.
In the electric connector set according to an eleventh aspect, in the tenth aspect, the fixing terminal may be configured in such a manner that a metal surface of a projecting fixing terminal of the first connector and a metal surface of a recessed fixing terminal of the second connector are in contact with each other.
With the above configuration, the resonance generated between the fixing terminal and the substrate of the electric connector set can be suppressed.
In the electric connector set according to a twelfth aspect, in the eleventh aspect, at least one of the projecting fixing terminal of the first connector and the recessed fixing terminal of the second connector and the wall-shaped terminal may be formed of the same member, and a connecting portion of these may be connected to the ground potential.
In the electric connector set according to a thirteenth aspect, in any of the first to twelfth aspects, at least one of the first connector and the second connector may have a metal terminal disposed in an annular shape over the entire circumference.
With the above configuration, noise immunity can be improved. Further, the ease of impedance matching can be improved.
In the electric connector set according to a fourteenth aspect, in any of the first to thirteenth aspects, the first engaging terminal may have a multi-pole configuration of two rows along the first direction, and the electric connector set may further include a second wall-shaped terminal disposed between two adjacent ones of the first engaging terminals.
The above configuration allows the first engaging terminal to transmit digital signals and other signals.
In the electric connector set according to a fifteenth aspect, in any of the first to fourteenth aspects, in the first engaging terminal, a portion projecting from a portion where the first projecting terminal and the first recessed terminal are spring-engaged to both sides along the second direction may be placed on the inner side than a range extending along the second direction of the wall-shaped terminal.
With the above configuration, the length from the soldering of the mounting portion to the spring-engaged portion can be shortened, and the stray capacitance can be reduced, so that the impedance adjusting portion can be easily configured.
In the electric connector set according to a sixteenth aspect, in any of the first to fifteenth aspects, the wall-shaped terminal may be attachable to and removable from the first connector or the second connector, and, on at least one of the first connector and the second connector, the wall-shaped terminal may be able to be disposed in at least one location along the first direction.
In the electric connector set according to a seventeenth aspect, in any of the first to tenth aspects, the first engaging terminal may be a millimeter wave connection terminal, and a total thickness in the fitting direction of the first connector and the second connector may be equal to or less than 1 mm.
In the electric connector set according to an eighteenth aspect, in any of the first to the seventeenth aspects, the second engaging terminal may have a multi-pole configuration of two rows along the first direction.
The above configuration allows the second engaging terminal to transmit digital signals and other signals.
Hereinafter, the electric connector set according to embodiments will be described with reference to the attached drawings. Note that, in the drawings, substantially the same members are designated by the same reference numerals.
The electric connector set 30 according to the first embodiment is configured such that the first connector 10 and the second connector 20 face each other and are fitted in the z-axis direction. The electric connector set 30 is characterized in that the wall-shaped terminal 33 is disposed between the first engaging terminal 31 and the second engaging terminals 32a to 32f. The first engaging terminal 31 is configured such that a first projecting terminal 11 of the first connector 10 and a first recessed terminal 21 of the second connector 20 are spring-engaged. The second engaging terminals 32a to 32f are configured such that second projecting terminals 12a to 12f of the first connector 10 and second recessed terminals 22a to 22f of the second connector 20 are spring-engaged. The second engaging terminals 32a to 32f are disposed along the first direction (x-axis direction). Further, the wall-shaped terminal 33 extends in the y-axis direction over a region including an outer shape of a projection region in the x-axis direction of a portion where the first projecting terminal 11 of the first connector 10 and the first recessed terminal 21 of the second connector 20 constituting the first engaging terminal 31 are spring-engaged. The wall-shaped terminal 33 has a height substantially the same as the height in the fitting direction (z-axis direction) of the electric connector set 30.
With the above configuration, since the wall-shaped terminal 33 is provided between the first engaging terminal 31 used for high frequency transmission and the other second engaging terminals 32a to 32f, the radiation of electromagnetic waves from the first engaging terminal 31 can be shielded, and the resonance of the first engaging terminal 31 can be suppressed even in high frequency transmission.
Note that, as shown in
Further, the electric connector set 30 may further have a fixing terminal 34 having a locking mechanism 15 for holding the first connector 10 and the second connector 20 in the fitting direction (z-axis direction).
Hereinafter, each member constituting the electric connector set will be described.
<First Engaging Terminal>
The first engaging terminal 31 may be, for example, a connection terminal for millimeter wave signal transmission. Note that the millimeter wave has a wavelength in the range of 1 mm to 10 mm and a frequency in the range of about 30 GHz to about 300 GHz. The first engaging terminal 31 may be, for example, a connection terminal for millimeter wave signal transmission in the range of 40 GHz to 100 GHz. Further, in the first engaging terminal 31, portions protruding in the +y direction and the −y direction from the spring-engaged portion are on the inner side than the range in the y-axis direction of the wall-shaped terminal 33. In this manner, the length from the soldering of the mounting portion to the spring-engaged portion can be shortened, and the stray capacitance can be reduced, so that the impedance adjusting portion can be easily configured. Furthermore, although only one of the first engaging terminal 31 is shown here, a plurality of the first engaging terminals 31 may be disposed. In this case, a multi-pole configuration having two or more rows along the x-axis direction may be used. Further, a plurality of the first engaging terminals 31 may be disposed along the x-axis direction. In these cases, a second wall-shaped terminal disposed between two adjacent ones of the first engaging terminals 31 is further included. This allows the first engaging terminal to transmit digital signals and other signals.
<Second Engaging Terminal>
The second engaging terminals 32a to 32f are configured such that the second projecting terminals 12a to 12f of the first connector 10 and the second recessed terminals 22a to 22f of the second connector 20 are spring-engaged. The second engaging terminals 32a to 32f are disposed along the first direction (x-axis direction). Note that the second projecting terminals 12a to 12f of the first connector 10 and the second recessed terminals 22a to 22f of the second connector 20 may be opposite to each other. For example, the second engaging terminal may be configured such that the second recessed terminal of the first connector and the second projecting terminal of the second connector are spring-engaged. Further, the second engaging terminals 32a to 32f may have a multi-pole configuration of two or more rows along the x-axis direction. This allows the second engaging terminal to transmit digital signals and other signals. Note that, when viewed from the x-axis direction, the length in the −y-axis direction of the second projecting terminals 12a to 12f of the second engaging terminals 32a to 32f is larger than the length in the −y-axis direction of the first projecting terminal 11 of the first engaging terminal 31. That is, the length in the −y-axis direction of 11<the length in the −y-axis direction of 12a to 12f. Further, when viewed from the x-axis direction, the length in the y-axis direction of the second recessed terminals 22a to 22f of the second engaging terminals 32a to 32f is larger than the length in the y-axis direction of the first recessed terminal 21 of the first engaging terminal 31. That is, the length in the y-axis direction of 21<the length in the y-axis direction of 22a to 22f.
Also, the height of the wall-shaped terminals, such as wall-shaped terminal 33, may have the same height as the electrical connector set 30 in the mating direction (i.e., the z-axis direction in which the first connector 10 and the second connector 20 mate with each other, as shown in
<Wall-Shaped Terminal>
Further, the wall-shaped terminal 33 may have a planar shape including the outer shape of the projection region of the first engaging terminal 31 from the x-axis direction. In this manner, it is possible to suppress the wraparound and radiation of the electric field of the transmission signal line. Therefore, the transmission signal line can be transmitted with an ideal coplanar configuration. Further, it becomes easy to capture the electric field of the transmission signal line. Therefore, the radiation loss of the transmission signal line can be suppressed. Further, the separability from other transmission signal lines in the electric connector set 30 can be improved. The planar shape is not limited to a flat plate shape, and may be a recessed or projecting shape including an uneven shape, or a curved surface shape including partial recessed and projecting portions. Alternatively, the wall-shaped terminal 33 may have a flat plate shape extending in the y-axis direction. Note that the wall-shaped terminal 33 does not have to have a constant in-plane thickness in the x-axis direction. Further, the wall-shaped terminal may have at least a portion having a strip shape, a comb shape, a net shape, or the like. Note that the wall-shaped terminal may have a hole or a notch having a size so as not to leak the electromagnetic wave as long as the wall-shaped terminal can shield the electromagnetic wave radiated from the first engaging terminal 31. For example, the hole preferably has the longest distance of a straight line portion that can be taken inside the hole that is equal to or less than the wavelength of the electromagnetic wave radiated from the first engaging terminal.
Further, the wall-shaped terminal 33 may be formed of one member, or may be formed of two or more members. Further, the wall-shaped terminal may be attachable to and removable from the first connector or the second connector. For example, a member to which the wall-shaped terminal can be fixed by fitting or inserting may be disposed in a plurality of locations in the first connector or the second connector. In this case, the configuration may be such that the wall-shaped terminal can be disposed in at least one location along the first direction in at least one of the first connector and the second connector. When the wall-shaped terminal 33 is formed of one member, the wall-shaped terminal 33 only needs to be provided in at least one of the first connector 10 and the second connector 20.
Next, as shown in
Note that the lower surface of the wall-shaped terminal 33 may be connected to a substrate constituting the bottom surface of the entire first connector 10. Further, two of the wall-shaped terminals 33 may be provided so as to sandwich the first engaging terminal 31 from the −x direction and the +x direction. In this manner, the electromagnetic field from the outside toward the first engaging terminal 31 can be shielded, and the electromagnetic field radiated from the first engaging terminal 31 in the x-axis direction can be shielded. Therefore, the EMC performance can be improved.
<Fixing Terminal>
<First Connector>
<Second Connector>
<Regarding Configuration of Electric Connector Set by Fitting First Connector and Second Connector>
The electric connector set 30 is configured by making the first connector 10 and the second connector 20 face each other and fitting them. At the time of fitting, the first projecting terminal 11 and the first recessed terminal 21 are engaged to constitute the first engaging terminal 31. Further, the second projecting terminals 12a to 12f and the second recessed terminals 22a to 22f are engaged to constitute the second engaging terminals 32a to 32f. Furthermore, the first partial wall terminal 13 and the second partial wall terminal 23 are engaged to constitute the wall-shaped terminal. Then, the projecting fixing terminal 14 and the recessed fixing terminal 24 are engaged to constitute the fixing terminal 34. As described above, the fixing terminal 34 holds the first connector 10 and the second connector 20 in the fitting direction (z-axis direction).
Further, as shown in
Furthermore, as shown in
Note that the present disclosure includes appropriate combination of optional ones of the various embodiments and/or examples described above, and the effects of such embodiments and/or examples can be achieved.
According to the electric connector set according to the present disclosure, the wall-shaped terminal is provided between the first engaging terminal used for high frequency transmission and the other second engaging terminals. Accordingly, the electric connector set is useful as an electric connector set for high frequency transmission that can suppress resonance of the terminal.
Number | Date | Country | Kind |
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2018-122470 | Jun 2018 | JP | national |
This application claims benefit of priority to International Patent Application No. PCT/JP2019/017833, filed Apr. 26, 2019, and to Japanese Patent Application No. 2018-122470, filed Jun. 27, 2018, the entire contents of each are incorporated herein by reference.
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Number | Date | Country | |
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Number | Date | Country | |
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Parent | PCT/JP2019/017833 | Apr 2019 | US |
Child | 17129881 | US |