Embodiments of the invention are better understood with reference to the following drawings. The elements of the drawings are not necessarily to scale relative to each other. Like reference numerals designate corresponding similar parts.
In the following detailed description, reference is made to the accompanying drawings, which form a part hereof, and in which is shown by way of illustration specific embodiments in which the invention may be practiced. The illustrated embodiments are not intended to be exhaustive of all embodiments according to the invention. It is to be understood that other embodiments may be utilized and structural or logical changes may be made without departing from the scope of the present invention. The following detailed description, therefore, is not to be taken in a limiting sense, and the scope of the present invention is defined by the appended claims.
Referring to
As best seen in
Terminals 40 each include an upwardly extending base section 44 having a contact tail 46 for electrically coupling terminals 40 to one or more of a plurality of signal and ground traces and planes of the motherboard 14 (
The contact beam 48 is shaped to provide a contact section 54 between proximal end 50 and free distal end 52. Contact section 54 extends into slot 18 to engage one of conductive surfaces 22 on opposite sides of daughtercard 12 when daughtercard 12 is inserted into slot 18 in the direction of arrow 56. In one embodiment, contact section 54 comprises a curved portion of contact beam 48 that extends toward slot 18 in a direction substantially transverse to the insertion direction (e.g., substantially transverse to the direction of arrow 56) of daughtercard 12.
Because free distal end 52 of beam 48 extends substantially toward mother board 14, rather than away from mother board 14, it is possible to minimize the distance between the contact section 54 of contact beam 48 and the surface of mother board 16 (i.e., the contact distance 58), and also minimize the distance between bottom edge 34 of daughtercard 12 and the surface of mother board 14 (i.e., the seating distance 59). Minimizing the contact distance and seating distance allows the socket 10 and daughtercard 12 to be contained in a smaller space, or allows a larger daughtercard 12 (with additional circuitry, components, etc.) to be used in the available space. In one embodiment, the seating distance 59 is less than about 3 mm. In another embodiment, the seating distance 59 is less than about 1.5 mm.
As best seen in
As daughtercard 12 is inserted into slot 18 of socket 10 in the direction of arrow 56, bottom edge 34 and then conductive surfaces 22 of daughtercard 12 engage contact sections 54 of terminals 40. As they are displaced, contact beams 48 apply a force normal to daughtercard 12. During insertion of daughtercard 12, friction forces between contact sections 54 and daughtercard 12 will also tend to urge contact sections 54 in the insertion direction of arrow 56. Accordingly, free distal ends 52 of contact beams 48 are also moved generally in the insertion direction toward the surface of motherboard 14, such that tip capture portions 60 remain free of engagement with housing 16. Insertion of daughtercard 12 is halted when bottom edge 34 of daughtercard 12 engages bottom surface 32 of slot 18.
To align conductive surfaces 22 on daughtercard 12 with terminals 40 of socket 10, socket 10 and daughtercard 12 can be provided with alignment or guided means as are known in the art. For example, a side edge 64 of daughtercard 12 may be biased against one of first and second ends 24, 26 of slot 18.
Referring now to
The reduced normal force between contact section 54 and daughtercard 12 advantageously reduces the force required to withdraw daughtercard 12, and further reduces the possibility of damage to terminal 40. In the absence of tip capture portion 60, friction force F may be sufficient to buckle or otherwise permanently deform terminal 40, thereby rendering socket 10 and potentially motherboard 14 useless.
It is understood that various other terminal configurations may be used in accordance with the present invention. In other words, the present invention is not limited by the specific configuration of terminals 40 shown in
Another embodiment of a terminal 40′ is illustrated in
The contact beam 48′ is shaped to provide a contact section 54′ between proximal end 50′ and free distal end 52′. Contact section 54′ extends into slot 18′ to engage one of conductive surfaces 22 on opposite sides of daughtercard 12 when daughtercard 12 is inserted into slot 18′ in the direction of arrow 56′. In one embodiment, contact section 54′ comprises a curved portion of contact beam 48′ that extends toward slot 18′ in a direction substantially transverse to the insertion direction (e.g., substantially transverse to the direction of arrow 56′) of daughtercard 12. In one embodiment, free distal end 52′ of contact beam 48′ is provided with a tip capture portion 60′ that functions as described above with respect to tip capture portion 60 of contact beam 48.
For purposes of clarity, the invention is described and illustrated herein as used with printed circuit boards. However, such illustration is exemplary only, and it is understood and intended that the present invention is equally suitable for use with other types of printed circuits including, but not limited to, flexible circuits. It is further understood and intended that different types and configurations of printed circuits may be used simultaneously with the connector assembly 10. For example, the daughtercard may be a printed circuit board, with the motherboard may be a flexible printed circuit.
The electrical connector and terminals thereof are connected to the printed circuit board as is known in the art. The terminals are configured for electrical connection to one or more of a plurality of signal and ground traces and planes of the printed circuit board. Further, although the electrical connector is shown and described herein as a through-hole connector, the connector may also be a surface-mount connector as known in the art. The terminals of the connector may be connected to the printed circuit board by soldering, press fit, or any other suitable means. In one embodiment, the connector is secured to the printed circuit board only by the connection between the terminals and the printed circuit board. In another embodiment, the connector housing includes additional means for securing the connector to the circuit board. For example, the connector housing may include posts configured for insertion into holes (not shown) in the printed circuit board. The posts may be retained in holes in the circuit board by press fit, adhesive, or other suitable means.
In one embodiment, the connector 10 further includes latch means 80 configured to retain the connector 10 and daughtercard 12 in a mated configuration. In one embodiment, the connector 10 further includes ejector means 90 configured to eject the daughtercard 12 from the connector 10. In one embodiment, latch means 80 and ejector means 90 may be operationally joined. For example, disengagement of a lever 82 may disengage latch means 80 and activate ejector means 90. In one embodiment, the connector and daughtercard further include keying and/or polarization means 100 configured to prevent incorrect alignment of connector 10 and daughtercard 12.
In each of the embodiments and implementations described herein, the various components of the connector assembly and elements thereof are formed of any suitable material. The materials are selected depending upon the intended application and may include both polymers and metals. In one embodiment, the connector housing is formed of polymeric materials by methods such as injection molding, extrusion, casting, machining, and the like, while the electrically conductive components are formed of metal by methods such as molding, casting, stamping, machining the like. Material selection will depend upon factors including, but not limited to, chemical exposure conditions, environmental exposure conditions including temperature and humidity conditions, flame-retardancy requirements, material strength, and rigidity, to name a few.
Although specific embodiments have been illustrated and described herein for purposes of description of the preferred embodiment, it will be appreciated by those of ordinary skill in the art that a wide variety of alternate or equivalent implementations may be substituted for the specific embodiments shown and described without departing from the scope of the present invention. Those with skill in the art will readily appreciate that the present invention may be implemented in a very wide variety of embodiments. This application is intended to cover any adaptations or variations of the embodiments discussed herein. Therefore, it is manifestly intended that this invention be limited only by the claims and the equivalents thereof.
The present application claims priority to U.S. provisional Patent Application 60/813,620, filed Apr. 11, 2006.
Number | Date | Country | |
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60813620 | Apr 2006 | US |