The present invention relates to magnetic technologies and more particularly, to such an inexpensive magnetic device, which comprises two substrates with one providing one or multiple protruding block and a plurality of conductors in each protruding block and the other providing a plurality of conducting contacts respectively disposed in contact with the conductors, and one or multiple magnetic cores mounted between the two substrates and coupled to the one or multiple protruding blocks, each magnetic core having one or multiple positioning slots respectively configured for receiving one respective protruding block so that the conductors and the conducting contacts are electrically connected to create with the one or multiple magnetic cores multiple induction areas for providing a continuous winding type induction coil effect.
Conventional transformers, inductors or magnetic induction components commonly comprise an iron core, two enameled wires wound round the iron cores with the four lead ends thereof respectively extended to two flanges of the iron core for connection to an external circuit for converting voltage and current and for removing magnetic waves through a grounding terminal. It takes much labor and time to wind the two enameled wires round the iron core, increasing the cost. Further, a transformer, inductor or magnetic induction component made in this manner has a large size that requires much installation space. This design does not meet the concept of the modern electronic product designs with light, thin, short, small characteristics. When multiple transformers are used in an electronic product, the electric wiring will be complicated. Therefore, there is a strong demand for improvement in the fabrication of transformers.
The present invention has been accomplished under the circumstances in view. It is therefore the main object of the present invention to provide a magnetic device, which facilitates quick formation and saving much manufacturing cost.
To achieve this and other objects of the present invention, a magnetic device comprises a first substrate, a second substrate, and at least one magnetic core. The first and second substrates are arranged in parallel. The first substrate comprises at least one protruding block located at a bottom side thereof, and a plurality of conductors mounted in each protruding block. The second substrate comprises a plurality of conducting contacts respectively disposed in contact with the conductors of the first substrate. The at least one magnetic core is mounted between the first substrate and the second substrate and coupled to the at least one protruding block, each comprising at least one positioning slot respectively configured for receiving one respective protruding block so that the conductors and the conducting contacts are electrically connected to create with the at least one magnetic core a plurality of induction areas for providing a continuous winding type induction coil effect.
Other advantages and features of the present invention will be fully understood by reference to the following specification in conjunction with the accompanying drawings, in which like reference signs denote like components of structure.
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The two substrates 1 are so mechanically processed that one substrate provides at least one protruding block 11 with a plurality of recessed holes 111 and a conductor 112 mounted in each recessed hole 111, and the other substrate provides a plurality of conducting contact 12 for the contact of the respective conductors 112.
Each magnetic core 2 comprises at least one positioning slot 21, and two opposing positioning sidewalls 22 disposed at two opposite lateral sides relative to the at least one positioning slot 21.
In installation, the at least one magnetic core 2 is mounted between the two substrates 1. At this time, at least one protruding block 11 is inserted into each positioning slot 21 respectively, the two protruding blocks 11 at two opposite lateral sides are respectively abutted against the two positioning sidewalls 22. The magnetic device can be configured for use as an inductor, transformer or other magnetic induction component.
Further, the two substrates 1 can be printed circuit boards (PCBs) or flexible circuit boards, having a circuit layout arranged therein. Further, one of the two substrates 1 is configured to provide at least one input terminal 13 and at least one output terminal 14. One of the two substrates 1 is defines as the first substrate 101 that carries the at least one protruding block 11 with conductors 112 positioned in the respective recessed holes 111. The other of the two substrates 1 is defined as the second substrate 102 that carries the conducting contacts 12. The at least one input terminal 13 and the at least one output terminal 14 are arranged on a top wall of the first substrate 101. The at least one magnetic core 2 is set in between the first substrate 101 and the second substrate 102 with the at least one positioning slot 21 thereof respectively coupled to one respective protruding block 11 of the first substrate 101. Further, the at least one positioning slot 21 and the at least one protruding block 11 can be configured to exhibit a rectangular or oval shape.
Further, each protruding block 11 of the first substrate 101 is mechanically processed to provide an array of the recessed holes 111. The conductors 112 are respectively formed in the recessed holes 111 by conductor insertion, electroplating, conducting adhesive filling, circuit printing or conductor bonding. Further, the at least one protruding block 11 is formed on the first substrate 101 using milling, grinding, planing or other mechanical processing methods. Further, the first substrate 101 can be configured to provide as much as 9 protruding blocks, namely, the first protruding block 1101, the second protruding block 1102, the third protruding block 1103, the fourth protruding block 1104, the fifth protruding block 1105, the sixth protruding block 1106, the seventh protruding block 1107, the eighth protruding block 1108 and the ninth protruding block 1109. These first to ninth protruding blocks 1101˜1109 are arranged in one row with the first protruding block 1101 and the ninth protruding block 1109 disposed at two opposite lateral sides. The second protruding block 1102, the third protruding block 1103, the fourth protruding block 1104, the fifth protruding block 1105, the sixth protruding block 1106, the seventh protruding block 1107 and the eighth protruding block 1108 are equally spaced from one another between the first protruding block 1101 and the ninth protruding block 1109 in a parallel manner. After setting of the magnetic core 2 between the first substrate 101 and the second substrate 102, the first protruding block 1101 and ninth protruding block 1109 of the first substrate 101 are respectively abutted at the two opposite positioning sidewalls 22 of the magnetic core 2, holding the magnetic core 2 positively in place. The first substrate 101 is also configured to provide a conducting layer 113. One single row of conductors 112 in the first protruding block 1101 are electrically conducted with one single row of conductors 112 in the adjacent second protruding block 1102 through the conducting layer 113 to create with the at least one magnetic core 2 a first induction area 231; the other row of conductors 112 in the second protruding block 1102 is electrically conducted with the one adjacent row of conductors 112 in the third protruding block 1103 through the conducting layer 113 to create with the at least one magnetic core 2 a second induction area 232; the other row of conductors 112 in the third protruding block 1103 is electrically conducted with one adjacent row of conductors 112 in the fourth protruding block 1104 through the conducting layer 113 to create with the at least one magnetic core 2 a third induction area 233; other row of conductors 112 in the fourth protruding block 1104 is electrically conducted with one adjacent row of conductors 112 in the fifth protruding block 1105 through the conducting layer 113 to create with the at least one magnetic core 2 a fourth induction area 234; the other row of conductors 112 in the fifth protruding block 1105 is electrically conducted with one adjacent row of conductors 112 in the sixth protruding block 1106 through the conducting layer 113 to create with the at least one magnetic core 2 a fifth induction area 235; the other row of conductors 112 in the sixth protruding block 1106 is electrically conducted with one adjacent row of conductors 112 in the seventh protruding block 1107 through the conducting layer 113 to create with the at least one magnetic core 2 a sixth induction area 236; the other row of conductors 112 in the seventh protruding block 1107 is electrically conducted with one adjacent row of conductors 112 in the eighth protruding block 1108 through the conducting layer 113 to create with the at least one magnetic core 2 a seventh induction area 237; the single row of conductors 112 in the eighth protruding block 1108 are electrically conducted with the single row of conductors 112 in the ninth protruding block 1109 through the conducting layer 113 to create with the at least one magnetic core 2 an eighth induction area 238. Each induction area 23 can be formed with at least one magnetic core 2 to provide a continuous winding type induction coil effect.
Further, the second substrate 102 defines a position-limiting interval 15 for the positioning of the at least one magnetic core 2. The position-limiting interval 15 is divided into a plurality of mating connection portions, or as much as 9 mating connection portions, namely, the first mating connection portion 151, the second mating connection portion 152, the third mating connection portion 153, the fourth mating connection portion 154, the fifth mating connection portion 155, the sixth mating connection portion 156, the seventh mating connection portion 157, the eighth mating connection portion 158 and the ninth mating connection portion 159. One single row of conducting contacts 12 are arranged in each of the first mating connection portion 151 and the ninth mating connection portion 159. The second mating connection portion 152, the third mating connection portion 153, the fourth mating connection portion 154, the fifth mating connection portion 155, the sixth mating connection portion 156, the seventh mating connection portion 157 and the eighth mating connection portion 158 are properly arranged between the first mating connection portion 151 and the ninth mating connection portion 159 in a parallel manner, each having two rows of conducting contacts 12 arranged therein.
Further, the magnetic core 2 is made of a magnetic material in a rectangular shape. The magnetic material can be selected from the group of: nickel zinc, manganese zinc, amorphous or magnetic alloy materials. Further, each magnetic core 2 has opposing top and bottom surfaces thereof respectively bonded to the two substrates 1 using an adhesive 3.
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Although particular embodiments of the invention have been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the invention. Accordingly, the invention is not to be limited except as by the appended claims.