Abstract:
An optical signal emitter includes a transmitting lens; a lens supporting portion, extending from an edge of the transmitting lens to defined a containing space surrounded by the transmitting lens and the lens supporting portion; a lens carrier, for carrying the transmitting lens and the lens supporting portion, wherein a coupling surface is defined on the lens carrier and at least a part of the lens supporting portion is coplanar with the lens carrier with respect to the coupling surface; a light transmitter, disposed in the containing space and coaxially with the transmitting lens, so as to define an light transmission path for light passing through coupling surface by an alignment between the light transmitter and the transmitting lens; at least one engagement portion, disposed on the coupling surface; at least one magnet, disposed on the lens carrier.
Abstract:
An electrical connector has one or more body portions in which is disposed an electrical terminal having at least one contact pad interface for coupling to a contact pad of at least one printed circuit board (PCB). The body has an associated fastening device which is used to mechanically and electrically couple the electrical connector to the at least one PCB. The electrical connector may be provided with a full or partial hourglass-like shape, when viewed from the side and/or from above, to facilitate its use with a PCB that carries a source of light, such as an LED.
Abstract:
An LED screen display unit and production method therefor. The LED screen display unit comprises a circuit board (1), a driving IC (2) and LEDs (3); a first face of said circuit board (1) is provided with a contact pad matrix (41); the driving IC (2) is arranged on the circuit board (1) and is in electrical connection with contact pads (4) of said contact pad matrix (41); the pins (31) of the LEDs (3) are soldered to contact pads (4) of the contact pad matrix (41). The present display unit can ensure a higher permeability rate for LED display screens produced having high pixel density.
Abstract:
An optical connector assembly, includes: a printed circuit board including a supporting surface and a notch; a fixing portion embedded into the notch and comprising a first surface, a second surface, a lead frame and an electrical pin arranged from the fixing portion to the supporting surface to be flush with the supporting surface, a positioning slot disposed on the first surface; a joint portion comprising a first side, plural openings penetrating the first side, the joint portion extending from an edge of the first side to cover the top of the fixing portion, a positioning pin disposed on the first side; plural chips disposed on the fixing portion; plural fibers inserted through the openings. Wherein the positioning pin is engaged into the positioning slot, such that the fibers are coaxially aligned with the chips for light transmission.
Abstract:
Printed circuit boards for communications connectors are provided that include a dielectric substrate formed of a first insulative material having a first dielectric constant. First and second pairs of input terminals and first and second pairs of output terminals are provided on the dielectric substrate. A first differential transmission line electrically connect the first pair of input terminals to the first pair of output terminals, and a second differential transmission line electrically connect the second pair of input terminals to the second pair of output terminals. The dielectric substrate includes an opening that is positioned between the conductive paths of the first differential transmission line, the opening containing a second insulative material having a second dielectric constant.
Abstract:
According to one embodiment, an AC-DC converter includes a first printed wiring board, a planar transformer, a plurality of primary members, and a plurality of secondary members. The planar transformer has a primary coil, a secondary coil, a second printed wiring board and a core. The primary members are mounted on the first printed wiring board, and are electrically connected to the primary coil. The secondary members are mounted on the second printed wiring board, and are electrically connected to the secondary coil.
Abstract:
A method of manufacturing a concave connector substrate includes: a step of preparing a guide substrate having a guide/holding region that guides a plate-shaped connector to a connection position and a cut portion; a step of arranging and aligning two wiring substrates, each having wiring lines and through hole connection portions that are electrically connected to the wiring lines, with both surfaces of the guide substrate, and applying an adhesive to a predetermined region of the guide substrate to bond the wiring substrates to the guide substrate; a step of bending a portion of the wiring substrate toward the inside of the cut portion of the guide substrate and bringing the wiring lines disposed in the bent portion into pressure contact with the inside of the cut portion; and a step of removing a section inside the cut portion to form the guide/holding region.
Abstract:
A lamp includes a collar with internal and outer surfaces, where two or more connection pins extend from the internal surface of the collar. At least two connection pins have a head portion distal from the collar internal surface. The head portions include a slot. The lamp includes a light source with at least two external lead-in wires. The lead-in wires are located within respective slots and are mechanically coupled to respective surfaces of the slots in a press-fit manner which may be free of wrapping, winding, twisting, or soldering. A PCB disposed inside the lamp has two opposing surfaces and a rim between the two opposing surfaces. There are conductive surfaces disposed on at least one of the rim and one of the opposing surfaces at positions corresponding to connection pin slots. The PCB is located between connection pins with the conductive surfaces in electrical communication with the lead-in wires.
Abstract:
According to one embodiment, a television receiver includes: a housing; a display in the housing; a substrate configured to be accommodated in the housing and comprising a first opening; and a part configured to be mounted on a surface of the substrate and exhibit a square outer shape on a line of sight from a thickness direction of the substrate, wherein the substrate comprises a second opening in a first region that is sandwiched between extended lines of two sides sandwiching a corner of the part on the line of sight from the thickness direction of the substrate and is at a side opposite to the part with respect to the corner, at a position that is overlapped with a straight line connecting the corner of the part and center of the first opening on the line of sight from the thickness direction of the substrate.
Abstract:
A method and arrangement are disclosed for electrically connecting a contact of a first substrate to a contact of a second substrate, whereby the first substrate is positioned relative the second substrate. The method includes providing the first substrate with its contact facing towards the second substrate, providing the second substrate with its contact facing away from the first substrate, bonding a bonding medium to the contact of the first substrate, bonding the bonding medium to the first substrate thereby forming a loop, electrically connecting the contact of the second substrate to the bonding medium, and providing the second substrate with the contact on a nose or tongue extending from an edge of the second substrate. The first substrate can be positioned below the second substrate, with a contact of the first substrate connected to a contact of the second substrate.