An electrical connector is a device used to provide electrical connection between electronic components. An electronic component is a component that conducts, transmits, receives, generates, or otherwise uses an electrical current and/or signal during the operation of the component. An electronic component designed to use the electrical current/signal without alteration is a passive electronic component. In contrast, an electronic component designed to use the electrical current/signal with alteration is an active electronic component. An optoelectronic component is an electronic component that also uses an optical signal during operation.
An electrical connector may include a number of connector pins held in place by a mechanical housing. The connector pins are made from a conductive material (e.g., copper alloy) to transmit electrical the current/signal between electronic components connected by electrical connector. The mechanical housing is made of an insulating material (e.g., plastic).
In general, in one aspect, the invention relates to a circuit assembly. The circuit assembly includes an edge connector comprising a plurality of connector pins for electrical connection, a rigid circuit board comprising a connector footprint region, wherein the connector footprint region is mechanically coupled to the plurality of connector pins, and a flexible cable comprising a first edge connection component, wherein the flexible cable is inserted in-between the connector footprint region and at least a portion of the plurality of connector pins, wherein the first edge connection component is electrically connected to at least one of the plurality of connector pins.
In general, in one aspect, the invention relates to a pluggable module. The pluggable module includes (i) a first circuit assembly, (ii) a second circuit assembly connected to the first circuit assembly via a flexible cable, where the second circuit assembly includes an edge connector comprising a plurality of internal connector pins for electrical connection internal to the pluggable module, a rigid circuit board comprising a connector footprint region, wherein the connector footprint region is mechanically coupled to the plurality of internal connector pins, and the flexible cable comprising a first edge connection component, wherein the flexible cable is inserted in-between the connector footprint region and at least a portion of the plurality of internal connector pins, wherein the first edge connection component is electrically connected to at least one of the plurality of internal connector pins, and (iii) an enclosure enclosing the first circuit assembly and the second circuit assembly.
In general, in one aspect, the invention relates to a method for a flexible cable. The method includes mechanically coupling a connector footprint region of a rigid circuit board to a plurality of connector pins of a connector, inserting the flexible cable in-between the connector footprint region and at least a portion of the plurality of connector pins, and electrically connecting, in response to the mechanically coupling and the inserting, a first edge connection component of the flexible cable to at least one of the plurality of connector pins.
Other aspects of the invention will be apparent from the following description and the appended claims.
Specific embodiments of the invention will now be described in detail with reference to the accompanying figures. Like elements in the various figures are denoted by like reference numerals for consistency.
In the following detailed description of embodiments of the invention, numerous specific details are set forth in order to provide a more thorough understanding of the invention. However, it will be apparent to one of ordinary skill in the art that the invention may be practiced without these specific details. In other instances, well-known features have not been described in detail to avoid unnecessarily complicating the description.
In the following description, any component described with regard to a figure, in various embodiments of the invention, may be equivalent to one or more like-named components described with regard to any other figure. For brevity, descriptions of these components will not be repeated with regard to each figure. Thus, each and every embodiment of the components of each figure is incorporated by reference and assumed to be optionally present within every other figure having one or more like-named components. Additionally, in accordance with various embodiments of the invention, any description of the components of a figure is to be interpreted as an optional embodiment which may be implemented in addition to, in conjunction with, or in place of the embodiments described with regard to a corresponding like-named component in any other figure.
Throughout the application, ordinal numbers (e.g., first, second, third, etc.) may be used as an adjective for an element (i.e., any noun in the application). The use of ordinal numbers is not to imply or create any particular ordering of the elements nor to limit any element to being only a single element unless expressly disclosed, such as by the use of the terms “before”, “after”, “single”, and other such terminology. Rather, the use of ordinal numbers is to distinguish between the elements. By way of an example, a first element is distinct from a second element, and the first element may encompass more than one element and succeed (or precede) the second element in an ordering of elements.
In general, embodiments of the invention provide a circuit assembly that includes an edge connector having a number of connector pins for electrical connection, a rigid circuit board having a connector footprint region mechanically coupled to the connector pins, and a flexible cable having an edge connection component electrically connected to at least one of the connector pins. In particular, the flexible cable is inserted in-between the connector footprint region and at least a portion of the connector pins. In or more embodiments of the invention, the flexible cable is a thin, flat, and high bandwidth flexible cable that transmits one or more radio frequency (RF) signals directly to the edge connector without intermediate connections across the rigid circuit board. Specifically, the direct RF electrical signal transmission to the edge connector improves the RF signal transitions in the circuit assembly.
As shown in
As used herein, an edge connector is an electrical connector to be mounted near an edge of a circuit board (e.g., rigid circuit board (106)) and having one or more rows of connector pins to facilitate electrical connections between the circuit board and a separate circuit. In particular, the edge is a line where a component mounting surface (e.g., surface (106-8)) of the circuit board terminates. For example, the edge connector may be disposed on top of the surface (106-8) or to the side of the surface (106-8). In at least some embodiments, the edge is the flat surface of a circuit board that does not have circuitry on the surface. For example, the edge may be the smallest flat surface of the circuit board of all of the flat surfaces. In such embodiments, an edge connector is one that connects to the edge. In one or more embodiments, the edge connector (105) includes a number of pins (e.g., connector pin (105-1)) held in a connector housing (105-2). In particular, the connector housing (105-2) is a mechanical structure that provides mechanical stability among the connector pins (e.g., connector pin (105-1)). Further, the connector housing (105-2) provides mechanical stability between the rigid circuit board (106) and the flexible cable (104). For example, the connector housing (105-2) may press the rigid circuit board (106) and the flexible cable (104) together against the connector pins (e.g., connector pin (105-1)). In one or more embodiments, the edge connector (105) is permanently connected (e.g., with connector pins soldered) to the flexible cable (104) and the rigid circuit board (106). An example of such embodiment is described in reference to
The edge connector (105) is shown in
A flexible cable is a cable made of pliable material such that the cable may be repeatedly bent or folded without cracking, breaking, or other functional failures. In one or more embodiments, the flexible cable (104) is a miniaturized flat form of a ribbon cable. For example, the flexible cable (104) may include a flat and flexible plastic film base, with multiple metallic conductors bonded to one or both surfaces. The flexible cable (104) is shown in
A rigid circuit board is a flat sheet (e.g., a fiberglass board or other rigid substrate) that mechanically supports and electrically connects electronic devices using conductive traces, surface contact pads and other features of the rigid circuit board. The rigid circuit board is rigid such that cracking, breakage, and/or other functional failures of the flat sheet occur when being bent or otherwise deformed beyond a pre-determined range (e.g., equivalent to the thickness of the flat sheet). In one or more embodiments, rigid circuit board (106) is a printed circuit board. In such embodiments, the conductive traces, contact pads and other features of the rigid circuit board (106) are etched from one or more conducting (e.g., copper) layers laminated with one or more insulating layers forming the flat sheet. Subsequently, capacitors, resistors, or active devices are soldered onto the surface contact pads and included as part of the PCB. In one or more embodiments, rigid circuit board (106) is a thick film hybrid integrated circuit. In such embodiments, successive layers of conductor, resistor, and dielectric layers are deposited using a screen-printing process onto an electrically insulating substrate to form the rigid circuit board (106).
The rigid circuit board (106) is shown in
Continuing with
As shown in
Further as shown in
In one or more embodiments, the pluggable module (101) includes the optical port (111) for optical signal transmission external to the pluggable module (101). For example, the optical port (111) may include an optical fiber receptacle that allows the pluggable module (101) to send and/or receive an optical signal using an optical fiber cable (111-1). For example, the optical signal may be processed/converted by the circuit assembly A (209) and circuit assembly B (103) into the aforementioned RF signal for transmission via the module connector pin (105-3). In another example, the aforementioned RF signal may be processed/converted by the circuit assembly A (209) and circuit assembly B (103) into the optical signal for transmission via the optical port (111). In one or more embodiments, the conversions between the optical signal transmission and the RF electrical signal transmission are based on the internal signal exchanged between the circuit assembly A (209) and circuit assembly B (103). For example, the flexible cable (104) connects the internal signal between the circuit assembly A (209) and circuit assembly B (103) to facilitate the aforementioned processing/conversion. In another example, the flexible cable (104) connects the RF signal generated by the circuit assembly B (103) to the connector pin (105-1) for outputting via the module connector pin (105-3). In the context of these examples, the pluggable module (101) converts between the optical signal transmission and the RF electrical signal transmission via at least the optical port (111), the flexible cable (104), the connector pin (105-1), and the module connector pin (105-3).
In one or more embodiments, the enclosure (102) is a physical structure providing support and protection to the circuit assembly A (209), circuit assembly B (103), optical port (111), and other components of the pluggable module (101).
In one or more embodiments, the pluggable module (101) conforms to an industry standard form factor, such as CPF (C form-factor pluggable), CFP-2, CFP-4, CFP-8, QSP28, and other QSFP and QSFP+ form factors. In such embodiments, the internal size, pin arrangement, and cooling consideration of the industry standard form factors result in mounting electrical and optical components on separate circuit assemblies (e.g., circuit assembly A (209), circuit assembly B (103)) within the enclosure (102) of the pluggable module (101).
As shown in
In one or more embodiments, the edge connection component A (131-1), edge connection component B (131-2), and conducting traces are affixed to and supported by a flexible film (104-1), which may be based on plastic or other pliable material. In one or more embodiments, the flexible cable (104) further includes an alignment component A (131-3) to facilitate the electrical connection between the flexible cable (104) and the edge connector (105). For example, the alignment component A (131-3) may include an etched hole, punched hole, printed-on marker, etc. of the flexible film (104-1). In another example, the alignment component A (131-3) may include an additional component mounted on or embedded in the flexible film (104-1). For example, the alignment component A (131-3) may include a mechanical pin or other types of protrusion. In one or more embodiments, the alignment component A (131-3) may be used to align the flexible cable (104) with respect to the rigid circuit board (106). As a result, the contact pad A (131-5) is in contact with the connector pin (105-1), depicted in
Although not explicitly shown, in one or more embodiments, the flexible cable (104) may further include one or more electronic and/or optoelectronic component mounted on or embedded in the flexible film (104-1).
Further as shown in
In one or more embodiments, the connector footprint region B (106-2) is adapted to establish electrical connection between the rigid circuit board (106) and a portion of connector pins of the edge connector (105). For example, the connector footprint region B (106-2) may include contact pads (e.g., contact pad B (106-5)) that are connected to an electronic device (106-3) via conducting traces (e.g., conducting trace B (106-4)). In one or more embodiments, the electrical connection is established using a soldering operation or a repeatable insertion operation.
In one or more embodiments, the contact pads (e.g., contact pad B (106-5)), the electronic device (106-3), and the conducting traces (e.g., conducting trace B (106-4)) are affixed to and supported by a substrate (106-6), which may be based on fiberglass or other rigid material. In one or more embodiments, the rigid circuit board (106) further includes an alignment component B (106-7) to facilitate the electrical connection between the flexible cable (104) and the edge connector (105). For example, the alignment component B (106-7) may include an etched hole, punched hole, printed-on marker, etc. of the substrate (106-6). In another example, the alignment component B (106-7) may include an additional component mounted on or embedded in the substrate (106-6). For example, the alignment component B (106-7) may include a mechanical pin or other types of protrusion. In one or more embodiments, the alignment component B (106-7) may be used in conjunction with the alignment component A (131-3) to align the flexible cable (104) and the rigid circuit board (106). As a result, the contact pad A (131-5) is in contact with the connector pin (105-1) when the flexible cable (104) and the rigid circuit board (106) are inserted together into the edge connector (105).
In one or more embodiments, when the flexible film (104-1) and the substrate (106-6) are aligned, the contact pads (e.g., contact pad A (131-5), contact pad B (106-5)) in the edge connection component A (131-1) and the connector footprint region B (106-2) are collectively arranged into a single row corresponding to a row of connector pins of the edge connector (105). Accordingly, the contact pads (e.g., contact pad A (131-5), contact pad B (106-5)) in the edge connection component A (131-1) and the connector footprint region B (106-2) are in contact with the connector pins of the edge connector (105) to maintain electrical connection.
In one or more embodiments, the rigid circuit board (106) is inserted in-between two parallel rows of connector pins of the edge connector (106). When viewed in a side view as depicted in
Although
Initially, in Step 201, conductive material of a rigid circuit board is excluded from a portion of a connector footprint region of the rigid circuit board. In one or more embodiments, conductive material within the portion of the connector footprint region is removed (e.g., etched away) during fabrication of the rigid circuit board. The portion of the connector footprint region without conductive material is referred to as the exclusion region.
In Step 202, the connector footprint region of the rigid circuit board is mechanically coupled to a number of connector pins of a connector. In one or more embodiments, the connector footprint region is aligned to the number of connectors and held mechanically stable with respect to the connector. For example, the mechanical coupling may be held stable by way of soldering joints or a mechanical retention mechanism. In one or more embodiments, the connector is an edge connector having two parallel rows of connector pins. In such embodiments, the connector footprint region is mechanically coupled to the connector pins by inserting the rigid circuit board in-between the two parallel rows of the connector pins. In one or more embodiments, available contact pads, outside of the exclusion region, in the connector footprint region are soldered to corresponding connector pins. In one or more embodiments, the rigid circuit board and the edge connector are held mechanically stable by the mechanical retention mechanism in a repeatable insertion operation.
In Step 203, an alignment component of the flexible cable is aligned to the rigid circuit board to facilitate electrical connection between the flexible cable and at least one connector pin of the edge connector. In one or more embodiments, the alignment component of the flexible cable is aligned to a corresponding alignment component of the rigid circuit board.
In Step 204, the flexible cable is inserted in-between the exclusion region of the rigid circuit board and at least a portion of the connector pins. In one or more embodiments, an edge connection component disposed on an edge of the flexible cable is inserted in-between the exclusion region and the at least one connector pin.
In Step 205, the flexible cable is mechanically supported by at least the exclusion region to facilitate electrical connection between the edge connection component and the at least one connector pin. In one or more embodiments, the connector housing of the edge connector and the rigid circuit board collectively press the flexible cable against the portion of connector pins in the exclusion region.
In Step 206, in response to the mechanically coupling of the rigid circuit board to the edge connector and the inserting of the flexible cable, the edge connection component of the flexible cable is electrically connected to the at least one connector pin. For example, the electrical connection may be established using a soldering operation or a repeatable insertion operation.
In Step 207, an optoelectronic component on a separate circuit assembly is electrically connected to the at least one connector pin using the flexible cable. In particular, the two circuit assemblies are connected using edge connection components disposed on two opposite ends of the flexible cable. Accordingly, the optoelectronic component is electrically connected to the at least one connector pin via the edge connection components and an intervening conducting trace in the flexible cable. In particular, the intervening conducting trace connects to the at least one connector pin via the edge connection component that is inserted, in Step 204 above, in-between the exclusion region and the at least one connector pin.
Using the flexible cable (304) in the manner described above replaces PCB-to-PCB RF connectors for connecting separate circuit assemblies within a pluggable module (e.g., pluggable module (101) depicted in
While the invention has been described with respect to a limited number of embodiments, those skilled in the art, having benefit of this disclosure, will appreciate that other embodiments can be devised which do not depart from the scope of the invention as disclosed herein. Accordingly, the scope of the invention should be limited only by the attached claims.
Number | Name | Date | Kind |
---|---|---|---|
5040997 | Garner | Aug 1991 | A |
5360353 | Kinoshita | Nov 1994 | A |
20090088007 | Tsai | Apr 2009 | A1 |