WIRE SPOOL STRUCTURE OF MAGNETIC ELEMENT AND WIRE WINDING METHOD THEREOF
20170301448 ยท 2017-10-19
Inventors
Cpc classification
H01F5/04
ELECTRICITY
International classification
Abstract
A wire spool structure of a magnetic element includes at least one wire winding portion, a plurality of wire exit portions and a plurality of conductive pins. The wire winding portion is adapted to be wound by at least one wire. The wire exit portions are consecutively arranged at one side of the wire winding portion. Each wire exit portion includes a channel including an exit, and at least one metal pin disposed correspondingly to the exit and adapted to be wound by the wire. Each of the conductive pins is disposed correspondingly to one of the wire exit portions, inserted into the channel after the end of the wire is wound on the metal pin, and caused to be partially protrude from the exit to correspond to the metal pin. The conductive pin and the wire are welded by a welding material to form an electrical connection.
Claims
1. A wire spool structure of a magnetic element, comprising: at least one wire winding portion, adapted to be wound by at least one wire; a plurality of wire exit portions, consecutively arranged at one side of the wire winding portion, each of the wire exit portions comprising a channel provided at the wire exit portion and including an exit, and at least one metal pin disposed correspondingly to the exit and adapted to be wound by the wire; and a plurality of conductive pins, each of the conductive pins disposed correspondingly to one of the wire exit portions, inserted into the channel after an end of the conductive pin is wound by the end of the wire, such that the conductive pin partially protrudes from the exit to correspond to the metal pin and is welded to the wire by a welding material to form an electrical connection.
2. The wire spool structure of a magnetic element of claim 1, formed by two half housings, wherein the wire winding portion and the wire exit portions are jointly defined and formed by the two half housings.
3. The wire spool structure of a magnetic element of claim 2, wherein each of the wire exit portions is provided with a plurality of metal pins that surround the exit.
4. The wire spool structure of a magnetic element of claim 2, wherein the metal pin is a tinned copper clad steel wire.
5. The wire spool structure of a magnetic element of claim 2, wherein each of the wire exit portions comprises at least one installation groove disposed correspondingly to one of the exits and allowing the metal pin to be inserted therein.
6. A wire winding method of a magnetic element, comprising steps of: step 1: providing a wire spool structure, the wire spool structure comprising at least one wire winding portion, a plurality of wire exit portions and a plurality of conductive pins, the wire exit portions consecutively arranged at one side of the wire winding portion, each of the wire exit portions comprising a channel disposed at the wire winding portion and including an exit, and at least one metal pin disposed correspondingly to the exit and adapted to be wound by a wire; step 2: providing and winding the wire around the wire winding portion for at least one turn, such that the end of the wire exits at one of the wire exit portions and is wound on the metal pin; step 3: inserting one of the conductive pins into the channel of the wire exit portion wound by the end of the wire, such that the conductive pin is partially placed in the channel and the remaining part of the conductive pin protrudes from the exit to correspond to the metal pin; and step 4: welding the conductive pin, the metal pin and the wire by using a welding material to form an electrical connection.
7. The wire winding method of a magnetic element of claim 6, wherein step further comprises a sub-step of: adjusting the conductive pin protruding from the exit to an extent that the conductive pin is connectable to a circuit board.
8. The wire winding method of a magnetic element of claim 7, wherein step further comprises a sub-step of: inserting the metal pin in a installation groove of one of the wire exit portions disposed correspondingly to the exit.
9. The wire winding method of a magnetic element of claim 8, wherein the metal pin is a tinned copper clad steel wire. 10
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0027] Details and technical contents of the present invention are given with the accompanying drawings below.
[0028] Referring to
[0029] The wire winding portion 11 and the wire exit portions 12 of the present invention are a formed integral, and the wire exit portions 12 are consecutively arranged at one side of the wire winding portion 11. Taking the embodiment in
[0030] Each of the conductive pins 13 of the present invention is disposed correspondingly to one of the wire exit portions 12, and is configured to be inserted into the channel 121 and adapted to receive a force and move appropriately. The configuration of the conductive pins 13 may be appropriately adjusted according to the configuration of the channel 121, but is not limited to conforming only the configuration of the channel 121. More specifically, in the present invention, each of the conductive pins 13 is adapted to be smoothly inserted into the channel 121, and so the diameter or size of each of the conductive pins 13 is designed to be at least conforming to the inner diameter of the channel 121. Further, the conductive pins 13 are not placed in the channel 121 at the beginning of the winding process of the wire spool structure, and are only inserted into the channel 121 after the winding process is complete.
[0031] Referring to
[0032] Referring to
[0033] In step 1 (41), the wire spool structure 1 is provided. The wire spool structure 1 includes the at least one wire winding portion 11, the wire exit portions 12 and the conductive pins 13. The wire exit portions 12 are consecutively arranged at one side of the wire winding portions 11. Each of the wire exit portions 12 includes the channel 121 and the at least one metal pin 122. The end of the channel 121 is the exit 123. The metal pin 122 is disposed correspondingly to the exit 123 and is adapted to be wound by the wire 3.
[0034] In step 2 (42), the wire 3 is provided and wound around the wire winding portion 11 for at least one turn, such that the end of the wire 3 exits at the wire exit portion 12 and is wound on the metal pin 122.
[0035] In step 3 (43), one of the conductive pins 13 is correspondingly inserted into the channel 121 of the wire exit portion 12 wound by the end of the wire 3, such that the conductive pin 13 is partially placed in the channel 121 and the remaining part of the conductive pin 13 protrudes from the exit 123 to correspond to the metal pin 122.
[0036] In step 4 (44), the conductive pin 13, the metal pin 122 and the wire 3 are welded by using a welding material 5 to form an electrical connection.
[0037] More specifically, at the beginning of performing the wire winding method, the wire spool structure 1 is first provided, and the wire 3 is wound around the wire winding portion 11 for at least one turn to form the wire coil. The end of the wire 3 is then wound on the metal pin 122 to complete tucking in the wire 3. The method next proceeds to step 3 (43). At the beginning of step 3 (43), one of the conductive pins 13 is inserted into the channel 121 of the wire exit portion 12 wound by the end of the wire 3, and the conductive pin 13 is caused to protrude towards the metal pin 122 wound by the end of the wire 3, followed by performing step 4 (44). Using a welding operation, the wire 3, the metal pin 122 and the part of the conductive pin 13 protruding from the exit 123 may form an electrical connection. For example, a welding material 5 (e.g. tin) used in the welding operation may completely enclose the metal pin 122, or may partially weld the wire 3, the metal pin 122 and the part of the conductive pin 13 protruding from the exit 123. Thus, the winding process is complete.
[0038] Further, as shown in
[0039] Referring to