The present application is a U.S. National Phase of International Patent Application PCT/IB2015/051854 filed on Mar. 13, 2015, which claims priority to Italian Application No. TV2014U000011, filed on Mar. 13, 2014, each of which is incorporated by reference as if expressly set forth in their respective entireties herein.
The present invention concerns a vehicle diagnostic interface module, preferably an interface module for OBD vehicles.
In particular, the present invention concerns a diagnostic interface device or module of the type preferably comprising an OBD connector (acronym for On-Board Diagnostics) which is adapted to be coupled, in use, to an OBD diagnostic socket/port present on board of a motor vehicle, for example a car, a motorcycle, a boat, or the like; to which the following description will make explicit reference without thereby losing generality.
It is known that some motor vehicles are provided with an on-board diagnostic port, generally arranged under the operation panel and the steering wheel, coupled to the connector of an outer vehicle diagnostic electronic instrument which can access, through the diagnostic to various vehicle information/data, such as e.g. error codes stored by the vehicle electronic control system. In this case, the electronic control system receives, stores and processes the vehicle information/data on the basis of the signals generated by the various electronic/electrical control equipment/sensors in the vehicle.
The on-board diagnostic port is made according to the communication standard of OBD vehicle data (i.e. OBD II in the USA, or E-OBD in Europe), standard which, as already known, sets the shape/size of the trapezoidal connector frame, the number and the arrangement of the pins in the connector, and the communication protocols to be used to communicate with the on-board electronic control system through the OBD port pins.
It is also known that the acquisition of: vehicle information/data during the movement of the vehicle, is carried out through recently created portable diagnostic interface modules which are “miniaturized” devices, i.e. having a reduced overall size if compared to the aforesaid traditional vehicle diagnostic electronic means. In this case, the diagnostic interface modules are designed to be coupled to the OBD port so as to remain in the vehicle during its movement, and are configured to acquire/store information/data contained in the on-board electronic control unit and, in case, to send them to a vehicle diagnostic electronic system outside of the vehicle through wireless communication.
The aforesaid OBD vehicle diagnostic interface module has the technical problem of being particularly cumbersome due to the “longitudinal” arrangement of the printed circuit boards inside the casing. In particular, the arrangement of the printed circuit boards along planes parallel to the longitudinal axis results in an increase of the overall volume of the module inside the car. Therefore, the module is subject to damage due to an accidental collision caused by the driver, and/or to vibration/stress generated by the displacement of the vehicle.
Furthermore, in the aforesaid modules, the mutual arrangement boards-pins makes particularly complex their electrical coupling during the module manufacturing process, with all the consequences that this implies in terms of costs and production capacity. In fact, the board-pins arrangement coplanar to planes parallel to the axis A necessarily requires manual, precise operations by soldering pins to the plots predisposed in boards, said operations being complex and therefore incompatible with the operation times required to sufficiently reduce the module cost.
The document CN 202 454 060 U describes an OBD vehicle diagnostic interface module provided with an outer casing, two printed circuit boards arranged inside the housing, their positions being parallel and facing each other and orthogonal to the module longitudinal reference axis, and a connector adapted to be coupled to a vehicle diagnostic port. The connector is provided with a plate-shaped socket, transverse to the longitudinal reference axis, and with a series of pins projecting from one of the two boards to be inserted in as many through holes formed in the socket. The document CN 202 454 060 U has the technical problem of requiring a specific printed circuit board for supporting and connecting the pins. Obviously, the pins occupy part of the useful space of the board, thereby requiring the use of an additional board for supporting and connecting the electronic components of the module, resulting in an increased volume and manufacturing costs.
The document U.S. Pat. No. 7,225,065 describes a vehicle wire connection system comprising a series of adapter modules for an OBD diagnostic connector.
The Applicant has therefore conducted a thorough study whose purpose was to find a solution that would specifically achieve the objective of creating an OBD interface module having a reduced overall size and, simultaneously, a simplified structure to allow the electrical coupling of the contacts of the OBD connector to the printed circuit board through automatic industrial coupling processes, in order to reduce its manufacturing costs.
Object of the present invention is therefore to provide a solution that achieves the aforesaid objectives.
This object is achieved by the present invention in that it concerns a preferably OBD vehicle diagnostic interface module, as defined in the appended claims.
This object is achieved by the present invention in that it concerns a method for manufacturing a vehicle diagnostic interface module as defined in the appended claims.
The present invention will now be described with reference the accompanying drawings, which illustrate a non-limitative embodiment, wherein:
The present invention will now be described in detail with reference to the accompanying drawings to enable a person skilled in the art to make and use it. Various modifications L the aforesaid embodiments will be immediately apparent to the person skilled in the art, and the described generic principles can be applied to other embodiments and applications without departing from the scope of the present invention as defined in the appended claims. Therefore, the present invention should not be regarded as limited to the described and illustrated embodiments, but it should be granted the widest protective scope consistent with the principles and features herein described and claimed.
With reference to
The diagnostic module 1 preferably comprises an OBD connector 2 provided with a plurality of pins 3, preferably male pins, adapted to be coupled, in use, preferably with respective female contacts present in an OBD diagnostic port (not shown), an electronic module 4 electrically coupled to pins 3 as described hereinafter, and an outer casing 5, which, in the illustrated example, comprises substantially parallelepiped-shaped cover which is coupled to the OBD connector to contain/lock inside it the electronic module 4.
According to a preferred embodiment shown in
According to a preferred exemplificative embodiment shown in
According to a preferred exemplificative embodiment shown in
According to a preferred exemplificative embodiment shown in
According to a preferred exemplificative embodiment shown in
According to a preferred exemplificative embodiment shown in
According to a preferred exemplificative embodiment shown in
According to a possible embodiment, the printed circuit board 15 may be structured so as to have electronic components 22 also on the opposite face 18. The Applicant has found that, by arranging the printed circuit board 15 on a plane parallel to the socket 6, by arranging the first segments 11 on its larger sides and by forming the seat 23 on the socket 6, it is possible to use/exploit the entire area/surface of both opposite faces 16, 17 of the printed circuit board 15 for mounting/supporting the electronic components 22, thereby obtaining a further reduction of the overall size and costs.
According to a possible embodiment shown in
Preferably, the notches 28 are formed on the inner side surfaces of the collar 9, and extend parallel to each other and to the axis A for substantially the height of the collar 9 measured along the axis A. Preferably, the second segments 27 of the side pins 25 are shaped so that, in use, they are electrically coupled to corresponding additional electrical side contacts present on one or more side surfaces of an OBD female electrical connector (not shown) coupled to the collar.
According to a possible embodiment shown in
Preferably, the first segments 29 may be structured/sized so that their electrical coupling with respective plots present in the printed circuit board 15 in correspondence to the notches 30 is carried out by automated soldering processes, the so-called reflow soldering.
According to a possible embodiment shown in
According to a possible embodiment shown in
According to possible embodiment, the electronic module 4 may be configured so as to perform one or more of the following functions: managing the OBD communication vehicle information/data and from an on-board electronic control unit through the pins 3, and/or permanently/temporarily storing vehicle information/data, and/or transmitting vehicle information/data to a remote system through wireless communication system such as, for example, 2G, 3G, Wi-Fi, Bluetooth, or the like, and/or managing the communication of information/data to other electronic devices/modules/equipment through the side pins 25.
It is clear that the electronic module 4 may have one or more additional printed circuit boards (not shown) which are arranged in the casing 5 in adjacent positions and facing each other to lie in planes substantially orthogonal to the axis A, and have a structure entirely similar to that of the aforesaid board 15 to be coupled, at the respective perimeter edges 19, to one or more of the second segments 12, 29 of the pins 3 and/or 25.
The present invention also concerns the method for implementing the aforesaid diagnostic module 1, comprising the steps of: arranging an OBD connector 2 of the aforesaid type, whose pins 3 are Z-shaped so that the first segments 11 project from the face 7 of the socket 6 to form two rows along the two opposite longer sides 13 of said socket; arranging the printed circuit board 15, made as previously described, so that the notches 20 formed on the two opposite longer sides 21 of the board 15 house the first segments 11; inserting the first segments 11 of the pins in the notches 20 of the board 15 so that the board 15 has its face 16 preferably resting on spacer elements 24 of the socket 6, soldering the first segments 11 on the printed circuit board 15 in correspondence to said notches through a reflow soldering, inserting the socket 6 in the mouth of the casing 5 in order to lock the board 15 inside the casing 15.
It is clear that, according to a different embodiment (not shown), the connector 2 may have a structure different from the one set by the aforesaid OBD standard, and may have a plurality of pins 3 shaped and coupled to the printed circuit board 15 as previously described. In particular, the number and the arrangement of the pins 3 inside the collar 9 according to this embodiment are different from the number (16 pins) and arrangement (parallel double row) set by the OBD standard. However, analogously to what previously described, the first segments 11 of the rigid pins 3 in the connector 2 (which does not meet the OBD standard) are made according to the aforesaid inventive principle, namely they project from the inner face 7 of the socket 6 to be parallel to the longitudinal axis A orthogonal to the printed circuit board 15, and each of them is inserted in a notch 20 formed on a side of the outer perimeter edge 19 of the printed circuit board 15, where the first segment 11 is electrically coupled to the printed circuit board 15.
The combination of technical characteristics relating to the shape of the rigid Z-shaped pins and the insertion of the end of the pins in the notches formed on the lateral perimeter edge of the printed circuit board to achieve the electrical coupling between the boards and the pins allows to decrease the overall size of the diagnostic module and, therefore, to overcome the aforesaid technical problems associated with the risk of breakage/failure of the module due to shock and vibration.
It is also possible to implement the board/pins coupling by means of industrial recast processes, thus obtaining on the one hand a reduction of costs and on the other hand an increase in productivity.
Furthermore, the module allows on the one hand to exchange data through additional protocols, namely not included in the OBD standard, without altering the geometry of the head/casing and the number/arrangement of the electrical couplings and/or related couplings, and on the other hand guarantees an effective mechanical coupling between the OBD male/female connectors.
Finally, it is clear that the aforesaid OBD diagnostic interface module can be modified and varied without departing from the scope of the present invention defined by the appended claims.
Number | Date | Country | Kind |
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TV2014000011 U | Mar 2014 | IT | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IB2015/051854 | 3/13/2015 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2015/136496 | 9/17/2015 | WO | A |
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Number | Date | Country |
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202 454 060 | Sep 2012 | CN |
2 068 863 | Sep 1973 | FR |
2 287 586 | Sep 1995 | GB |
2000 294321 | Oct 2000 | JP |
Number | Date | Country | |
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20170020011 A1 | Jan 2017 | US |