The present invention relates to card edge connectors, particularly to a card edge connector for both securing and ejecting a daughter board.
Card edge connectors are used in computers and other electronic devices for establishing an electrical connection between a main printed circuit board (PCB) and a supporting PCB. The main PCB may be a motherboard, and the supporting PCB may be a daughter card. With the development of communication and computer technology, Dual In-line Memory Module (DIMM) cards have become more popular for use in the PC and electronics industry, and thus DIMM socket connectors mounted on a motherboard for receiving DIMM cards have been developed.
These connectors include a housing having a slot for receiving the card and electrical contacts to provide the electrical connection between the card and the motherboard. The card edge connector may include an ejector to assist in removal of the card from the connector. The ejector may also include a locking latch to secure the card. These ejectors have typically been an L-shaped lever mounted at an end of the slot. The lever pivots to provide an ejection force to the bottom of the card to assist in removal.
In prior art ejectors, the card is held in the slot by friction between the card and the housing. Environmental effects, including vibration, may cause the card to become loose within the slot, and may even cause the card to accidentally dislodge from the connector. Up to this time, no edge connector has been disclosed that provides an ejector mechanism that also securely mechanically supports the connection between the daughter card and the connector.
Therefore, there is an unmet need to provide an edge connector that includes an ejector that provides a secure mechanical retention support to a daughter card.
An edge connector for connecting a circuit card to a motherboard that includes a housing and an ejector mechanism that securely maintains the card connection to the connector is disclosed.
In a first exemplary embodiment of the invention, an edge connector is disclosed that includes a housing having a slot configured to receive a first PCB, a plurality of electrical terminals supported by the housing and extending into the slot for making electrical connection with the first PCB, and a pair of extractors rotatably attached to the housing at respective opposite ends of the slot and configured to eject the first PCB from the slot when the extractors are rotated away from the first PCB. At least one of the pair of extractors includes a latch configured to securely retain the first PCB within the slot.
The extractor further comprises a pair of side towers and a center tower, and the latch is attached to the center tower. The extractor further includes a base comprising a foot configured to apply force to the first PCB when the first PCB is ejected from the slot while the extractor is rotated away from the first PCB. The latch may be configured to apply a vertical force to the first PCB when the first PCB is secured within the slot. The base may further include a step that prohibits a first PCB having a straight edge from being inserted into the slot.
In an alternative embodiment, the extractor includes a latching side tower and a side tower, the latching side tower comprising the latch. The extractor further includes a base comprising a step configured to prohibit the first PCB from being inserted into the slot when the first PCB has a straight edge.
In another embodiment of the invention, a card edge connector is disclosed that includes a housing having a slot configured to receive a first PCB, a plurality of electrical terminals supported by the housing and extending into the slot for making an electrical connection with the first PCB, and a pair of extractors rotatably attached to the housing at respective opposite ends of the slot and configured to eject the first PCB from the slot when the extractors are rotated away from the first PCB. At least one of the extractors of the pair of extractors includes a base, a pair of side towers, and a center tower comprising a latch configured to secure the first PCB when the extractor is rotated towards the first PCB. The latch is compliant and configured to provide a positive retention force to the first PCB when the first PCB is secured in the connector by the extractor. The base comprises a step configured to prohibit the first PCB from being inserted into the slot when the first PCB has a straight edge.
In yet another embodiment of the invention, a method of securing a first PCB to a card edge connector is disclosed that includes providing a connector comprising a housing having a slot configured to receive the first PCB. The connector includes a plurality of electrical terminals supported by the housing and extending into the slot for making electrical connection with the first PCB, and a pair of extractors rotatably attached to the housing at respective opposite ends of the slot and configured to secure the first PCB within the slot when the extractors are rotated towards the first PCB. At least on of the pair of extractors comprises a latch configured to securely retain the first PCB within the slot. The method further includes inserting the first PCB having a notch into the slot and rotating the pair of extractors toward the first PCB to insert the latch of the extractor into the notch of the PCB. The method further includes rotating the extractors away from the first PCB causing the first PCB to be ejected from the slot.
An embodiment of the extractor used in the method includes a pair of side towers and a center tower, and the latch is attached to the center tower. The extractor further includes a base comprising a foot configured to apply force to the first PCB when the first PCB is ejected from the slot while the extractor is rotated away from the first PCB. The latch may be configured to apply a vertical force to the first PCB when the first PCB is secured within the slot. The base may further include a step configured to prohibit the first PCB from being inserted into the slot when the first PCB has a straight edge.
Another embodiment of the extractor used in the method includes a latching side tower and a side tower, the latching side tower comprising the latch. The extractor further includes a base comprising a step configured to prohibit the first PCB from being inserted into the slot when the first PCB has a straight edge.
Further aspects of the method and system are disclosed herein. The features as discussed above, as well as other features and advantages of the present invention will be appreciated and understood by those skilled in the art from the following detailed description and drawings.
The present invention now will be described more fully hereinafter with reference to the accompanying drawing, in which a preferred embodiment of the invention is shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete and will fully convey the scope of the invention to those skilled in the art.
Referring to
Daughter card 40 includes a printed circuit board 42 supporting circuit board components 43. The PCB 42 further supports a plurality of contact pads 44. Daughter card 40 further includes a corner notch 46 and a securing notch 48 formed into the PCB 42. The terminals 30 provide an electrical path between the contact pads 44 of the daughter card 40 and a second PCB (not shown) such as a motherboard. The extractors 20 are configured to both secure the daughter card 40 within the slot 12 and to eject the daughter card 40 from the slot 12.
The housing 10 includes a middle section 14 having a top surface 15 and a pair of end extractor supports 16 configured to receive the extractors 20. The middle section 14 defines the slot 12 in a longitudinal direction extending toward opposite ends thereof. The middle section 14 includes terminal receiving passageways 17 on the top surface 15 for receiving the conductive terminals 30.
The terminals 30 include a mating portion 32 that extends into the slot 12 for electrical connection with a corresponding contact pad 44 of the daughter card 40, a body portion (not shown) passing through the receiving passageways 17 of the housing 10, and a tail portion 34 extending beyond a bottom surface 19 of the housing 10 for electrically connecting with a motherboard (not shown).
A more detailed view of an exemplary embodiment of the extractor 20 is shown in
The step 234 may be used to prevent certain types of cards from being inserted into the connector 10 (
To fully insert and secure the daughter card 40 into the connector 1, the card 40 is inserted until the card bottom surface 642 comes into contact with the bottom surface (not shown) of the slot 12. At this point, the contact pads 44 are in electrical contact with the conductive terminal mating portions 32. The extractor 20 is then rotated forward towards the card 40 until the latch 224 is received in the notch 48 at which point the extractor 20 is in a closed position as shown in
The retention tabs 214 are configured to press inward towards the center tower 220 when the extractor 20 is rotated forward towards extractor supports 16. The squeeze tabs 212 may be pressed inward during the rotation to reduce the amount of force necessary to rotate the extractor 20 forward. The end extractor support 16 includes slots 620 that engage the retention tabs 214 when the extractor 20 is fully rotated forward into the closed position. The slots 620 prevent the extractor 20 from rotating away from the card 40 unless the tabs 212 are pressed together, disengaging the retention tabs 214 from the slots 620.
To remove the card 40 from the connector 1, the tabs 212 are pressed together and the extractor 20 is rotated outward and away from the card 40. Pressing the tabs 212 inward disengages the tabs 214 from the slots 620, allowing the extractor 20 to be outwardly rotated. During rotation, the foot 232 (shown in
An alternative exemplary embodiment of an extractor 700 is shown in
An exemplary embodiment of a card edge connector 900 having a pair of extractors 700 for connecting a daughter card 910 is shown in
A second alternative exemplary embodiment of an extractor 1000 is shown in
Extractor 1000 is provided with a step 1034 that would prohibit a straight edge PCB from being inserted into a connector using extractor 1000. Alternately, the extractor 1000 could be modified to remove the step 1034 to allow straight edge PCBs to be used. The extractor 1000 operates in a connector in a similar manner to extractor 20 of
A third alternative exemplary embodiment of an extractor 1400 is shown in
Extractor 1400 is provided with a step 1434 that would prohibit a straight edge PCB from being inserted into a connector using extractor 1400. Alternately, the extractor 1400 could be modified to remove the step 1434 to allow straight edge PCBs to be used. The extractor 1400 operates in a connector in a similar manner to extractor 20 of
While the invention has been described with reference to a preferred embodiment, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment disclosed as the best mode contemplated for carrying out this invention, but that the invention will include all embodiments falling within the scope of the appended claims.