Abstract:
The present invention provides a light emitting diode (LED) circuit board with a multi-directional electrical connection. The board includes a board body with a surface and an assembly plane as well as four sides and corresponding corners, and a plurality of positive and negative electric contacts, separately arranged onto the surface of the board body nearby four sides, and also arranged at intervals. The circuit of the LED circuit board is simplified, helping to facilitate multi-directional electrical connection and expansion, and to improve significantly the paving efficiency of the LED circuit board with better practicability and industrial benefits.
Abstract:
A capacitor includes a dielectric substrate and a large number of filamentous conductors formed to penetrate through the dielectric substrate in a thickness direction thereof. An electrode is connected to only respective one ends of a plurality of filamentous conductors constituting one of groups each composed of a plurality of filamentous conductors. The electrode is disposed in at least one position on each of both surfaces of the dielectric substrate, or in at least two positions on one of the surfaces. Further, an insulating layer is formed on each of both surfaces of the dielectric substrate so as to cover regions between the electrodes, and a conductor layer is formed on the corresponding insulating layer integrally with a desired number of electrodes.
Abstract:
In a semiconductor device, a substrate includes a plurality of line conductors which penetrate the substrate from a top surface to a bottom surface of the substrate. A semiconductor chip is secured in a hole of the substrate. A first insulating layer is formed on the top surfaces of the substrate and the semiconductor chip. A first wiring layer is formed on the first insulating layer and electrically connected via through holes of the first insulating layer to the semiconductor chip and some line conductors exposed to one of the through holes. A second insulating layer is formed on the bottom surfaces of the substrate and the semiconductor chip. A second wiring layer is formed on the second insulating layer and electrically connected via a through hole of the second insulating layer to some line conductors exposed to the through hole.
Abstract:
A wiring board includes a core substrate having a structure including an insulating base material and a large number of filamentous conductors densely provided in the insulating base material and piercing the insulating base material in a thickness direction thereof. Pads made of portions of wiring layers are oppositely disposed on both surfaces of the core substrate and electrically connected to opposite ends of a plurality of filamentous conductors in such a manner that the pads share the filamentous conductors. A wiring connection between one surface side and the other surface side of the core substrate is made through the pads. The insulating base material is made of an inorganic dielectric. Pads made of portions of the wiring layers are disposed on both surfaces of the core substrate and electrically connected only to corresponding one end sides of different groups each formed of a plurality of filamentous conductors.
Abstract:
A system, method, and device for applying conductive bonding material to a substrate are disclosed. The method includes providing conductive bonding material in a plurality of cavities of a mold. A total number of cavities in the plurality of cavities being greater than a total number of at least one conductive pad of a circuit supporting substrate corresponding to the mold. The conductive bonding material in the mold is heated to a reflow temperature of the conductive bonding material. At least one wettable surface is placed in substantial contact with the heated conductive bonding material in at least one cavity. The mold and the corresponding circuit supporting substrate are brought in close proximity to each other such that the heated conductive bonding material in at least one cavity comes in contact with at least one conductive pad of the corresponding circuit supporting substrate.
Abstract:
A standardized or partial standardized circuit board core comprises at least a dielectric core layer and a plurality of conductive posts, in which the dielectric layer has a first surface and a related second surface. The conductive posts pass through the dielectric core layer and connect to the first and second surfaces of the dielectric layer respectively. The conductive posts are array arranged or arranged in a constant distance form in the dielectric core layer. Moreover, the standardized or partial standardized circuit board core further includes two conductive layers, which are covered on the first and second surfaces of the dielectric core layer.
Abstract:
The present invention is directed to an apparatus and method for connecting integrated circuits placed on opposite sides of a circuit board through utilization of conduction elements embedded in the circuit board and extending from one surface of the board to the other. Conductive traces extend along the surface of the circuit board from the conduction elements to the integrated circuits. The conductive traces may be formed from multiple conductive layers.
Abstract:
A universal attach manufacturing process employs a boat onto which solder balls or columns are loaded. A universal attach line has a number of attach station to accommodate different types of attach processes. Depending on the process and the desired configuration and form factor of the array of solder balls or columns, a template is selected that covers some of the holes in the universal boat, and exposes other holes. The solder balls or columns are held securely in the exposed holes, and a substrate is placed onto the solder balls. Once loaded with balls or columns, the universal boat is transported to only the appropriate attach stations in the universal attach line, where the different attach operations for a given attach process, such as high temperature ball attach, eutectic ball attach, or column attach, are performed.
Abstract:
A transparent plastic solder strip being provided with a plurality of solder holes for each accommodating an amount of solder paste therein. These solder holes have a very small diameter and are uniformly and densely distributed throughout the solder strip in a specific pattern, such that a proper density of the solder hole on the solder strip is obtained to always allow sufficient number of solder holes to be covered in an applied area for sufficient amount of solder paste to be melted by laser beams and transferred from the solder strip to islands on a BGA carrier for bonding the carrier to a semiconductor device. It is no longer necessary to register the solder holes with the islands on the carrier to complete the solder transfer.
Abstract:
Disclosed is an anisotropic conductive adhesive having an adhesive layer and conductive particles individually adhered to the adhesive layer, the conductive particles being arranged in an ordered array. The size of the conductive particles is at least somewhat smaller than the thickness of the adhesive layer. Also disclosed is an anisotropic conductive adhesive having an adhesive layer, conductive particles individually adhered to the adhesive layer, and a release liner having an ordered array of dimples. The conductive particles reside in a single layer in the dimples. The anisotropic conductive adhesive is made by placing the conductive particles in an ordered array of dimples on a low adhesion surface. An adhesive layer is then laminated on top such that the conductive particles individually adhere to the adhesive layer. The anisotropic conductive adhesive may be used to electrically connect fine pitch electrodes on opposing circuit layers.