Patent classifications
H05K2201/029
SMART YARN AND METHOD FOR MANUFACTURING A YARN CONTAINING AN ELECTRONIC DEVICE
One variation of a method for producing a smart yarn includes: aligning a set of sensing elements offset along a lateral axis in a magazine, wherein each sensing element in the set of sensing elements includes a sensor, a first conductive lead extending from a first side of the sensor along a longitudinal axis perpendicular to the lateral axis, and a second conductive lead extending from a second side of the sensor opposite the first side and along the longitudinal axis; wrapping a set of fibers into a yarn within a wrapping field; feeding a leading end of a first sensing element, in the set of sensing elements, from the magazine into the wrapping field; releasing the first sensing element from the magazine into the wrapping field; encasing the first sensing element between the set of fibers within the yarn; and repeating this process for the set of sensing elements.
RADIO FREQUENCY MODULE
An adhesion between a sealing resin layer and a shield film is improved by a mesh sheet disposed on an opposite surface of the sealing resin layer. A radio frequency module includes a wiring board, a component mounted on an upper surface of the wiring board, a sealing resin layer that covers the component, a mesh sheet disposed on an upper surface of the sealing resin layer, and a shield film provided to cover the upper surface and side surfaces of the sealing resin layer, and the mesh sheet. The mesh sheet and the sealing resin layer, as well as the mesh sheet and the shield film are firmly in adhesion with one another. Thus, the adhesion between the sealing resin layer and the shield film can be improved.
Structure of phosphorous-containing functionalized poly(arylene ether), composition containing the same, and copper clad laminate
A structure of phosphorous-containing functionalized poly(arylene ether), a preparation method thereof, and a composition prepared therefrom are provided. The curable (cross-linkable) composition includes an unsaturated monomer and a phosphorous-containing functionalized poly(arylene ether) having a polymerizable group and a molecular weight between 500 and 20,000. The composition provides excellent fluidity and fast curing rate. After curing, the composition exhibits excellent low dielectric coefficient and dielectric loss, high heat resistance and flame retardancy. It is suitable for prepregs, laminated sheets for printed circuits or the like.
High temperature resistant fabric and its use in flexible circuits
Provided herein are embodiments of a PWB circuit construction material, and its use in flexible PWB circuits. The PWB circuit construction material is made up of temperature resistant fabric bonded to a metal substrate using a bonding agent. The temperature resistant material may include synthetic aromatic polyamide fibers. The fabric may be used as a reinforcement for the standard PWB construction materials for flexible PWB circuits and as a standalone piece that is bonded as a hinge at rigid portions of a rigid or rigid-flexible PWB circuit to reduce the thermal effects.
Glass cloth, prepreg and printed wiring board
A glass cloth comprising a glass yarn woven together, the glass yarn comprising multiple glass filaments, wherein an amount of B.sub.2O.sub.3 in a composition of the glass filaments is 15% by mass to 30% by mass, an amount of SiO.sub.2 in the composition thereof is 45% by mass to 60% by mass, and an amount of P.sub.2O.sub.5 in the composition thereof is 2% by mass to 8% by mass, and loss on ignition (LOI) of the glass cloth is 0.90% by mass to 2.0% by mass.
METAL-CLAD LAMINATE, PRINTED WIRING BOARD AND SEMICONDUCTOR PACKAGE
Provided are a metal-clad laminate, a printed circuit board, and a semiconductor package, wherein the warps therein are effectively suppressed. Specifically the metal-clad laminate comprises a prepreg, wherein the prepreg has a resin composition attached to a fiber base material and satisfies a following formula (1) as well as a Mowing formula (2), provided that in the formulae, a1 represents an average thickness of the resin composition after being cured which is present on one surface of the fiber base material; a2 represents an average thickness of the resin composition after being cured which is present on other surface of the fiber base material; and B represents an average thickness of the fiber base material.
0.12<{(a1+a2)/2}/B(1)
0.8a1/a21.25(2)
Prepreg, metal foil-clad laminate, and printed wiring board
A prepreg including: a thermosetting resin composition (C) containing a thermosetting resin (A) and an inorganic filler (B); and a glass cloth (D) impregnated or coated with the thermosetting resin composition (C); wherein the glass cloth (D) satisfies the following expressions (I) to (III),
(x+y)95(I)
1.9<(X+Y)/(x+y)(II)
t<20(III) wherein the glass cloth (D) is defined by X (threads/inch) representing number of warp yarn per inch; Y (threads/inch) representing number of weft yarn per inch; x (threads) representing number of filament per the warp yarn; y (threads) representing number of filament per the weft yarn; and t (m) representing a thickness, and wherein the content of the inorganic filler (B) in the thermosetting resin composition (C) is from 110 to 700 parts by mass based on 100 parts by mass of the thermosetting resin (A).
Thick conductor built-in type printed wiring board and method for producing same
A thick conductor built-in type printed wiring board includes a printed wiring board, an insulating resin layer, an insulating base material layer, and a conductor layer. The printed wiring board includes an insulating layer including a cured product of a first resin composition, and a circuit provided on one main surface or both main surfaces of the insulating layer, the circuit having a plurality of conductor wirings each having a thickness ranging from 105 m to 630 m, inclusive. The insulating resin layer covers a surface of the printed wiring board on which the circuit is provided, and includes a cured product of a second resin composition and includes no fibrous base material. The insulating base material layer covers the insulating resin layer, and includes a cured product of a third resin composition and a fibrous base material. The conductor layer covers the insulating base material layer. The thick conductor built-in type printed wiring board does not include a void having a diameter of more than or equal to 10 m inside the thick conductor built-in type printed wiring board.
Multilayer printed wiring board and method for producing multilayer printed wiring board
A multilayer printed wiring board includes a core substrate, a first buildup layer, and a second buildup layer. The first buildup layer includes a first insulating layer and a first conductor layer alternately laminated with each other. The second buildup layer includes a second insulating layer and a second conductor layer alternately laminated with each other. The core substrate, the first insulating layer, and the second insulating layer each include a glass cloth. The glass cloth is woven with warp threads and weft threads. The warp threads each have a width narrower a width of each of the weft threads. Each of the warp threads constituting the glass cloth in the first insulating layer and the second insulating layer both lying adjacent to the core substrate is arranged perpendicular to each of the warp threads constituting the glass cloth in the core substrate.
Printed circuit board
A printed circuit board including: an insulating material; a metal layer stacked on a surface of the insulating material; and a via hole passing through the metal layer and the insulating material. The metal layer decreases in thickness in a region adjacent to the via hole, and an interface between the insulating material and the metal layer includes a region that is directed toward the via hole.