The invention relates generally to sockets for retaining card edge memory modules and, more particularly, to a high reliability socket for memory modules.
Computers and servers may use numerous types of electronic modules, such as processor and memory modules (e.g. Dynamic Random Access Memory (DRAM), Synchronous Dynamic Random Access Memory (SDRAM), or Extended Data Out Random Access Memory (EDO RAM), an the like). The modules are produced in a number of formats such as, for example, Single In-line Memory Modules (SIMM's), or the newer Dual In-line Memory Modules (DIMM's) and Fully Buffered DIMM's.
Typically, the modules are installed in one or more multi-pin sockets mounted on a system board or motherboard. Each module has a card edge that provides an interface generally between two rows of contacts in the socket. Conventionally, the card edge interface is a separable card edge interface. These card edge interfaces, however, are generally not high reliability interfaces and therefore do not meet requirements for some high end server applications. For example, card edge interfaces may fail when subjected to shock and vibration which may occur, for instance, during shipping, loading and unloading. End wall towers and latching mechanisms on the sockets are particularly susceptible to failure from vibration. Further, high insertion forces and mating forces can deflect the card sufficiently to damage components on the card.
One commonly used approach for increasing reliability is to directly attach the module via an inseparable interface. This is sometimes done when it is desirable that the end user not be able to remove processors or memory modules from the system so that problems that might arise from reconfiguration of the system do not occur. The provision of a high reliability interface that meets the requirements for high end systems and applications remains difficult.
In one aspect, a socket connector for connecting a card edge module to a circuit board is provided. The socket connector includes a base extending along a longitudinal axis between opposed ends. The base includes a mounting face configured to be received on the circuit board. Support towers are integrally formed with the base and located at the opposite ends of the base. The support towers extend upward from the base away from the mounting face. Each of the base and the towers includes open sided mating surfaces that collectively define a mating plane. The open sided mating surfaces are configured to receive the card edge module from a lateral direction with respect to the mating plane when the card edge module is loaded into the connector. Electrical contacts are held in the base. The contacts have mating ends extending laterally from the open-sided mating surface of the base. The contacts have mounting ends that extend from the mounting face.
Optionally, the open-sided mating surface of the base is defined by an alignment plate having a vertical wall joined with a bottom ledge. The bottom ledge is configured to receive an edge of the card edge module. The base includes a recess and an alignment plate received in the recess. The alignment plate includes a vertical wall. The vertical wall includes the open sided mating surface of the base. The base includes a plurality of transverse slots formed along the longitudinal axis. The slots receive a portion of the electrical contacts. The contacts are arranged in pairs in first and second contact rows. The contacts of each pair are substantially equal in length such that the socket connector is substantially skewless.
In another aspect, a card edge module assembly is provided that includes a card edge module including a substrate having a mating edge and a plurality of electrical traces. Each electrical trace terminates at a respective contact aperture at the mating edge. A socket connector includes a base extending along a longitudinal axis between opposed ends. The base includes a mounting face configured to be received on the circuit board. Support towers are integrally formed with the base and located at the opposed ends of the base. The support towers extend upward from the base away from the mounting face. Each of the base and the towers include open sided mating surfaces that collectively define a mating plane. The open sided mating surfaces are configured to receive the card edge module from a lateral direction with respect to the mating plane when the card edge module is loaded into the connector.
The module 110 includes a substantially planar substrate 116 that has a mating edge 118 and a plurality of electrical traces, each of which terminates at a respective plated contact aperture 120 in the mating edge 118. The substrate 116 may also include surface mounted components generally represented at 124. The socket connector 112 defines a mating plane or retention plane P for the electronic module 110. The electronic module 110 is loaded into the socket connector 112 from a lateral direction as indicated by the arrow A which, in one embodiment, is substantially perpendicular to the plane P.
The socket connector 112 holds electrical contacts 130 that have mating ends 132 and mounting ends 134. Mating ends 132 extend laterally from the socket connector 112 in a direction parallel to the arrow A. The contact mating ends 132 are received in the contact apertures 120 in the substrate 116 when the electronic module 110 is loaded into the socket connector 112. In an exemplary embodiment, the contact mating ends 132 are soldered in contact apertures 120. In this manner, a separable interface is eliminated and the reliability of the card edge module assembly 100 is enhanced. The socket connector 112 also includes staking posts 136 that are received in staking post apertures 138 in the substrate 116. The staking posts 136 are ultrasonically welded to further retain the electronic module 110 in the socket connector 112 in a non-separable manner.
The mounting ends 134 of the electrical contacts 130 are configured to be received in contact apertures 140 in the circuit board 102. The contact apertures 140 include pairs of contacts arranged in first and second rows 142 and 144, respectively. The contact mounting ends 134 are arranged in a complementary pattern that such that the mounting ends 134 are received in the apertures 140 when the card edge module assembly 100 is mounted on the circuit board 102. Board locks 150 are provided on the connector 112 that are received in plated through holes 152 in the circuit board 102 to lock the card edge module assembly 100 to the circuit board 102. In an exemplary embodiment, the contact mounting ends 134 and the broad locks 150 are soldered to the circuit board 102.
One of the staking posts 136 is provided on each supporting tower 162 proximate an upper end 196. A board lock 150 (
The embodiments thus described provide a high reliability module socket having no separable interface. Attachment of the module to the socket is through-hole soldered connections. Thus, clamping forces required in contact pads in card edge connector applications are eliminated. The module is loaded into the socket in a horizontal direction which eliminates the need for downward insertion forces which minimizes the risk of damaging components on the module. The socket includes extended towers at the ends of the module along with staking posts that provide improved reliability when subjected to shock and vibration. The socket is compatible with fully buffered electrical requirements. Optionally, the socket may be used with card type modules other than memory modules. For example, the socket may receive a daughter card or mother board containing a variety of circuit components, each of which is encompassed within the term module as used herein.
While the invention has been described in terms of various specific embodiments, those skilled in the art will recognize that the invention can be practiced with modification within the spirit and scope of the claims.
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