Abstract:
A battery holder (210) for mounting a button-type battery (200) on a printed circuit board (220) is provided. The battery holder comprises a resilient electrode plate (212), a ring (214) and a battery cap (216). The resilient electrode plate is soldered to positive contacts (222) of the printed circuit board. A positive electrode of the battery is put on and electrically connects with the resilient electrode plate to thereby connect electrically with the positive contacts on the printed circuit board. The ring is soldered to negative contacts (224) of the printed circuit board and surrounds the resilient electrode plate. The battery is accommodated within the ring. The battery cap is fixed and electrically connected to the ring and covers the battery. The battery cap also electrically contacts with a negative electrode (202) on a top of the battery. The negative electrode and positive electrode of the battery are separated by an insulation (206).
Abstract:
A thin, lightweight retention mechanism with a spring force holds an integrated circuit package to a circuit board. The retention mechanism consists of a pressure plate, a backing plate, and a fastening means for applying a deforming force to the plates, such as screws and nuts. The plates are paraboloid or dish-shaped and made of an elastically deformable material, such as steel. The fastening means simultaneously applies deforming forces to the peripheries of the plates to create a continuous spring force to effect electrical continuity between the integrated circuit package and the circuit board. In addition, a method of testing the retention mechanism and a method of assembling the retention mechanism are disclosed.
Abstract:
A battery holder (210) for mounting a button-type battery (200) on a printed circuit board (220) is provided. The battery holder comprises a resilient electrode plate (212), a ring (214) and a battery cap (216). The resilient electrode plate is soldered to positive contacts (222) of the printed circuit board. An anode of the battery is put on and electrically connects with the resilient electrode plate to thereby connect electrically with the positive contacts on the printed circuit board. The ring is soldered to negative contacts (224) of the printed circuit board and surrounds the resilient electrode plate. The battery is accommodated within the ring. The battery cap is fixed and electrically connected to the ring and covers the battery. The battery cap also electrically contacts with a cathode (202) on a top of the battery. The cathode and anode of the battery are separated by an insulation (206).
Abstract:
In a screen printing apparatus for contacting a lower surface of a mask plate with a substrate and moving a squeezee in a sliding motion on an upper surface of the mask plate thereby printing a paste onto the substrate, mask bend preventing members are mounted on conveying rails at front and rear parts of clamp members clamping the substrate in a Y-direction, and, at a mask separating operation after printing, the substrate is lowered while the lower surface of the mask plate is supported by the clamp members and the mask bend preventing members. Thus the mask separation can be achieved in a state where the mask plate is supported from below on four sides of the substrate and is thus prevented from a downward bending, and a satisfactory mask separating property can be ensured over the entire substrate.
Abstract:
An assembly for coupling an electrical device with a rigid structure using a flex circuit is provided. The assembly includes a staple having posts which extend into the rigid structure and secure the staple to the rigid structure. The flex circuit couples with both the rigid structure and the electrical device. The flex circuit extends between the staple and the rigid structure such that the flex circuit couples with the rigid structure thereby providing an interconnection between the electrical device and the rigid structure.
Abstract:
An improved optical module mounted body is disclosed. The optical module mounted body comprising: a mounting board having a mounting surface with a plurality of holes formed thereon; an optical module placed on the mounting surface; and a securing member configured to secure the optical module, the securing member including an upper portion, a plurality of legs extending from the upper portion and a plurality of engagement portions formed at ends of the plurality of legs, wherein the optical module is held between the mounting board and the securing member such that the upper portion of the securing member abuts on an upper surface of the optical module, and wherein the plurality of legs are inserted in the plurality of holes, the plurality of engagement portion engaging with the mounting board.
Abstract:
A component alignment casing system for connecting circuits, and a method for making or assembling the component alignment casing system is disclosed. The system has at least one surface mountable component which has a plurality of exposed leads, a prepared component which has a plurality of exposed traces, an alignment base onto which the prepared component and the surface mountable component are laid, and a compressive cover that attaches to said alignment base. The alignment base has a plurality of alignment ribs to isolate and align the exposed traces of the prepared component. The prepared component and surface mountable components are electrically connected and attached together, preferably by soldering. The method comprises laying the prepared component on the alignment base and ribs, and overlaying the surface mountable component, with its exposed leads, on to the alignment base and the prepared component, and electrically connecting the components together, preferably by soldering, to the alignment base. The cover is then snapped on, and supplies compressive force to assure good contact between the leads of the surface mountable component and the traces of the prepared component.
Abstract:
An arrangement for connecting a printed circuit to a plug of the type having a plurality of parallel contacts located on the edge of an insertion block provided with a resilient detent, includes a housing containing the printed circuit, and an opening in the housing for retaining the insertion block therein. A flexible extension of the printed circuit has parallel contacts formed thereon. The flexible extension extends at an angle through the opening so that the parallel contacts thereon make contact with the parallel contacts on an insertion block retained in the opening.
Abstract:
The invention relates to a method of manufacturing a flexible fastening member (19) comprising a foil (1) for fastening an object (15) thereto, characterized by making at least two generally U-shaped incisions (5) which are spaced apart, which define a central portion (23) between them, and which are directed oppositely to another, the open ends of the U-shapes facing away from another so as to create two mutually opposed tags (11), and by bending the foil (1) along two parallel bending lines (13), each line being situated at the open end of a U-shaped incision (5) so as to obtain a generally U-shaped member (19) whose base is said central portion (23), and to obtain the tags (11) as extensions of the legs (25) of said U-shaped member and situated at one side of the plane (20) defined by the central portion (23), the legs (25) being situated at the other side of said plane (20). The invention also relates to a fastening member obtained by the method, an object provided with such a fastening member, a support provided with an object and such a fastening member, and a packaging provided with a number of such fastening members.
Abstract:
A clip for surface-mounting a coupled-dual resonator crystal to a circuit board includes an elongated housing shaped complementary to the housing of the crystal and having an opening along a side for receiving the crystal. A tab spaces first and second shielding portions which overlie the end of the crystal housing. A first shield portion engages the middle ground terminal of the crystal shielding the input and output terminals, while the second shield extends from the first shield to overlie the output terminal, likewise shielding it from the input terminal. Distal portions of the input, output and common terminals, together with pads at the opposite end of the clip, mount the clip mechanically to the surface of a circuit board.