The disclosure relates to a plug connector module for modular plug connectors.
Plug connector modules can be used, on their own or combined with further plug connector modules, to transmit both electrical power and also electrical and/or optical signals/data from a first printed circuit board and/or to the first printed circuit board. Here, this transmission can take place between said first and a second printed circuit board or the first printed circuit board and a plug connector. The modular construction renders possible combination of data-transmitting and/or signal-transmitting and/or power-transmitting plug connector modules in an easy-to-handle and space-saving manner.
DE 10 2017 119 287 A1 discloses a modular plug connector, the modules of which are fixed by means of a connector which is brought into engagement with a dovetail guide. The flexibility achieved in this way renders possible both combination of different plug connector modules and also arrangement of a plurality of identical plug connector modules in a row when putting together plug connectors for circuit boards.
Owing to the modularity of the corresponding plug connectors, it is not unusual for both modules for signal and/or data transmission and also modules for power transmission to be combined in one plug connector. Particularly with the current and rapidly increasing demands by the end user, for example industry and corresponding production installations, in respect of data transmission rates of plug connectors to be used, the combination of data-transmitting modules and power-transmitting modules is accompanied by not inconsiderable challenges.
One particular disadvantage of combining modules which are designed for power transmission and modules which are designed for data transmission that has long been known is that, in respect of data transmission, electromagnetic interference causes disadvantageous influencing of the data transmission rate.
The German Patent and Trademark Office has performed a search of the following prior art in the priority application pertaining to the present application: DE 60 2006 000 218 T2, DE 10 2017 119 287 A1 and US 2016/0036165 A1.
An object of the disclosure is that of extending an existing plug connector system by a plug connector module which reduces the susceptibility to electromagnetic interference in as simple a manner as possible. In particular, the plug connector module should be able to render possible a data transmission rate of category 6A and thus, in bus systems such as Ethernet, a data transmission rate of greater than or equal to 10 gigabits per second (Gbit/s).
The object is achieved by the subject matter of the independent claim.
Advantageous refinements are specified in the dependent claims and the following description
The plug connector module is provided for modular plug connectors, in particular for mounting on a circuit board. The plug connector module has a housing for receiving at least one insulating body. The insulating body receives at least one data contact pair, wherein the data contact pair consists of two conductors and two contact elements. Here, the conductor and the contact element may also be designed in one piece. The housing is designed with at least one recess, wherein the recess is shaped to be brought into engagement with a connecting element. In this way, the plug connector module is connected to further modules of the same system type, as a result of which the plug connector modules are joined together to form a plug connector. Here, the plug connector module receives at least one insulating body for receiving data contact pairs. Furthermore, the plug connector module has at least two data contact pairs which, for their part, are provided to transmit data. The data contact pairs are at least for the most part protected against interfering influences by a respective shielding element. Therefore, not only interfering influences of the data contact pairs amongst one another but also with respect to adjoining modules can be reduced or removed. Despite combination with other modules, in particular power-transmitting modules, a reliable and stable transmission rate can be achieved in this way
The term data contact pair means, in particular, two contacts. These two contacts are provided, in particular, for making contact with conductors which establish a conductive connection from the data contact pair to a circuit board. The conductors may be fixed components. Similarly, a conductor may be designed as a cable with at least one core, consisting of at least one stranded wire. Furthermore, a conductive connection of at least one twisted pair to a circuit board can also be provided. Twisted core pairs are preferably used in the field of information technology and are also referred to as a “twisted pair cable”.
Here, a plug connector module may be, in particular, part of a modular plug connector which is connected to a circuit board. The plug connector module may likewise be used as part of a plug connector which is attached to a correspondingly designed cable. Furthermore, “part of a plug connector” may mean both the individual plug connector module and likewise “part of a plug connector” may mean the combination comprising the plug connector module with other modules compatible with the system.
The term “module” means further plug connector modules which are connected to the plug connector module. Here, these modules do not necessarily fulfill another purpose. Similarly, modules which fulfill a purpose only in conjunction with other modules may be meant. For example, auxiliary means for simplifying the plug-in process may also be covered by this term.
In a preferred embodiment, the recess in the housing is a groove in the form of a dovetail guide which receives a congruent connecting element at least for the most part in a flush manner. When a corresponding connecting element is used, the simple shape produces secure holding. Plug connector modules of various embodiments can therefore be connected to one another quickly, easily and securely and nevertheless can be simply and precisely inserted as modular plug connectors.
An expedient embodiment makes provision for the recess to be integrally formed on two opposite sides of the module in order to strengthen the connection of the modules by way of the use of two connecting elements. In addition to the clear improvement in stability, simpler mounting of the modular plug connectors can be achieved by way of this embodiment. Owing to approximately axially symmetrical development of individual plug connector modules, the plug connector modules can be particularly simply put together to form a plug connector since the orientation of the plug connector modules does not first have to be taken into account during manufacture.
A further advantageous embodiment recommends arranging the at least two data contact pairs in the housing along a plane of the plug connector module angled in relation to a vertical plane, formed by a line parallel to the longitudinal axis and a vertical line arranged approximately in the middle between a data contact pair. This means that, with respect to a front view, the data contact pairs are positioned along a straight line which is oriented at an angle in relation to a vertical (center) axis. In other words, the data contact pairs are not oriented in a flush manner in relation to one another. Therefore, the performance of the data contact pairs is additionally increased since electromagnetic interference of the data contact pairs amongst one another is reduced beyond the effect of the shielding element.
In a further embodiment, the data contact pairs, in a front view, are arranged to be symmetrical, in particular point-symmetrical, with respect to the center point of the housing. In this way, data contact pairs used are arranged offset in relation to one another. The performance of the data contact pairs is thus additionally increased since electromagnetic interference of the data contact pairs amongst one another is reduced beyond the effect of the shielding element.
One embodiment is distinguished in that the individual shielding elements of the data contact pairs surround both the data contact pairs and also the associated conductor pair along their longitudinal axis at least over a length which corresponds to the length of a contact and an insulating body receiving the contact. In particular, this means 360° shielding of the respective data contact pairs. Here, 360° shielding means that, in a front view, a shielding element is shaped in such a way that a data contact pair is completely surrounded. Furthermore, this complete shielding should be performed over at least the length which a pair of conductors, associated with the data contact pair, covers from the insulating body of the plug connector module to the circuit board. When a (twisted) core pair is used, the shielding element should assume at least the length which is required in order to maintain the shielding from the contact until transfer to a shielding element made in the cable.
An apt embodiment makes provision for the shielding elements to shield the data contact pairs all the way around in such a way that, when a suitable conductor is used, a data transmission rate of greater than or equal to 10 gigabits per second (Gbit/s) is achieved. Data transmission rates of this kind are classified, or categorized, by standard. The category for the transmission capacity of at least 10 Gbit/s falls into category 6A (Cat-6A) or correspondingly higher according to this standard. In order to set up a contemporary network for digital data processing, both plug connectors and also conductors, such as cables, circuit boards (that is to say printed circuit boards) or the like are therefore expediently selected in accordance with their data transmission category.
An exemplary embodiment is illustrated in the drawings and will be explained in more detail below.
The figures contain partly simplified, schematic illustrations. In some cases, identical reference signs are used for elements which are similar but may not be identical. Different views of the same elements may be drawn to different scales. Directional indications such as “left”, “right”, “above” and “below” are to be understood with reference to the figure in question and may vary in the individual illustrations in relation to the illustrated object.
The figures contain reference signs which additionally have further numberings with indices such as “′” or are separated by a period, for example “10.x”, where natural numbers of ascending order are used for “x”. This indicates that the elements in question are, in principle, elements mentioned in the list of reference signs which can be shaped differently to the elements without a reference sign index or may differ from the differently numbered elements in form and/or function.
The design of a plug connector module 1 is clear from
One possible feasible use of the plug connector modules 1 and 1′ can be seen in
Even though various aspects or features of the invention are shown respectively in combination in the figures, it is clear to a person skilled in the art—unless stated otherwise—that the illustrated and discussed combinations are not the only ones possible. In particular, mutually corresponding units or feature complexes from different exemplary embodiments can be exchanged with one another.
Number | Date | Country | Kind |
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10 2019 121 801.2 | Aug 2019 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/DE2020/100670 | 7/27/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2021/027992 | 2/18/2021 | WO | A |
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Number | Date | Country | |
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20220329013 A1 | Oct 2022 | US |