Abstract:
A manufacturing method of a printed wiring board, including forming a plurality of electrodes on a conductive layer formed on a substrate by a plating method, forming an insulation layer on the electrodes and the conductive layer, removing the substrate from the conductive layer, patterning the conductive layer except for a resistor forming region reserved for forming a resistor, thereby forming an external connection conductive pattern, and forming a resistor in the resistor forming region such that the resistor is separated by a space from the external connection conductive pattern.
Abstract:
This invention provides a multilayer printed wiring board in which electric connectivity and functionality are obtained by improving reliability and particularly, reliability to the drop test can be improved. No corrosion resistant layer is formed on a solder pad 60B on which a component is to be mounted so as to obtain flexibility. Thus, if an impact is received from outside when a related product is dropped, the impact can be buffered so as to protect any mounted component from being removed. On the other hand, land 60A in which the corrosion resistant layer is formed is unlikely to occur contact failure even if a carbon pillar constituting an operation key makes repeated contacts.
Abstract:
A printed wiring board includes a first substrate having a recess portion and multiple conductors, a second substrate having multiple conductors and inserted in the recess portion of the first substrate such that the first substrate has a surface exposing at least a portion of a surface of the second substrate. The multiple conductors in the first substrate is electrically connected to the multiple conductors in the second substrate, and the second substrate has density of the conductors which is higher than density of the conductors of the first substrate.
Abstract:
A multilayered printed circuit board or a substrate for mounting a semiconductor device includes a semiconductor device, a first resin insulating layer accommodating the semiconductor device, a second resin insulating layer provided on the first resin insulating layer, a conductor circuit provided on the second resin insulating layer, and via holes for electrically connecting the semiconductor device to the conductor circuit, wherein the semiconductor device is accommodated in a recess provided in the first resin insulating layer, and a metal layer for placing the semiconductor device is provided on the bottom face of the recess. A multilayered printed circuit board in which the installed semiconductor device establishes electrical connection through the via holes is provided.
Abstract:
A wiring board includes a first multilayer wiring board having first conductive layers and having a surface, a second multilayer wiring board having second conductive layers and positioned such that the second multilayer wiring board has a surface facing the surface of the first multilayer wiring board, and an adhesive layer including an adhesive sheet and interposed between the first multilayer wiring board and the second multilayer wiring board such that the adhesive layer is adhering the first multilayer wiring board and the second multilayer wiring board. The first multilayer wiring board has a first pad on the surface of the first multilayer wiring board, the second multilayer wiring board has a second pad on the surface of the second multilayer wiring board, and the first pad and the second pad are positioned such that the first pad and the second pad face each other across the adhesive layer.
Abstract:
A method of manufacturing a flex-rigid wiring board includes disposing a non-flexible substrate and a flexible board side by side in the horizontal direction of the substrate and board such that an end of the substrate is positioned adjacent to an end of the board and forms boundary between the board and the substrate with respect to the end of the board, covering the boundary between the board and the substrate with an insulating layer such that the insulating layer is positioned on the board and the substrate across the boundary, forming a second conductor pattern on the insulating layer, forming a via hole which passes through the insulating layer and reaches a first conductor pattern of the board, and plating the via hole such that a via conductor connecting the first and second patterns. The flexible board includes a flexible substrate and the first pattern formed over the substrate.
Abstract:
A flex-rigid wiring board including an insulative substrate, a flexible wiring board positioned beside the insulative substrate, an insulation layer positioned over the insulative substrate and the flexible wiring board and exposing a portion of the flexible wiring board, and a wiring layer made of a conductor and formed on the insulation layer. The insulation layer has a tapered portion which becomes thinner toward an end surface of the insulation layer in the direction of the portion of the flexible wiring board exposed by the insulation layer. The wiring layer has a sloping portion formed on the tapered portion of the insulation layer.
Abstract:
A method for manufacturing a multilayer printed wiring board including forming a multilayer printed wiring board structure comprising first and second buildup portions, the first buildup portion including insulating layers, conductor layers and first viaholes electrically connecting the conductor layers through the insulation layers such that the first viaholes are formed in the insulating layers, respectively, the second buildup portion including insulating layers, conductor layers and second viaholes electrically connecting the conductor layers through the insulation layers such that the first viaholes are tapered toward the second viaholes, and the second via holes are tapered toward the first viaholes. The viaholes are formed by plating openings formed after lamination of respective ones of the insulating layers of the buildup portions, and each insulating layer in the buildup portions is about 100 μm or less in thickness.
Abstract:
A flex-rigid wiring board includes an insulative substrate, a flexible connected body positioned beside the insulative substrate and including multiple flexible wiring boards, and an insulation layer positioned over the insulative substrate and the flexible connected body and having a portion exposing a portion of the flexible connected body. The flexible wiring boards include a double-sided flexible wiring board having a conductive layer on one surface of the double-sided flexible wiring board and a conductive layer on the opposite surface of the double-sided flexible wiring board. The flexible connected body has a conductor on one side of the flexible connected body, a conductor on the opposite side of the flexible connected body, and a through-hole conductor electrically connecting the conductors of the flexible connected body. The through-hole conductor is penetrating from one side through the opposite side of the flexible wiring boards.
Abstract:
A printed wiring board including a rigid multilayer board, a first substrate having multiple conductors, and a second substrate having multiple conductors electrically connected to the conductors of the first substrate. The conductors of the second substrate have an existing density which is set higher than an existing density of the conductors of the first substrate, and the first substrate and/or the second substrate is embedded in the rigid multilayer board.