H05K1/0218

Structure, antenna, wireless communication module, and wireless communication device

There is provided a new type of structure that resonates at a predetermined frequency, an antenna, a wireless communication module, and a wireless communication device. The structure includes a first conductor that extends in a second direction, a second conductor, a third conductor, a fourth conductor. The second conductor faces the first conductor in a first direction and that extends along the second direction. The third conductor is configured to capacitively connect the first conductor and the second conductor. The fourth conductor is configured to be electrically connected to the first conductor and the second conductor and extends along a first plane. Each of the first conductor and the second conductor includes a portion that extends along the second direction and that is exposed to an exterior space.

Structure, antenna, wireless communication module, and wireless communication device

A structure includes first to a first conductor, a second conductor, a third conductor, and a fourth conductor. The first conductor extends along a second plane including a second direction and a third direction intersecting with the second direction. The second conductor faces the first conductor along a first direction intersecting with the second plane and extends along the second plane. The third conductor capacitively connects the first conductor and the second conductor. The fourth conductor is electrically connected to the first conductor and the second conductor, and extends along a first plane including the first direction and the third direction. The third conductor faces the fourth conductor via a base. The base includes a plurality of first fiber components and a first resin component that holds the first fiber components. Part of the first fiber components extends along the first direction.

Electronic component module and method for manufacturing electronic component module

An electronic component module (100) includes a module board (10) having electronic components (40) mounted on at least one of a first surface (front surface) (12) and a second surface (back surface) (14), mold portions (22 and 23), and a shield (32). The mold portions (22 and 23) cover the mounted electronic components (40). The shield (32) covers at least a part of the mold portions (22 and 23) and the side surfaces of the module board (10). Protrusions (15) protruding from the side surfaces are formed on the module board (10). The shield (32) is separated by the protrusions (15).

ASSEMBLY STRUCTURE

The present disclosure provides an assembly structure for providing power for a chip. The assembly structure includes a circuit board configured to provide a first electrical energy; a chip provided with at least one electrical energy input terminal; and a first power converting module provided with at least one power output terminal. The first power converting module is electrically connected to the circuit board and the chip, converts the first electrical energy to a second electrical energy, and supplies the second electrical energy to the chip. The circuit board, the chip and the first power converting module are stacked; and a projection of the at least one electrical energy input terminal of the chip on the circuit board and a projection of the at least one the power output terminal of the first power converting module on the circuit board, are at least partially overlapped.

SCANNING RADAR SYSTEM WITH SUBSTRATE INTEGRATED WAVEGUIDES AND HEAT DISSIPATING STRUCTURES

A radar system is described herein. The radar system includes a printed circuit board (PCB) that includes a metallized top layer and a substrate layer that is adjacent the metallized top layer. The substrate layer includes a substrate integrated waveguide (SIW), and the metallized layer has a slotted taper etched therein. The slotted taper is positioned relative to the SIW such that an electromagnetic signal generated by a monolithic microwave integrated circuit (MMIC) passes from the slotted taper to the SIW without an intervening microstrip line. The radar system further includes a housing that acts both to disperse heat and to suppress undesired electromagnetic radiation.

SUBSTRATE WITH BURIED COMPONENT AND MANUFACTURE METHOD THEREOF
20230058180 · 2023-02-23 ·

A substrate is manufactured by drilling a chip containing groove in a composite inner layer circuit structure, having a component connecting end of a circuit layer protruding from a mounting side wall in the chip containing groove, mounting a chip component in the chip containing groove, and connecting the surface bonding pad to the component connecting end. The chip component in the present invention penetrates at least two circuit layers, and the surface bonding pad is bonded to the component connecting end of the circuit layer directly, reducing the occupied area of the chip component in each one of the circuit layers, and increasing the area for circuit disposing and the possible amount of chip components that may be mounted in the substrate.

CIRCUIT BOARD AND COMMUNICATION DEVICE
20220369451 · 2022-11-17 ·

Embodiments of the present disclosure relate to the field of communication device technology, which provide a circuit board including a first signal line and a second signal line that are disposed adjacent to each other, a ground plane, and a conductive layer connected to the ground plane. The conductive layer is disposed between the first signal line and the second signal line. Embodiments of the present disclosure further provide a communication device.

Semiconductor Device and Method of Forming Multi-Layer Shielding Structure Over the Semiconductor Device

A semiconductor device has a substrate and electrical components disposed over the substrate. An encapsulant is disposed over the substrate and electrical components. A multi-layer shielding structure is formed over the encapsulant. The multi-layer shielding structure has a first layer of ferromagnetic material and second layer of a protective layer or conductive layer. The ferromagnetic material can be iron, nickel, nickel iron alloy, iron silicon alloy, silicon steel, nickel iron molybdenum alloy, nickel iron molybdenum copper alloy, iron silicon aluminum alloy, nickel zinc, manganese zinc, other ferrites, amorphous magnetic alloy, amorphous metal alloy, or nanocrystalline alloy. The first layer can be a single, homogeneous material. The protective layer can be stainless steel, tantalum, molybdenum, titanium, nickel, or chromium. The conductive layer can be copper, silver, gold, or aluminum. The multi-layer shielding structure protects the electrical components from low frequency and high frequency interference.

Circuit board and optical module

An optical module, including: a first laser and a first laser chip for driving the first laser; a second laser and a second laser chip for driving the second laser; and a multi-layer circuit board, including a surface layer, a reference layer, and an intermediate layer provided between the surface layer and the reference layer, where a first row of edge connector pins and a second row of edge connector pins are disposed in at least one surface layer; the first row of edge connector pins are disposed to be closer than the second row of edge connector pins to a side edge, of the multi-layer circuit board, that is provided with an edge connector; and a region, of the intermediate layer, that corresponds to a data signal line pin in the second row of edge connector pins is a hollow region.

Flexible printed circuit and manufacturing method thereof, electronic device module and electronic device

A flexible printed circuit and a manufacturing method thereof, an electronic device module and an electronic device are provided. The flexible printed circuit includes a main sub-circuit board and a bridge sub-circuit board; the main sub-circuit board includes a first substrate, and a first bridge end, a second bridge end, a first wiring portion, and a second wiring portion on the first substrate, the first wiring portion and the second wiring portion are spaced apart from each other and are electrically connected to the first bridge end and the second bridge end, respectively; the bridge sub-circuit board includes a second substrate, and a third bridge end, a fourth bridge end, and a third wiring portion for a first functional wiring line on the second substrate, the third bridge end and the fourth bridge end are electrically connected by the third wiring portion, the first substrate and the second substrate are not in direct contact, and the bridge sub-circuit board is configured to be mounted on the main sub-circuit board by electrically connecting the third bridge end and the fourth bridge end to the first bridge end and the second bridge end, respectively. The wiring layout of the flexible printed circuit is simple and is easy to be manufactured.