Abstract:
A cable backplane system includes a backplane having a plurality of openings therethrough. A cable rack is coupled to a rear of the backplane, which includes a tray and spacers coupled to the tray that have guide pins. Cable connector assemblies are held by the tray. Removable dust caps are coupled to corresponding cable connectors each having a distal end and guide walls extending therefrom that guide mating of the cable rack with the backplane. The distal end of each dust cap is received in a corresponding opening in the backplane. The guide walls guide the cable rack relative to the backplane such that the guide pins of the spacers are aligned with guide holes of the backplane and such that the cable connectors are aligned with the openings of the backplane. The removable dust caps are removed after the cable rack is coupled to the backplane.
Abstract:
Connector adapter includes an adapter body having a mating side and a mounting side. The mating side includes signal cavities that open to the mating side. The connector adapter also includes signal conductors extending through the adapter body. Each of the signal conductors has and extends between a pin socket positioned at the mating side and a signal tail positioned at the mounting side. The pin sockets are positioned within corresponding signal cavities. Each of the pin sockets includes first and second arms that oppose each other and define a thru-hole therebetween. The first and second arms engage a signal tail of an electrical connector when the signal tail of the electrical connector is inserted into the thru-hole.
Abstract:
A cable backplane system includes a backplane having a plurality of openings extending between a front and a rear of the backplane. The backplane has mounting locations proximate the openings. Mounting blocks are coupled to the front of the backplane at corresponding mounting locations. The mounting blocks are secured to the backplane by fasteners. A cable rack is coupled to the rear of the backplane and has a tray with a frame surrounding a raceway and spacers coupled to the tray. The spacers hold corresponding cable connectors and are secured to corresponding mounting blocks to position the spacers and cable connector assemblies relative to the backplane. The cable connectors are received in corresponding openings in the backplane and are held in position relative to the backplane by the spacers and mounting blocks.
Abstract:
A cable backplane system includes a backplane and a chassis supporting the backplane. A cable rack is coupled to the chassis and backplane. The cable rack includes upper trays and lower trays each having a frame and cable connector assemblies held by the corresponding frame. The upper trays have upper tray guides configured to interact with corresponding upper chassis guides on the upper support for supporting the upper trays relative to the backplane. The lower trays have lower tray guides configured to interact with corresponding lower chassis guides on the lower support for aligning the lower trays to the backplane. The upper trays have upper hanging guides and the lower trays have lower hanging guides coupled to corresponding upper hanging guides to support the lower trays with the corresponding upper trays relative to the backplane.
Abstract:
A cable backplane system includes a backplane having a plurality of openings therethrough and a plurality of mounting blocks. A cable rack is coupled to a rear of the backplane and includes a tray having a frame surrounding a raceway. Spacers are coupled to the tray that are secured to corresponding mounting blocks to position the spacers relative to the backplane. Cable connector assemblies are held by the tray. Each cable connector assembly has a plurality of cables extending between at least two cable connectors. The cables are routed in the raceway. Each cable connector assembly is positioned between and supported by corresponding spacers on opposite sides of the cable connector assemblies. The spacers allow limited movement of the cable connectors in at least two directions to allow alignment of the cable connectors within corresponding openings in the backplane.
Abstract:
Electrical connector including a connector body having a mating side with a communication array of signal and ground contacts and first and second mounting sides with respective mounting arrays of signal and ground contacts. Each of the first and second mounting sides is configured to be mounted to a corresponding circuit board. The connector body includes signal and ground conductors that extend through the connector body and communicatively couple the communication array to each of the mounting arrays. The mating side faces along a mating axis and the first and second mounting sides face in opposite directions along a mounting axis. The mating and mounting axes are perpendicular to each other.
Abstract:
A cable backplane system includes a backplane having a plurality of openings therethrough and a cable rack coupled to a rear of the backplane. The cable rack includes a tray having a frame surrounding a raceway and a brick held by the tray. The brick has side spacers at opposite sides of the brick and plates coupled to the side spacers that support a plurality of cable connector assemblies. Each cable connector assembly is positioned between and supported by corresponding plates on opposite sides of the cable connectors with the cable connectors positioned in corresponding openings in the backplane. The plates each include a hem folded over at a rear of the plate. The hem has an edge positioned rearward of the cable connectors and supporting the cable connectors from retreating from the openings in the backplane.
Abstract:
Daughter card assembly including a circuit board and leading and trailing connectors mounted to the circuit board. The leading and trailing connectors have mating ends that face in different directions along a board plane. The daughter card assembly also includes a support wall that is coupled to the circuit board and extends orthogonal to the circuit board. The support wall has a wall opening therethrough. The trailing connector is positioned on the circuit board such that the mating end substantially aligns with the wall opening. The daughter card assembly also includes a retention shroud that projects from an exterior surface of the support wall. The retention shroud defines a shroud passage that aligns with the wall opening. The shroud and wall openings form a receiving passage for receiving at least one of the trailing connector or a corresponding cable connector that mates with the trailing connector.
Abstract:
A cable backplane system includes a backplane having board areas surrounding a connector opening with holes in the board areas along the connector opening. Stiffeners are coupled to corresponding board areas along a front of the backplane. The stiffeners have bores aligned with corresponding holes in the backplane. A cable rack is coupled to the rear of the backplane. The cable rack has a tray with a frame surrounding a raceway and spacers coupled to the tray that hold corresponding cable connectors. The spacers have guide pins extending therefrom that pass through the holes in the backplane into corresponding bores in the stiffeners to position the spacers relative to the stiffeners and the backplane. The cable connectors are received in the connector opening in the backplane and held in position relative to the backplane by the spacers and stiffeners.
Abstract:
A cable backplane system includes a backplane having a plurality of openings and mounting locations with guide holes and a datum surface. A cable rack is coupled to the backplane. The cable rack includes a tray having a frame and spacer assemblies coupled to the tray. The spacer assemblies are coupled to the backplane at corresponding mounting locations. Each spacer assembly has a floating spacer and a spring pressing the floating spacer in a biasing direction. The floating spacer is allowed to float relative to the frame in the biasing direction. The floating spacer has a guide pin extending from a front thereof. The spring presses the floating spacer in the biasing direction such that the guide pin is received in the guide hole and the front of the floating spacer abuts against the datum surface.