Abstract:
The present invention is related to a keyboard having a key-in area integrated with a touch sensor device and a method thereof by providing at least one touch sensor device at a key location within the key-in area of a keyboard main body, and electrically connecting the touch sensor device to the keyboard main body to transmit a signal via the keyboard main body. With the method of integrating a key-in area of a keyboard with a touch sensor device provided by the present invention, the keyboard and the pointing device can be integrated altogether as one such that the operation and control efficiency thereof is advantageously enhanced and is adapted for various application environments and practical usages.
Abstract:
An insulating film includes a first polymer layer, a second polymer layer and an electromagnetic shielding layer sandwiched between the first polymer layer and the second polymer layer. The electromagnetic shielding layer includes a number of carbon nanotube films that are substantially parallel to the first and second polymer layer. Each of the carbon nanotube films includes a number of carbon nanotubes that are substantially parallel to each other. The insulating film can provide anti-EMI effect in printed circuit boards without employing additional electromagnetic shielding layers.
Abstract:
A printed circuit board substrate includes an insulation matrix and a waterproof layer. The insulation matrix includes a first surface and a second surface at an opposite side thereof to the first surface. The waterproof layer is formed in the insulation matrix and is arranged between the first surface and the second surface for blocking water from passing therethrough in a thicknesswise direction of the insulation matrix.
Abstract:
An exemplary method for manufacturing a printed circuit board is provided. In the method, firstly, a circuit substrate having a substrate and a number of soldering pads is provided. Secondly, a protective layer is formed onto the circuit substrate in a manner such that the soldering pads are entirely covered by the protective layer. Fourthly, a laser beam is applied onto portions of the protective layer spatially corresponding to the soldering pads in a manner such that the portions of the protective layer is removed, thereby exposing the soldering pads to an exterior. A printed circuit board having a protective layer with high precision of resolution is also provided.
Abstract:
An exemplary surface mounted electronic component has block body including a bottom soldering surface, a top surface and a peripheral wall having a first peripheral wall portion and a second peripheral wall portion. The bottom soldering surface defines a first soldering area and a second soldering area. The first peripheral wall portion adjoins the first soldering area and has at least a first cutout defined between the first peripheral wall portion and the first soldering area. The second peripheral wall portion adjoins the second soldering area and has at least a second cutout defined between the second peripheral wall portion and the second soldering area. When the surface mounted electronic component is soldered, the melting solder can climb up the cutouts of the sidewall due to capillary effect and ‘chimney effect’, thereby avoiding ‘tombstoning’.
Abstract:
An exemplary method for forming stacked via-holes in a multilayer printed circuit board includes the steps of: providing a base circuit board; attaching a first copper-coated-substrate having a first substrate and a first copper layer thereon and a second copper-coated-substrate having a second substrate and a second copper layer thereon onto the base circuit board in a manner such that; forming at least one first window in the second copper layer, making at least one first hole in the second substrate through the at least one first window, forming at least one second window in the first copper layer through the at least one first hole, and making at least one second hole in the first substrate though the at least one second window, thus forming at least one part-finished stacked via-hole; and plating the at least one part-finished stacked via-hole thereby forming at least one stacked via-hole.
Abstract:
A method for manufacturing a printed circuit board (PCB) having different thicknesses in different areas includes: providing a first substrate having two lateral unwanted portions bounded two imaginary boundary lines, a binder layer having a through opening and a second substrate having a mounting area for mounting electronic elements; forming two slots bounded the imaginary boundary lines in an intermediated unwanted portion of the first substrate corresponding to the mounting area; laminating the first and second substrates, and the binder layer with the mounting area exposed via the through opening; filling the two slots and the through opening with a filling material, thereby obtaining a semifinished PCB board; cutting the semifinished PCB board along the imaginary boundary lines to remove the two lateral unwanted portions and a portion of the second substrate corresponding to the two lateral unwanted portions; and removing the intermediate unwanted portion and the filling material.
Abstract:
The present inventions relates to a method for manufacturing a multilayer FPCB. The method includes the steps of providing three copper clad laminates and two binder layers, each of the copper clad laminates includes a dielectric layer and at least one patterned conductive layer formed on the dielectric layer; stacking the copper clad laminates and the binder layers alternately one on another; aligning the copper clad laminates and the binder layers; and compressing the copper clad laminates and the binder layers together thereby obtaining a multilayer flexible printed circuit board.
Abstract:
An apparatus (100) for spraying an etchant solution on a preformed printed circuit board (30) includes a number of feed pipes (40) for supplying the etchant solution and a number of nozzles (45) mounted on the feed pipes. Each of the feed pipes has a middle portion (402) and two end portions (401). The middle portions of the feed pipes are located on a first plane and the end portions of the feed pipes are located on a second plane parallel to the first plane. The number of nozzles are mounted on the middle portion and the two end portions of each feed pipe. The number of nozzles are in fluid communication with the feed pipes.
Abstract:
An electromagnetic shielding composite includes a polymer and a carbon nanotube film structure. The carbon nanotube structure includes a number of carbon nanotubes disposed in the polymer. The number of carbon nanotubes are parallel with each other.