PRINTED CIRCUIT BOARD AND A METHOD OF BONDING ELECTRODE LEAD OF BATTERY TO PRINTED CIRCUIT BOARD
20180242454 ยท 2018-08-23
Assignee
Inventors
- Jin Oh Yang (Gyeongsangbuk-Do, KR)
- Suk Jin Song (Gyeonggi-Do, KR)
- Young Su Son (Chungcheongbuk-Do, KR)
- Jae Young Jang (Chungcheongbuk-Do, KR)
Cpc classification
H05K3/4015
ELECTRICITY
Y02P70/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H05K2201/09072
ELECTRICITY
H05K1/18
ELECTRICITY
H05K1/0204
ELECTRICITY
International classification
Abstract
The present disclosure relates to a printed circuit board connected to a battery, and more particularly, to a printed circuit board having an improved structure connected to an electrode led out from a battery.
Claims
1. A printed circuit board configured to include a first surface and a second surface facing the first surface, the printed circuit board comprising: a plurality of connection parts connected with an electrode lead of a battery; through holes each formed on one side of the printed circuit board in a direction, in which the electrode lead of the battery is connected, in a region in which the connection parts are formed, the through holes being formed to pass through from the first surface to the second surface; guide holes each passing through from the first surface to the second surface in the region in which the connection parts are formed; and a metal plate soldered to the connection parts and having an upper surface to which the electrode lead of the battery is bonded.
2. The printed circuit board of claim 1, wherein the connection parts are formed by conductors constituting circuits of the printed circuit board being exposed to the outside.
3. The printed circuit board of claim 1, wherein the through holes are formed so that: a lengthwise direction thereof is parallel to one side end portion of the printed circuit board, and lengths of the through holes are formed longer than a width of a region in which the metal plate is soldered to the connection parts.
4. The printed circuit board of claim 1, wherein the guide holes are formed in regions in which the through holes are not formed in the region in which the connection parts are formed.
5. The printed circuit board of claim 1, wherein the metal plate has one end bent to be inserted into the through holes.
6. The printed circuit board of claim 1, wherein the metal plate has a thickness of 0.3 mm or less.
7. The printed circuit board of claim 1, wherein the metal plate is formed to be wider than a width of the electrode of the battery.
8. The printed circuit board of claim 1, wherein the metal plate and the electrode lead of the battery are bonded by spot welding.
9. A method for bonding an electrode lead of a battery to a printed circuit board, the method comprising: a through hole forming step of forming a through hole in a connection part of the printed circuit board; a guide hole forming step of forming a guide hole in the connection part; a soldering step of soldering a metal plate to the connection part; and an electrode lead bonding step of welding the electrode lead of the battery to the metal plate.
10. The method of claim 9, wherein in the through hole forming step, the through hole is formed on one side of the printed circuit board in a region where the connection part is formed in a direction in which the electrode of the battery is connected so as to pass through the printed circuit board from a first surface to a second surface, and to have a lengthwise direction parallel to one end portion of the printed circuit board, and a length of the through hole is formed longer than a width of a region where the metal plate is soldered to the connection part.
11. The method of claim 9, wherein in the guide hole forming step, the guide hole is formed in a region in which the through hole is not formed in a region in which the connection part is formed, so as to pass through the printed circuit board from a first surface to a second surface.
12. The method of claim 9, wherein in the soldering step, one end of the metal plate is bent to be inserted into the through hole and is soldered to the connection part by means of a solder.
13. The method of claim 9, wherein in the electrode lead bonding step, the metal plate and the electrode lead of the battery are bonded by spot welding.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The following drawings attached in this specification illustrate a preferred embodiment of the present invention and function to allow the technical spirit of the present invention to be further understood along with the detailed description of the invention. Therefore, the present invention should not be construed as being limited to only the drawings.
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042] * It is clarified that the attached drawings are illustrated as a reference for understanding the technical concept of the present invention, and the scope of the present invention is not limited by the drawings.
DETAILED DESCRIPTION OF EMBODIMENTS
[0043] It should be understood that words or terms used in the specification and claims shall not be interpreted as limited to general and dictionary meanings, but interpreted based on the meanings and concepts consistent with the technical aspects of the invention on the basis of the principle that the inventor may appropriately define the terms for the best explanation.
[0044] Therefore, the features of the embodiments and drawings described herein are merely the most preferable exemplary embodiment for the purpose of illustrations only, not intended to represent all the technical concepts of the disclosure, so it should be understood that various modifications and equivalents could be made thereto at the time of present application. Moreover, detailed description related to well-known arts or the like will be ruled out in order not to unnecessarily obscure subject matters of the present invention.
[0045]
[0046] Referring to
[0047] The connection parts 180 are formed by a conductive body constituting a circuit of the printed circuit board 130 being exposed to the outside and functions as a terminal connecting the circuit and the battery.
[0048] In addition, the printed circuit board 130 may include a protective circuit module (not shown) and the like used in a secondary battery.
[0049] In addition, the metal plate 150 is soldered to the connection parts 180 by means of a solder 140, and then, the electrode lead 120 of the battery is welded to the metal plate 150 such that the printed circuit board 130 and the battery 100 are electrically connected to each other.
[0050] The through holes 170 are formed on one side of the printed circuit board 130 in the regions, in which the connection parts 180 are formed, in the direction in which the electrode lead 120 of the battery is connected, so as to pass through a first surface 131 and a second surface 132 of the printed circuit board 130.
[0051] Through holes which uprightly pass through the printed circuit board 130 are described, but the shape thereof are not limited thereto.
[0052] In addition, the through holes 170 are favorably formed such that the lengthwise direction thereof is parallel to one end portion of the printed circuit board 130.
[0053] In addition, the lengths of the through holes 170 are favorably formed to be longer than the width of a region in which the metal plate 150 is soldered to the connection parts 180 by means of the solder 140.
[0054] The guide holes 160 are formed to pass through the first surface 131 and the second surface 132 in the regions in which the connection parts 180 are formed.
[0055] In the drawings, the guide holes 160 are illustrated to uprightly pass through the first surface 131 and the second surface 132, but exemplary embodiments are not limited thereto.
[0056] In addition, the guide holes 160 are favorably formed in the region in which the connection parts 180 are formed and in which the through holes 170 are not formed.
[0057] The guide holes 160 function to discharge heat generated when the metal plate 150 soldered to the connection parts 180 is welded to the electrode lead 120 of the battery.
[0058] In addition, the guide holes 160 also function to guide, toward the inside thereof, the solder scattered by heat and pressure when the electrode lead 120 of the battery is welded to the metal plate 150.
[0059] The guide holes 160 may be formed in cylindrical shapes and square shapes, but the shapes thereof are not particularly limited.
[0060] The metal plate 150 is mounted on the connection parts 180 and functions to electrically connect the battery 100 and the printed circuit board 130 by being welded with the electrode lead 120 of the battery.
[0061] As illustrated in the drawings, the metal plate 150 is prepared in a state in which one side end portion thereof is bent in an L shape. The metal plate is formed of a nickel material in consideration of a welding property.
[0062] In addition, the metal plate 150 is formed in a thin-plate shape made of a metal material, and the thickness thereof is favorably formed to be 0.3 mm or less.
[0063] The metal plate 150 is mounted on the connection parts 180 through soldering using the solder 140. At this point, the metal plate 150 is mounted on the connection parts 180 so that one end thereof bent in the L shape is inserted into the through holes 170.
[0064] Therefore, the metal plate 150 is mounted on the connection parts 180 in a shape overlapping the connection parts 180, and has a shape in which a blocking wall is formed between the region soldered by means of the solder 140 and the battery 100.
[0065] In addition, as illustrated in the drawings, the region in which the metal plate 150 is soldered to the connection parts 180 by means of the solder 140, and the region in which the metal plate 150 is welded to the electrode lead 120 of the battery have shapes overlapping each other.
[0066] In addition, when the metal plate 150 and the electrode lead 120 of the battery are welded, for example, spot welding is preferred, and the metal plate 150 is favorably formed larger than the width of the electrode lead 120 of the battery.
[0067] Meanwhile, a high temperature due to the spot welding is transferred to the soldered region located under the metal plate 150, and the solder 140 in the soldered region is melted due to a rise in the temperature caused by electrical limitations such as unstable current or voltage during welding.
[0068] At this point, although the melted solder may be scattered by the pressure of a welder, the solder scattered toward the electrode lead 120 of the battery may be blocked to prevent a short circuit by virtue of the structure in which the metal plate 150 is bent in the L shape.
[0069]
[0070] Referring to
[0071] The length of the penetrating groove 270 is favorably formed to be longer than the width of region in which the metal plate 250 is soldered with the connection parts 280 by means of a solder 240.
[0072] The metal plate 250 is mounted on the connection parts 280 through soldering using the solder 240.
[0073] Since the metal plate 250 is the same as those illustrated in
[0074]
[0075] Referring to
[0076] Since the metal plate 350 is the same as those illustrated in
[0077] Hereinafter a method for bonding an electrode of a battery to a printed circuit board in accordance of an exemplary embodiment will be described.
[0078]
[0079] Referring to
[0080] In the through-hole forming step S100, the through hole passes through a first surface and a second surface of the printed circuit board on one side of the printed circuit board in the direction in which the electrode of the battery is connected in a region in which the connection part is formed.
[0081] In addition, the through hole is formed such that the lengthwise direction thereof is parallel to one side end portion of the printed circuit board.
[0082] In addition, the length of the through hole may be formed longer than the width of a region in which the metal plate is soldered to the connection part.
[0083] In the guide-hole forming step S200, the guide hole is formed in the connection part and formed to pass through the printed circuit board from the first surface to the second surface in a region in which the through hole is not formed in the region in which the connection part is formed.
[0084] In the soldering step S300, one end of the metal plate is bent in an L shape and inserted into the through hole, and the metal plate and the connection part are soldered by means of the solder.
[0085] In addition, the thickness of the metal plate is favorably formed to be 0.3 mm or less.
[0086] In the electrode lead bonding step S400, the metal plate and the electrode lead of the battery are bonded through welding, and favorably, through spot welding.
[0087] In accordance with an exemplary embodiment, since the structure of a printed circuit board is improved such that one end of a metal plate mounted on the printed circuit board is bent and can be inserted into a through hole formed in the printed circuit board, short circuits caused by a solder scattered due to the damage of a soldering joint part during welding may thereby be prevented, and since the thickness of the metal plate can be maintained to be thin, an effect of achieving the miniaturization and simplification of entire components is exhibited.
[0088] It should be noted that the present disclosure is not limited to foregoing embodiments, and a person skilled in the art may carry out various modifications and changes, which fall within the scope of claims set forth herein.