Abstract:
An electrical connector is provided. The electrical connector includes a substrate and an elastomeric element extending outwardly from the substrate. The elastomeric element extends outwardly from a base portion thereof at the substrate to an end portion thereof that is opposite the base portion. An electrical contact engages an electrically conductive element of the substrate. The electrical contact has a portion extending over at least a portion of the end portion of the elastomeric element.
Abstract:
A receptacle assembly for an electrical connector is provided. The assembly includes a housing, a plurality of electrical contacts and a shield. The housing includes a mating end and a mounting end that are orthogonal to each other. The mating end of the housing is elongated along a longitudinal axis of the housing. The electrical contacts are held by the housing and extend between a mating end presented at the mating end of the housing and a mounting end configured to be mounted to a circuit board. The shield has a mating interface elongated along a longitudinal axis. The shield is configured to receive the electrical connector. The housing and the contacts are located within the shield. The longitudinal axes of the housing and the mating interface are orthogonal to the circuit board.
Abstract:
An electrical connector includes a dielectric housing having a tongue including an upper surface, a lower surface, and opposite side surfaces. A plurality of signal contacts are held by the housing and are exposed along the upper surface. At least one power contact is held by the housing and is exposed along one of the opposite side surfaces. Optionally, the tongue and signal contacts define an eSATA mating interface configured for mating with a plug of a serial cable defining an eSATA plug interface.
Abstract:
A shielded electrical connector includes an insulative housing having a receptacle therein. A shield is mounted on the housing. The shield has a protrusion formed thereon that is received in the receptacle. The protrusion engages a surface on the housing to minimize relative motion between the shield and the housing. The shield includes a shroud and the protrusion is located on the shroud. The receptacle is located proximate a mating end of the housing. The shield includes a mounting tab for mounting the connector to a panel.
Abstract:
A bifurcated conductive pad positioned on an electrical mating component, such as a circuit card, a contact portion of a cable assembly, or the like, having a main body and a mating edge. The bifurcated conductive pad receives a mating element having a built-up charge. The conductive pad comprises an initial contact portion and a final contact portion. The initial contact portion is configured to receive the mating element before the final contact portion receives the mating element, and wherein at least one of the initial and final contact portions is grounded so that the final contact portion receives a reduced amount of the built-up charge.
Abstract:
An electrical connector receptacle cage is provided including upper and lower shells. The upper and lower shells are joined to one another to define a module retention chamber with an open front end configured to accept a module. At least one of the shells has a rear wall closing the back end of the module retention chamber, and side walls extending between the front and back ends. The upper shell comprises a top wall extending between the front and back ends including a flexible section formed proximate the back end. A kickout spring is joined to the flexible section, and has a module engaging section extending into the module retention chamber toward the front end which is configured to contact and exert an ejection force on the module when the module is inserted into the module retention chamber.
Abstract:
A connector housing 10 is mountable to a circuit board along a board-mounting face 18, and a mounting bracket 40 is secured around side walls 12 and upper wall 14 with mounting feet 46 extending outwardly from the housing parallel to board-mounting face 18 for being soldered to the circuit board, eliminating the need for mounting holes through the circuit board. Projections 28 of side walls 12 extend outwardly through slots 48 of vertical leg sections 44 of bracket 40 and lances 52 extend from slot edges 50 bite into projections 28 to secure the bracket assuredly to housing 10.
Abstract:
A power connector including a connector housing having an interior cavity and a mating face. The connector housing is configured to be mounted to a circuit board. The power connector also includes a contact assembly that has anode and cathode contacts that are configured to electrically engage power contacts of a mating connector. The contact assembly also includes anode and cathode terminals that are disposed in the interior cavity. The anode and cathode terminals are electrically coupled to the anode and cathode contacts, respectively, and are configured to be electrically coupled to the circuit board. The power connector also includes a power cable that has substantially flat anode and cathode conductive layers that are surrounded by an insulative jacket. The anode and cathode conductive layers are electrically coupled to the anode and cathode contacts, respectively, and are electrically parallel to the anode and cathode terminals, respectively.
Abstract:
A connector configured to communicatively couple different components. The connector includes a base frame that extends along a longitudinal axis between a pair of frame ends and first and second moveable mating arrays having mating surfaces with terminals arranged thereon. The connector also includes a coupling mechanism that is supported by the base frame. The coupling mechanism holds the first and second mating arrays so that the mating surfaces of the first and second mating arrays extend along the longitudinal axis. The coupling mechanism moves the first and second mating arrays along different mating directions with respect to select components. The coupling mechanism moves the first and second mating arrays between retracted and engaged positions, wherein the corresponding mating array is spaced apart from the select component in the retracted position and engaged to the select component in the engaged position.
Abstract:
A connector assembly that includes a base frame that extends along a longitudinal axis between a pair of frame ends. The connector assembly also includes a moveable mating side that is supported by the base frame and extends in a longitudinal direction along the longitudinal axis. The mating side has a mating array of terminals configured to communicate data signals. The connector assembly also includes a power connector that is configured to establish an electrical connection. The power connector is coupled to the mating side. Also, the connector assembly includes a coupling mechanism that is supported by the base frame and is operatively coupled to the mating side. The coupling mechanism is configured to be actuated to move the mating side between retracted and engaged positions in a mating direction with respect to the longitudinal axis.