The present invention pertains to a connector capable of electrically connecting a differential transmission cable, and further relates to a connector offering good high-speed signal characteristics due to its characteristic configuration.
With the increased information capacity and higher information transmission speeds of recent years, a data transfer specification known as serial ATA has become the standard interface between peripheral devices for personal computers and the like. Serial transmission refers to a format in which information is transmitted one bit at a time using a single transmission path. The smaller number of signal lines makes interference less likely to occur between signal lines, thus making serial transmission more advantageous for higher speeds. It is also advantageous in terms of the signal voltage, which can be set as low as about ±250 mV, and for being able to improve the resistance to noise from external sources by employing differential transmission, wherein an original signal and a signal obtained by polarity-inverting said signal are simultaneously transmitted on two signal lines. Such a transmission format requires two sets of two lines, for a total of four signal lines. A typical example is the USB format. However, further increases in information capacity will raise the demand for higher signal transfer rates and increased numbers of signal lines for greater information transmission, and require improvements in the resulting degradation of signal characteristics between signal lines. Solutions to these problems have been suggested as described in Patent Documents 1 and 2.
The differential transmission connector of Patent Document 1 has pairs of pin-shaped signal contacts arranged alternately in the horizontal direction and the vertical direction as shown in FIG. 1 of Patent Document 1, and pairs of ground contacts arranged so as to intersect with the signal contacts in the horizontal direction and a single ground contact in between the signal contacts in the vertical direction, thus enabling connection of the male and female sides without having to enlarge the overall dimensions, while reducing crosstalk between signal lines in each direction.
Patent Document 2 describes an invention that was made to improve on conventional art differential transmission connectors wherein, in order to prevent crosstalk from adjacent differential transmission cables with drain lines, a pair of signal lines and a drain line are grouped together and shielded by a shield material, such that the pair of signal lines are aligned in the longitudinal direction, and a ground metal plate or the like is disposed so as to contact the drain line between that pair and another pair of signal lines that are adjacent in a lateral direction, thereby to improve the high-frequency characteristics. The invention has a shield plate connected to a drain line aligned in a direction roughly perpendicular to the axial direction of the signal contacts detained against a ground metal plate in a longitudinal direction between a pair of signal lines aligned in the longitudinal direction so as to be in a roughly intermediate position between a pair of signal contacts above and below. As a result, the drain lines of the cables are arranged by the shield plates to be organized in a required direction with the cable covers or the like, thus enabling them to be pressure connected together, while also detaining them and integrating them with the ground contact plates, so as to improve the transmission characteristics for high-speed transmission.
The connector structure disclosed in Patent Document 1 has multiple pin-shaped signal contacts arranged two-dimensionally, and this idea cannot be applied to a relatively small number of signal contacts that are arranged one-dimensionally. Additionally, connectors for the purpose of one-dimensional arrangements usually include shields surrounding the signal contacts, which is another reason the art disclosed in Patent Document 1 cannot be applied to connectors with one-dimensionally arranged signal contacts.
Additionally, the connector structure disclosed in Patent Document 2 has pairs of longitudinal signal lines arranged laterally, separated from other signal lines by shield plates contacting the drain lines, with the drain lines positioned at intermediate positions between the longitudinally aligned signal lines, and connected to a shield plate that forms a ground contact, but this differs from the structure of the present invention wherein a shield portion is formed by a shell surrounding a one-dimensional array of signal lines and a drain line, and like Patent Document 1, it cannot be applied to a connector in which the signal contacts are arranged one-dimensionally.
In conventional differential transmission connectors, the structure is usually one in which a pair of signal lines and one or more drain lines inside a differential transmission cable are arranged in a single row on the same carrier as signal lines and ground lines. However, the spacing between the electrical lines must inevitably be reduced in order to accommodate increases in the required number of signal lines, thus causing degradation of the signal characteristics due to crosstalk between signal lines. In view of the above problems, the present invention has the purpose of providing a shield effect to improve the impedance characteristics of the signal lines by positioning a shell covering the connection points of each electrical line corresponding to the electrical contacts in the connector, connecting the drain lines to improve the impedance characteristics of the signal lines, and eliminating the ground electrical contacts corresponding to the drain lines which have conventionally been connected to the drain lines at both ends to reduce the connector width, make the dimensions of the connector more compact overall and improve its characteristics.
According to a preferred embodiment of the present invention, the connector of the present invention is a connector that mates with a counterpart connector to perform electrical connection of at least two differential transmission cables each having a pair of signal lines and at least one drain line, wherein the aforementioned connector comprises a pair of adjacent signal line contacts to which a pair of signal lines of the aforementioned cable are connected, a ground line contact to which at least one drain line of the aforementioned cable is connected, a carrier having the aforementioned pairs of signal line contacts and the aforementioned ground line contacts arranged alternately in a single row in a width direction perpendicular to the axial direction of the aforementioned cable on the same plane, and a shell covering the aforementioned signal line contacts and the aforementioned ground line contacts as well as the aforementioned carrier, wherein a drain line positioned on at least one end of the aforementioned arrangement is connected to the aforementioned shell.
In a typical embodiment, for example, corresponding electrical contacts are arranged on the flat surface of a molded carrier such that two differential transmission cables having at least one drain line and two signal lines are aligned, with a pair of adjacent signal lines positioned on each side of the ground line. At least one drain line is connected to a ground electrical contact. The carrier and the electrical contacts are covered, for example, by a hollow metal shell having a shield effect. At least one drain line is connected to the metal shell. Stable signal transmission characteristics can be obtained by means of the above structure.
According to a preferred embodiment of the present invention, the connector of the present invention has drain lines positioned at both sides of the signal line contacts and ground line contact arranged on the carrier as described above, and both drain lines connected to the aforementioned shell.
When, for example, using a dual-drain differential transmission cable, drain lines are usually positioned on both sides of the cable. Therefore, when two cables are positioned side by side, drain lines will be positioned on the outsides of the signal lines and ground line arranged as described above, and these can be connected to the metal shell in order to achieve a more compact structure.
According to a preferable embodiment of the present invention, the aforementioned ground line contact of the connector of the present invention is connected with one drain line from each of the aforementioned cables.
When using a dual-drain differential transmission cable with two cables positioned side by side as described above, two drain lines will lie adjacent each other between a pair of signal lines from the cables, and when these are simultaneously connected to a single ground line contact, it is possible to arrange the lines so as to have a small spacing, thereby reducing the size of the connector overall.
According to a preferable embodiment of the present invention, the connector of the present invention is such that there are two of the aforementioned cables, each cable having drain lines on both sides of the pair of signal lines in the aforementioned arrangement plane, a portion of the aforementioned drain lines on both sides being connected to the aforementioned shell when configuring the two aforementioned cables, and the drain lines with pairs of signal lines on both sides being connected to a single ground line contact.
When two dual-drain differential transmission cables having drain lines on both sides of a pair of signal lines are positioned side by side, the drain lines positioned outermost on the arrangement are connected to the shell, and the other adjacent pairs of drain lines are connected to a single ground line contact as ground lines. Due to this structure, while conventional configurations have ground line contacts for each of the drain lines positioned outermost, in the present invention, they are connected to the shell, so that it is possible to eliminate two of the contacts, thus contributing to an overall reduction in the size of the connectors.
According to a preferable embodiment of the present invention, the combination of connectors of the present invention comprises any one of the connectors described above, and a counterpart connector having contacts corresponding to the contacts of the aforementioned connector on a carrier surrounded by a shell, such that the corresponding shells can be mated together to achieve an electrical connection.
The connector of the present invention is a complementary connector for connecting differential transmission cables for high-speed signal transmission, for example, for mating together a cable connector for electrically connecting a plurality of devices such as a hard disk and a CPU on a printed circuit board inside a personal computer, and a board connector provided on a circuit board for directly connecting with the devices. When mated together, the outer profiles of the metal shells are complementary, so that when one of the shells is inserted inside another hollow shell, the hollow shell covers the outer surface of the other shell. A carrier with an array of electrical contacts is provided inside each shell, and when mated together, the corresponding contacts contact each other to electrically connect the devices.
The present invention is directed to a connector for differential transmission cables which are separate and independent at the aforementioned other end corresponding to the board connector on the
Here, the independent connector side (b″ side) of the present invention may also be used as a power supply connector, and when the differential transmission cable wiring and the aforementioned power supply cable wiring are both covered by a shell, the outermost drain lines can be connected to the shell. An example of a modified version of
a) is a top perspective view of a board connector according to the present invention.
a)-(d) show steps in the assembly of the constituent elements of
Due to this structure, while ground electrical contacts have been conventionally provided for the drain lines positioned outermost, in the present invention, the outermost drain lines are directly connected to the shield 40, thus enabling the two ground electrical contacts conventionally positioned outermost to be eliminated, thereby reducing the length in the width direction perpendicular to the axial direction of the cable. As a result, it is possible to make the dimensions of the connector more compact.
Additionally, together with improvements in cable technologies, careful selection of the performance of the cables used and employment of the connectors of the present invention resulted in compact, high-performance connectors.
Number | Date | Country | Kind |
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2004-198208 | Jul 2004 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2005/012343 | 7/4/2005 | WO | 00 | 9/24/2007 |