Abstract:
A method for mounting semiconductor chips on a substrate using flip-chip technology and a corresponding assembly are provided, which method includes the steps of: a) providing a semiconductor chip having a component region including components and an edge region, a mounting region containing a plurality of bonding pads being situated in the edge region; b) providing a substrate having a surface including a plurality of lands; c) applying soldering material to the bonding pads and/or to the lands; d) positioning the semiconductor chip on the substrate; and e) melting the soldering material by a soldering process in such a way that the mounting region of the semiconductor chip is moved towards the substrate due to the surface tension of the melting soldering material, and the component region is lifted away from the substrate by the resulting rotation around an axis of rotation or a pivot between the two regions.
Abstract:
One of the purpose is to obtain a motor drive circuit and an outdoor unit for an air conditioner using the same, which can flexibly support change of a model at a low price and in a small lot without using unnecessary materials, wherein a stress in a soldering part due to self-heating is low, a solder reliability is high, and design constraints are small, while maintaining a low-noise and low-loss power wiring due to lowering inductance. The motor drive circuit according to the present invention, for driving the motor using the converter circuit and the inverter circuit, whereon electronic components making up a converter circuit and an inverter circuit are mounted, which includes a lead frame molded board 100 wherein metal plate leads 37 are molded with a mold resin 36, and a single-sided printed circuit board 31 for a control circuit, and wherein power terminals 30 of the electronic components are connected to the lead frame molded board 100, and control wiring terminals 39 of the electronic components are connected to the single-sided printed circuit board 31.
Abstract:
One of the purpose is to obtain a motor drive circuit and an outdoor unit for an air conditioner using the same, which can flexibly support change of a model at a low price and in a small lot without using unnecessary materials, wherein a stress in a soldering part due to self-heating is low, a solder reliability is high, and design constraints are small, while maintaining a low-noise and low-loss power wiring due to lowering inductance. The motor drive circuit according to the present invention, for driving the motor using the converter circuit and the inverter circuit, whereon electronic components making up a converter circuit and an inverter circuit are mounted, which includes a lead frame molded board 100 wherein metal plate leads 37 are molded with a mold resin 36, and a single-sided printed circuit board 31 for a control circuit, and wherein power terminals 30 of the electronic components are connected to the lead frame molded board 100, and control wiring terminals 39 of the electronic components are connected to the single-sided printed circuit board 31.
Abstract:
A ceramic capacitor comprises a ceramic sintered body, and first and second terminal electrodes formed on outer surfaces of the ceramic sintered body. The first terminal electrode is electrically connected to a land formed on a substrate through a first metal terminal. The first metal terminal has a first capacitor connecting portion mechanically connected to the first terminal electrode, a first terminal portion mechanically connected to the land, and a first intermediate portion electrically connecting the first capacitor connecting portion and the first terminal portion to each other. The first capacitor connecting portion of the first metal terminal is parallel to the substrate.
Abstract:
An electrical device which comprises first and second laminar electrodes and a laminar PTC resistive element sandwiched between them, the device comprising (a) a main portion which comprises a main part of the first electrode, a main part of the second electrode, and a main part of the resistive element; and (b) a first connection leg which extends away from the main portion and which comprises a first leg part of the first electrode which is integral with the main part of the first electrode, and a first leg part of the resistive element which is integral with the main part of the resistive element. Such devices can be secured to circuit boards in a variety of ways, and to elastically deformed terminals. Preferably preferred devices contain two laminar electrodes, with a PTC element between them, and a cross-conductor which passes through the thickness of the device and contacts one only of the two electrodes. The cross-conductor permits connection to both electrodes from the same side of the device, and also makes it possible to carry out the steps for preparing such devices on an assembly which corresponds to a number of individual devices, with division of the assembly as the final step.
Abstract:
A circuit protection device which comprises first and second laminar electrodes; a laminar PTC conductive polymer resistive element sandwiched between the electrodes; a third laminar conductive member which is secured to the same face of the PTC element as the second electrode but is separated therefrom; and an electrical connector which connects the third conductive member and the first electrode. This permits connection to both electrodes from the same side of the device, so that the device can be connected flat on a printed circuit board, with the first electrode on top, without any need for leads. The connector is preferably a cross-conductor which passes through an aperture in the PTC element, because this makes it possible to carry out the steps for preparing the devices on an assembly which corresponds to a number of individual devices, with division of the assembly as the final step.
Abstract:
A package-in-substrate includes an exposed pad having a surface that is capable of contacting the outside; a semiconductor chip arranged on a surface opposite to the surface of the exposed pad; a molding resin for molding the semiconductor chip; and a lead frame extending from a side surface of the molding resin and having a leading end portion with a machined shape. The leading end portion of the lead frame is cut to have a cutting angel that is an acute angle formed by an extended straight line of the lead frame with respect to a top surface of a package.
Abstract:
A capacitor device, which is mountable on a substrate, has an electrically conductive bottom lead frame with a bottom plate mountable substantially parallel to, and in contact with, the substrate and an electrically conductive top lead frame having a top plate spaced apart from the bottom plate and a first transition portion having a first end connected to the top plate and a second end, opposite the first end, electrically connectable to the substrate. Multilayer capacitors are mounted between the top plate and the bottom plate. The capacitors have opposed end terminations electrically connected to the top and bottom plates, such that internal electrode plates are substantially nonparallel to the substrate.
Abstract:
A semiconductor device includes a semiconductor chip mounted in a resin package body. A plurality of interconnection leads are provided on the resin package body along a lower edge thereof and project outwardly from the lower edge. A heat dissipation lead is connected to the resin package body for dissipating heat generated by the semiconductor chip. The heat dissipation lead includes a plate of a heat conducting material having a stage part and a heat sink part, wherein the stage part is held inside the resin package body and supports the semiconductor chip thereon. The heat sink part projects outwardly from the resin package body and includes a part that extends in a downward direction. The heat sink part has a lower edge that is formed at a level substantially flush with the outer lead part of the interconnection leads such that the semiconductor device is held upright, when placed on a substrate, by the outer lead part of the interconnection leads and by the lower edge of the heat sink part of the heat dissipation lead.
Abstract:
Disclosed is a method for the mounting, on an flexible substrate, of miniature electronic components of the beam lead type. Said method consists, after a first connection lead of a component has been soldered to the substrate, in arching each of the other connection leads of the component considered during their soldering by pressing the connection lead considered on a metallized zone of the substrate by means of a tip of a soldering tool while, at the same time, making a approaching movement towards the body of the component considered with this tip before carrying out the soldering operation itself. Through this mounting method, the beam lead electronic components are no longer placed flat against the substrate with their connection leads in an extended position but are arched on these leads. This gives them a freedom of play that enables them to absorb mechanical stresses by adopting positions of greater flatness or lesser flatness on the substrate.