The present application is based upon and claims the benefit of priority of the prior Japanese Patent Application No. 2011-285124, filed on Dec. 27, 2011, the entire contents of which are incorporated herein by reference.
1. Field of the Invention
The present invention relates to a plug, a jack, and a connector suitably applied to signal exchanges between boards and electrical connections for grounding.
2. Description of the Related Art
In electronic apparatuses, connectors are commonly used, for example, to electrically interconnect boards including a signal line and a ground line in a detachable manner. Examples of connectors for such a purpose include the connector described in Japanese National Publication of International Patent Application No. 2004-500684.
The connector described in Japanese National Publication of International Patent Application No. 2004-500684 employs a right-angle plug connected to a daughter card, which is one board, and a straight-angle jack connected to a mother board, which is another board perpendicular to a butting direction, in connecting the mother board to the daughter card. The right-angle type refers to a connector whose contacts and connection with the daughter card are perpendicular to each other. The straight-angle type refers to a connector whose contacts and connection with the mother board are parallel to each other.
According to an aspect of the present invention, a plug includes a connection part to be connected to a board; a contact; and a conductor part that connects the contact and the connection part, wherein the connection part and the contact are perpendicular to each other, and the contact is turned 45 degrees relative to the conductor part about a direction in which the contact extends from the conductor part.
According to an aspect of the present invention, a jack includes a connection part to be connected to a board; a contact; and a conductor part that connects the contact and the connection part, wherein the connection part and the contact are perpendicular to each other, and the contact is turned 45 degrees relative to the conductor part about a direction in which the contact extends from the conductor part.
According to an aspect of the present invention, a connector includes a first connector member that includes a plurality of first connection parts to be connected to a first board; a plurality of first contacts; and a plurality of first conductor parts, wherein each of the first conductor parts connects a corresponding one of the first contacts and a corresponding one of the first connection parts, wherein the first connection parts and the first contacts are perpendicular to each other, and each of the first contacts is turned 45 degrees relative to a corresponding one of the first conductor parts about a direction in which each of the first contacts extends from the corresponding one of the first conductor parts; and a second connector member that includes a plurality of second connection parts to be connected to a second board;
a plurality of second contacts connected to the first contacts of the first connector member; and a plurality of second conductor parts, wherein each of the second conductor parts connects a corresponding one of the second contacts and a corresponding one of the second connection parts, wherein the second connection parts and the second contacts are perpendicular to each other, and each of the second contacts is turned 45 degrees relative to a corresponding one of the second conductor parts about a direction in which each of the second contacts extends from the corresponding one of the second conductor parts, wherein the first contacts and the second contacts are turned in a same direction.
As described above, the conventional connector that employs a right-angle connector and a straight-angle connector is used in the form of connection where an end of one board is butted against the surface of another board. However, such a connector is prevented from establishing a proper electrical connection when one board and another board are in a mutually twisted positional relationship and are perpendicular to each other.
According to an aspect of the present invention, a plug that makes it possible to suitably connect boards that are positioned to be twisted relative to each other and are perpendicular to each other, a jack corresponding to the plug, and a connection including the plug and the jack are provided.
According to an aspect of the present invention, a plug to be connected to a first board, a jack to be connected to a second board, and a connector that includes the plug and the jack are provided that make it possible to suitably connect the first board and the second board that are to be connected when the first board and the second board are in a twisted positional relationship where the first board and the second board are perpendicular to each other about a connecting direction. This makes it possible to improve signal transmission quality and to reduce cost.
A description is given, with reference to the accompanying drawings, of one or more embodiments of the present invention.
Referring to
The plug 2 is configured to be mounted on the first board P1. As illustrated in
Referring to
The signal conductor plates 21A include multiple pairs of the positive (+) signal conductor plate 21A for a positive signal and the negative (−) signal conductor plate 21A for a negative signal. The first contacts 21b of each pair of the signal conductor plates 21A are a positive signal contact 21ba and a negative signal contact 21bb. In correspondence to the positive signal contact 21ba and the negative signal contact 21bb, the first conductor parts 21c of each pair of the signal conductor plates 21A are a positive signal conductor plate 21ca and a negative signal conductor plate 21cb, and the first connection parts 21a of each pair of the signal conductor plates 21A are a positive signal connection part 21aa and a negative signal connection part 21ab.
The first contact 21b of each of the ground conductor plates 21B is a ground contact 21bc. The first conductor part 21c of each of the ground conductor plates 21B is a ground conductor part 21cc. The first connection part 21a of each of the ground conductor plates 21B is a ground connection part 21ac.
Referring to
Comparing the direction of the inverted L-letter shape to a circumferential direction, the frame 22 includes suitable skeletal parts 22a that extend radially and circumferentially, so that the heat of the first conductor plates 21 is radiated through air gaps (openings) formed between the skeletal parts 22a.
In this case, as illustrated in
Referring to
Correspondingly, in the plane of connection to the first board P1, the ground connection parts 21ac and the positive and negative signal connection parts 21aa and 21ab of the plug module 203 are arranged at equal intervals in the fitting direction while being offset by the half of the equal interval in the fitting direction relative to the ground connection parts 21ac and the positive and negative signal connection parts 21aa and 21ab of the adjacent plug module 20A.
Referring to
That is, the positive signal contact 21ba and the negative signal contact 21bb of each pair are turned in the same direction while being offset in opposite directions in the row direction in the opposing plane so as to be parallel to each other while facing each other in the opposing plane. That is, in the opposing plane, the outlines of the respective rectangular shapes of the positive signal contacts 21ba and the negative signal contacts 21bb are parallel to each other, and the positive signal contacts 21ba and the negative signal contacts 21bb are arranged with their respective longitudinal (lengthwise) ends of the rectangular shapes being aligned.
Here, each of the first conductor plates 21 is formed by suitably performing processing such as press working and bending on a single elastic member of, for example, a copper alloy, having electrical conductivity and elasticity. That is, the above-described turning is performed during this process. The surfaces of the first contacts 21b of the first conductor plates 21 may be suitably subjected to plating.
Referring to
The positive signal conductor part 21ca and the negative signal conductor part 21cb of the signal conductor plates 21 on the innermost side are smaller in width (narrower) in a radial direction than the positive signal conductor parts 21ca and the negative signal conductor parts 21cb of the other signal conductor plates 21. Further, as illustrated in
As illustrated in
By thus configuring the plug 2, in the plane of connection to the first board P1, the positive and negative signal connection parts 21aa and 21ab and the ground connection parts 21ac are alternately arranged in the row direction, so that a staggered terminal arrangement is achieved.
The jack 3 is configured to be mounted on the second board P2. As illustrated in
Each of the second contacts 31b includes an inclined part that is inclined (angled) relative to the fitting direction and a bifurcate part that is bifurcated into two portions in correspondence to the first contacts 21b of the plug 2, so that when the plug 2 and the jack 3 are fit to each other, the second contacts 31 are pressed aside (sideward) by the inserted first contacts 21b to ensure contact pressure.
The second conductor plates 31 include two kinds of conductor plates: signal conductor plates for signals (signal transmission) and ground conductor plates for grounding.
The signal conductor plates include multiple pairs of the positive (+) signal conductor plate for a positive signal and the negative (−) signal conductor plate for a negative signal. The second contacts 31b of each pair of the signal conductor plates 31 are a positive signal contact 31ba and a negative signal contact 31bb. In correspondence to the positive signal contact 31ba and the negative signal contact 31bb, the second conductor parts 31c of each pair of the signal conductor plates 31 are a positive signal conductor plate 31ca and a negative signal conductor plate 31cb, and the second connection parts 31a of each pair of the signal conductor plates 31 are a positive signal connection part 31aa and a negative signal connection part 31ab.
The second contact 31b of each of the ground conductor plates 31 is a ground contact 31bc. The second conductor part 31c of each of the ground conductor plates 31 is a ground conductor part 31cc. The second connection part 31a of each of the ground conductor plates 31 is a ground connection part 31ac.
In this case as well, the positive and negative signal connection parts 31aa and 31ab and the ground connection parts 31ac are arranged at equal intervals in the fitting direction in the plane of connection to the second board P2. The second conductor plates 31 are enclosed by the frame 32 to form the jack module 30. Like the frame 22 of the plug 2, the frame 32 is formed by injection molding using an insulator of suitable material quality. Like in the plug 2, by alternating the jack modules 30 of two different kinds in the row direction and offsetting their terminal arrangements in the fitting direction, the positive and negative signal connection parts 31aa and 31ab and the ground connection parts 31ac are alternately arranged in the row direction, so that a staggered terminal arrangement is achieved.
Referring to
That is, the positive signal contact alba and the negative signal contact 31bb of each pair are turned in the same direction while being offset in opposite directions in the row direction in an opposing plane that faces toward the plug 2 (for example, a surface 30a of the plug module 30 or a plane parallel to the surface 30a) so as to be parallel to each other while facing each other in the opposing plane. That is, as illustrated in
Here, each of the second conductor plates 31 as well is formed by suitably performing processing such as press working and bending on a single elastic member of, for example, a copper alloy, having electrical conductivity and elasticity. The surfaces of the second contacts 31b of the second conductor plates 31 may be suitably subjected to plating.
As illustrated in
Here, as illustrated in
When the first contacts 21b and the second contacts 31b are viewed from the fitting direction with the plug 2 and the jack 3 being fit to each other, the first and second contacts 21b and 31b are arranged in a matrix, and of adjacent combinations of the first and second contacts 21b and 31b in the column direction, one is for grounding and the other is for signals (signal transmission). The first contacts 21b are arranged in the column direction in each of the plug modules 20 that are provided row by row. The second contacts 31b are arranged in the column direction in each of the jack modules 30 that are provided row by row.
Further, of adjacent combinations of the first and second contacts 21b and 31b in the row direction, one is for grounding and the other is for signals (signal transmission). Further, the first conductor parts 21c and the second conductor parts 31c are arranged in a matrix, and of adjacent combinations of the first and second conductor parts 21c and 31c in each of the column direction and the row direction, one is for grounding and the other is for signals (signal transmission).
In addition, as illustrated in
Each of the fitting holes 24b is provided with a pair of holding parts 24ba that holds the side surfaces of the ground contact 21b from each side. Referring to
In the above-described embodiment, the column direction refers to an in-plane direction perpendicular to a plane of contact to a board to which the plug 2 and the jack 3 connect in the plug 2 and the jack 3, respectively, and is a direction in which terminals are arranged in the plug modules 20 and the jack modules 30. The row direction refers to a direction in which the plug modules 20 and the jack modules 30 are stacked (arranged) in the plug 2 and the jack 3, respectively. The fitting direction is a direction perpendicular to both the column direction and the row direction.
The above-described connector 1 according to this embodiment produces advantageous effects as follows. That is, even when the first board P1 and the second board P2 are perpendicular to each other, the first board P1 and the second board P2 may be electrically connected without interposing a so-called backplane that is perpendicular to both the first board P1 and the second board P2 between the first board P1 and the second board P2 by connecting the plug 2 and the jack 3 to the first board P1 and the second board P2, respectively, and fitting the plug 2 and the jack 3 to each other.
This configuration makes it possible to prevent signal degradation due to transmission by avoiding an increase in contact resistance and impedance mismatching by reducing the number of contacts in connection paths and omitting the above-described backplane and its connector components in electrically connecting electronic components on the first board P1 and electronic components on the second board P2. Further, it is also possible to reduce cost by reducing the number of components.
Further, by providing different kinds of modules for each of a group of the plug modules 20A of the plug 2 and a group of the jack modules 30 of the jack 3 and alternating signal terminals with ground terminals in the row and the column direction, it is possible to connect the first board P1 and the second board P2 by fitting the plug 2 and the jack 3 to each other even when the relative positions of the first board P1 and the second board P2 illustrated in
Further, since it is possible to omit a backplane, consideration may be given to application to a relatively large electronic apparatus such as a large-size server or a supercomputer, where multiple first boards P1 and multiple second boards P2 are connected by the connector 1 including the plug 2 and the jack 3. In this case, the direction of cooling air that cools the electronic components of the multilayer first boards P1 and the direction of cooling air that cools the electronic components of the multilayer second boards P2 may be aligned with the fitting direction of the connector 1, thereby making it possible to simplify a flow of cooling air. By thus simplifying a flow of cooling air, the number of installed fan motors is reduced, so that it is possible to reduce cost.
In addition, even without the above-described backplane, signal transmission between any combination of two or more of the multilayer first boards P1 may be performed by any of the multilayer second boards P2, and conversely, signal transmission between any combination of two or more of the multilayer second boards P2 may be performed by any of the multilayer first boards P1.
Further, by arranging terminals in a matrix with a ground terminal and signal terminals being adjacent to each other, it is possible to improve transmission characteristics. Further, the signal terminals may be a positive terminal and a negative terminal for differential transmission. This also makes it possible to improve transmission characteristics.
All examples and conditional language provided herein are intended for pedagogical purposes of aiding the reader in understanding the invention and the concepts contributed by the inventor to further the art, and are not to be construed as limitations to such specifically recited examples and conditions, nor does the organization of such examples in the specification relate to a showing of the superiority or inferiority of the invention. Although one or more embodiments of the present invention have been described in detail, it should be understood that the various changes, substitutions, and alterations could be made hereto without departing from the spirit and scope of the invention.
For example, in the above-described embodiment, the plug 2 and the jack 3 employ a press-fit shape for a connection part that connects to a board, while a through hole of the board corresponding to the press-fit shape may be replaced with a pad, and the press-fit shape may be replaced with a contact shape or a shape for soldering.
Further, in the above-described embodiment, the signal contacts 21ba and 21bb are positive and negative terminals and the signal contacts 31ba and 31bb are positive and negative terminals in consideration of improvement of transmission characteristics due to differential transmission. However, the signal contacts 21ba and 21bb may be replaced with a single signal contact, and the signal contacts 31ba and 31bb may be replaced with a single signal contact. The matrix formed by a terminal arrangement is not limited to the above-described square matrix, and may be a non-square matrix.
Embodiments of the present invention are related to a connector, and includes a plug, a jack, and a connector including the plug and the jack that make it possible to establish suitable electrical connection between a first board and a second board that are twisted relative to each other in a positional relationship. Therefore, embodiments of the present invention are beneficially applied to industrial electronic apparatuses that are particularly desired to be cooled with more efficiency among configurations where both the first board and the second board are multilayered. Embodiments of the present invention may also be applied to home and office electronic apparatuses.
Number | Date | Country | Kind |
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2011-285124 | Dec 2011 | JP | national |