Gasket plate for a receptacle assembly of a communication system
US-9666997-B1 · May 30, 2017 · US
US10114182B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10114182-B2 |
| Application number | US-201615261295-A |
| Country | US |
| Kind code | B2 |
| Filing date | Sep 9, 2016 |
| Priority date | Sep 10, 2015 |
| Publication date | Oct 30, 2018 |
| Grant date | Oct 30, 2018 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
An electrical connector includes a heat dissipation module with a first end and a second end opposed to the first end and two receptacle connectors located at the second end. The first and second ends define a transceiver-mating direction such that, when a transceiver is inserted into the first end of the heat dissipation module in the transceiver-mating direction, the transceiver mates with one of the two receptacle connectors, and in the heat dissipation module, air flows parallel to the transceiver-mating direction between the first and second ends and flows between the two receptacle connectors.
Opening claim text (preview).
What is claimed is: 1. An electrical connector comprising: a heat dissipation module with a first end and a second end opposed to the first end; and two receptacle connectors that are located at the second end and that are vertically stacked in relation to a base substrate; wherein the first and second ends define a transceiver-mating direction such that, when a transceiver is inserted into the first end of the heat dissipation module in the transceiver-mating direction, the transceiver mates with one of the two receptacle connectors; the heat dissipation module includes a passage that extends between the first and second ends and that is located between the two receptacle connectors; and in the passage, air flows unblocked parallel to the transceiver-mating direction between the first and second ends and flows unblocked between the two receptacle connectors. 2. The electrical connector of claim 1 , wherein the two receptacle connectors each receive a card-edge of a mating transceiver. 3. The electrical connector of claim 1 , wherein the heat dissipation module includes a cage, and the cage defines two slots that extend between the first and second ends, and the air flows between the two slots. 4. The electrical connector of claim 3 , wherein only the cage is configured to be press-fit or surface mounted to the base substrate. 5. The electrical connector of claim 1 , wherein the two receptacle connectors are electrically isolated from one another. 6. The electrical connector of claim 1 , wherein the passage includes a heat sink located between the two receptacle connectors. 7. The electrical connector of claim 6 , wherein the heat sink includes an extruded metal or bent sheet metal. 8. The electrical connector of claim 6 , wherein the heat sink defines air flow paths. 9. The electrical connector of claim 6 , wherein the heat sink is mounted to the cage such that a position of the heat sink is fixed when the transceiver is mated with the one of the two receptacle connectors. 10. The electrical connector of claim 6 , wherein channels in the heat sink are no larger than one quarter of a wavelength of a dominant emitted electromagnetic interference generated, when the transceiver is mated with the electrical connector, by electrical signals transmitted and/or received by the transceiver. 11. The electrical connector of claim 6 , wherein a blower is mounted adjacent to the heat sink such that the blower directs forced air over the heat sink. 12. The electrical connector of claim 1 , wherein air flows in one or more air-flow paths in the passage between the two receptacle connectors. 13. The electrical connector of claim 1 , wherein the two receptacle connectors each comprise: a housing; high-speed and low-speed electrical contacts in the housing; high-speed cables electrically connected to the high-speed electrical contacts; and low-speed cables directly attached and electrically connected to the low-speed electrical contacts. 14. The electrical connector of claim 13 , wherein high-speed is at least 25 Gbits/sec data transmission speed. 15. The electrical connector of claim 13 , wherein low-speed is less than 25 Gbits/sec data transmission speed. 16. The electrical connector of claim 13 , further comprising a power filter electrically attached to the low-speed electrical contacts. 17. The electrical connector of claim 13 , further comprising a receptacle connector located within the housing and having an at least 25 Gbits/sec data transmission speed. 18. A rack mount including an electrical connector of claim 1 . 19. An electronics enclosure comprising one or more rack mounts of claim 18 . 20. A system comprising: a base substrate; and the electrical connector of claim 1 attached to the base substrate. 21. The electrical connector of claim 1 , wherein: the two receptacle connectors include upper and lower receptacle connectors; an upper flyover cable includes a first end connected to the upper receptacle connector; a lower flyover cable includes a first end connected to the lower receptacle connector; and the first end of the upper flyover cable is located farther away from the base substrate than the first end of the lower flyover cable. 22. The electrical connector of claim 1 , wherein the two receptacle connectors mechanically float in a direction orthogonal or substantially orthogonal to the transceiver-mating direction and do not mechanically float in a direction parallel or substantially parallel to the transceiver-mating direction. 23. The electrical connector of claim 1 , wherein distances between the two receptacle connectors and the base substrate are allowed to float. 24. The electrical connector of claim 1 , wherein one of the two receptacle connectors is devoid of press-fit or mounting tails. 25. An electrical connector system comprising: a cage with a first end and a second end opposed to the first end; and two electrical connectors that are located at the second end and that are vertically stacked in relation to a base substrate; wherein the first and second ends define a transceiver-mating direction such that when a transceiver is inserted into the first end of the cage in the transceiver-mating direction the transceiver mates with one of the two electrical connectors; the cage includes a passage that extends between the first and second ends and that is located between the two electrical connectors; and in the passage, air flows unblocked parallel to the transceiver-mating direction between the first and second ends and flows unblocked between the two electrical connectors. 26. The electrical connector system of claim 25 , wherein the cage includes press-fit tails. 27. The electrical connector system of claim 26 , further comprising cables connected to the two electrical connectors. 28. The electrical connector system of claim 25 , wherein the two electrical connectors are receptacle connectors each comprising a signal conditioner electrically connected to cables. 29. The electrical connector system of claim 25 , wherein only the cage is configured to be press-fit or surface mounted to the base substrate. 30. A system comprising: a base substrate; and the electrical connector system of claim 25 attached to the base substrate. 31. The electrical connector system of claim 25 , wherein: the two electrical connectors include upper and lower electrical connectors; an upper flyover cable includes a first end connected to the upper electrical connector; a lower flyover cable includes a first end connected to the lower electrical connector; and the first end of the upper flyover cable is located farther away from the base substrate than the first end of the lower flyover cable. 32. The electrical connector system of claim 25 , wherein the two electrical connectors mechanically float in a direction orthogonal or substantially orthogonal to the transceiver-mating direction and do not mechanically float in a direction parallel or substantially parallel to the transceiver-mating direction. 33. The electrical connector system of claim 25 , wherein distances between the two electrical connectors and the base substrate are allowed to float. 34. The electrical connector system of claim 25 , wherein o
Cooling (of instruments G12B15/00; of electric apparatus H05K7/20; of semiconductor devices H10W76/47) · CPC title
comprising arrays of active devices and fibres · CPC title
Connectors fixed to housings, casing, frames or circuit boards (G02B6/44528 takes precedence) · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.